overhauled physics engine

This commit is contained in:
Dynamitos
2023-01-21 18:43:21 +01:00
parent 3c7346cf7b
commit 2208ab438a
164 changed files with 22606 additions and 928 deletions
+8 -1
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@@ -28,7 +28,6 @@ set(TTFPARSER_ROOT ${EXTERNAL_ROOT}/ttf-parser)
set(FREETYPE_ROOT ${EXTERNAL_ROOT}/freetype)
set(SPIRV_ROOT ${EXTERNAL_ROOT}/SPIRV-Cross)
set(ENTT_ROOT ${EXTERNAL_ROOT}/entt)
set(NLOPT_ROOT ${EXTERNAL_ROOT}/nlopt)
set(ODEINT_ROOT ${EXTERNAL_ROOT}/odeint)
set(THREADPOOL_ROOT ${EXTERNAL_ROOT}/thread-pool)
set(ZLIB_ROOT ${EXTERNAL_ROOT}/zlib)
@@ -105,6 +104,7 @@ if(MSVC)
target_compile_options(Engine PUBLIC /Zi /MP14 /W4 /DEBUG "/WX-")
target_sources(Engine INTERFACE
$<BUILD_INTERFACE:Seele.natvis>
$<BUILD_INTERFACE:${Seele_DIR}/Seele.natvis>
$<INSTALL_INTERFACE:${CMAKE_INSTALL_PREFIX}/Seele.natvis>
)
install(FILES
@@ -174,3 +174,10 @@ install(
DESTINATION
${CMAKE_INSTALL_PREFIX}
)
install(
DIRECTORY
${CMAKE_SOURCE_DIR}/res
DESTINATION
${CMAKE_INSTALL_PREFIX}
)
+1 -1
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@@ -50,7 +50,7 @@ add_subdirectory(${ENTT_ROOT})
#--------------thread-pool------------------------------
add_subdirectory(${THREADPOOL_ROOT})
target_compile_options(ThreadPool INTERFACE "/WX-")
target_compile_options(ThreadPool INTERFACE "/W0")
#--------------SLang------------------------------
string(TOLOWER release_${CMAKE_PLATFORM} SLANG_CONFIG)
+15
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@@ -0,0 +1,15 @@
--------------------------------------------------
Copyright (C) 1995-2011 SDPA Project
--------------------------------------------------
We appreciate your comments, suggestions, and questions about SDP
and/or the SDPA software. We also consider questions such as "I can
not install the SDPA on my computer," "I can not formulate my problem
in SDPA format," "I found a bug in the software," etc.
To contact SDPA project, refer the following Web page.
https://sdpa.sourceforge.net/contact.html
The member list of SDPA project is available there.
+340
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@@ -0,0 +1,340 @@
GNU GENERAL PUBLIC LICENSE
Version 2, June 1991
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51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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+10
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@@ -0,0 +1,10 @@
SDPA-C 7.3.8 from SDPA-C 6 / 2013-10-21 Makoto Yamashita
* Based on SDPA 7.3.8
* Employ CHOLMOD for sparse Cholesky factoization
to the variable matrices
* Efficient computation for the Schur complement matrix
* New callable library
* New Matlab/Octave interface
* Multiple-threaded computation
+160
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@@ -0,0 +1,160 @@
SDPA-C 7.3.X Install Manual
[Copyright (C) 2004-2013 SDPA Project]
This text explains how to install SDPA-C.
If you have questions on the installation,
please contact us from
http://sdpa.sourceforge.net/contact.html
The user-manual of SDPA is available for SDPA-C, and can be downloaded at
https://sourceforge.net/projects/sdpa/files/sdpa/sdpa.7.1.1.manual.20080618.pdf/download
--- index ------------------------------------
1. Install the SDPA-C
2. Compile callable-library example [optional]
3. Compile Matlab Interface [optional]
4. Difference from SDPA
5. If you have some trouble
----------------------------------------------
1. Install the SDPA-C
(1) Check your environment
Requirement: wget, git
Recommendation: gcc (>= 4.2), g++ (>= 4.2), gfortran (>=4.2)
We have checked the compilation on RedHat Linux (version 6)
and Debian (wheezy).
Other C/C++/Fortran compilers than gcc/g++/gfortran may be
available, but we have not tested them.
(2) Download the SDPA from the SDPA Homepage
http://sdpa.sourceforge.net/download.html
You can get the sdpa-c_7.3.X.tar.gz, then unpack the file
$ tar xzf sdpa-c_7.3.X.tar.gz
You will find the directory 'sdpa-c'.
$ cd sdpa-c
(3) Edit make.inc
At least you should check 'sdpac_dir'.
In the default setting, sdpac_dir is $(HOME)/sdpa-c.
In other words, the default setting assumes
you unpacked the downloaded file in your home directory.
(4) Compile SDPA-C
$ make all
will compile SuiteSparse, MUMPS, OpenBLAS, then SDPA-C.
If you want compile them step by step,
$ make SuiteSparse
$ make MUMPS
$ make OpenBLAS
$ make sdpa-c
(5) Test SDPA-C
Try the following command to execute sdpa
$ cd $HOME/sdpa-c
$ ./sdpa-c
Then you will see message from SDPA and can check command line options.
To solve input dat-s and write its result,
$ ./sdpa example1.dat-s example1.result
If you specify the number of threads with the SDPA-C,
set OMP_NUM_THREADS environment variable(ex. export OMP_NUM_THREADS=4).
----------------------------------------------
2. Compile callable-library example (optional)
To compile callable-library example, use 'make' command
in 'libexample' directory
$ cd $HOME/sdpa-c/libexample
$ make
The details of callable-library can be found in SDPA user manual.
----------------------------------------------
3. Compile Matlab Interface (optional)
To compile the Matlab interface, use 'make matlab' command.
$ cd $HOME/sdpa-c
$ make matlab
If you use Octave instead of Matlab, then
$ cd $HOME/sdpa-c
$ make octave
Since the usage of this Matlab Interface as SDPA-M 6.2.0,
SDPA-M 6.2.0 manual is very useful.
(https://sourceforge.net/projects/sdpa/files/sdpa-m/sdpamManual.pdf/download)
In addition, the file 'mex/CommandList.txt' summarizes
each command.
When you have trouble with SDPA-M(Matlab environment),
the following command will display useful messages.
$ matlab -Dgdb
[On gdb environment]
(gdb) run -nodisplay
[On Matlab environment]
>> (Call SDPA-M by sdpam or sedumiwrap)
If Matlab aborts, try the following command in gdb environment.
(gdb) where
The command 'where' will display what happened.
To exit gdb environment,
(gdb) quit
In some case, the segmentation fault may be avoided by
$ export LD_PRELOAD=/usr/lib/gcc/x86_64-linux-gnu/4.4/libgfortran.so:$LD_PRELOAD
$ export LD_PRELOAD=/usr/lib/gcc/x86_64-linux-gnu/4.4/libstdc++.so:$LD_PRELOAD
$ export LD_PRELOAD=/usr/lib/gcc/x86_64-linux-gnu/4.4/libgcc_s.so:$LD_PRELOAD
$ matlab
In particular, when the gcc version is higher than the version Matlab
assumes, Matlab sometimes can not load appropriate shared libraries.
The command above load the libraries before Matlab launches.
-------------------------------------------------------
4. Deference from SDPA
(1) Since SDPA-C employs the completion method, which extensively
uses the structural sparsity, the SDPA dense format is not acceptable.
More precisely, example1.dat-s is available while example1.dat is not.
(2) In the callable library, some function mainly related to the dense
input file are not available.
In addition, the function SDPA::terminate() is renamed as
SDPA::finalize().
In libexample directory, the difference in example1,2,5.cpp from SDPA
is only terminate() to finalize().
However, the example3,4,6.cpp in SDPA contained the functions
which are not available in SDPA-C. We removed these examples
from the SDPA-C package.
(3) param.sdpa is renamed as param.sdpaC.
(4) The matlab interface only contains the mex functions of SDPA-C.
If you want to read the SDPA sparse format, you should employ
such routines from SDPA. We suggest you add the paths of both SDPA
and SDPA-C to the Matlab search path.
-------------------------------------------------------
5. If you have some trouble
If some bugs are found or you encounter some trouble
when you are compiling SDPA, please let us know from
http://sdpa.sourceforge.net/contact.html
In particular, attaching error messages and/or 'config.log' file
is very useful to let us understand your situation.
+100
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@@ -0,0 +1,100 @@
## This is Makefile for SDPA-C
## Requirement :: wget, git
## Recommendation :: gcc (>= 4.2), g++ (>=4.2), gfortran (>= 4.2),
## Before the compilation, examine the file 'make.inc'
## To compile SDPA-C, 'make all'
## This will compile SuiteSparse, MUMPS, OpenBLAS, then SDPA-C
## To compile mex, 'make matlab' or 'make octave'
-include make.inc
-include make.obj
.PHONY: SuiteSparse MUMPS OpenBLAS
all: $(sdpac_exe)
matlab: all
(cd mex; make DEVELOPEMENT_STAGE=1)
@echo === Add "$(sdpac_dir)/mex" to your Matlab path. ===
octave: all
(cd mex; make DEVELOPEMENT_STAGE=1 COMPILE_ENVIRONMENT=octave)
@echo === Add "$(sdpac_dir)/mex" to your octave path. ===
$(sdpac_exe): SuiteSparse MUMPS OpenBLAS $(sdpac_lib) sdpa_exe.o
$(CXX) $(CXXFLAGS) -o $@ sdpa_exe.o $(sdpac_lib) $(sdpac_all_lib)
$(sdpac_lib): $(OBJ)
rm -f $@
ar r $@ $(OBJ)
ranlib $@
.cpp.o:
$(CXX) $(CXXFLAGS) -c -o $@ -I. $(sdpac_all_include) \
-DVERSION=$(SDPAC_VERSION) $<
SuiteSparse:$(suitesparse_lib)
$(suitesparse_lib):
(cd $(sdpac_dir); \
rm -rf SuiteSparse; \
wget http://faculty.cse.tamu.edu/davis/SuiteSparse/SuiteSparse-$(suitesparse_ver).tar.gz; \
tar xzf SuiteSparse-$(suitesparse_ver).tar.gz; \
rm -f SuiteSparse-$(suitesparse_ver).tar.gz; )
(cd $(suitesparse_dir); \
cd $(suitesparse_dir)/metis-5.1.0; \
make config cc=$(CC); \
make ; \
cp build/*/libmetis/libmetis.a . )
( cd $(suitesparse_dir); \
echo CC = $(CC) >> $(suitesparse_dir)/SuiteSparse_config/SuiteSparse_config.mk; \
echo CF = $(CFLAGS) -fexceptions >> $(suitesparse_dir)/SuiteSparse_config/SuiteSparse_config.mk; \
echo CC = $(CC) >> $(suitesparse_dir)/CSparse/Lib/Makefile; \
cd $(suitesparse_dir); \
make)
MUMPS:$(mumps_lib)
$(mumps_lib):
(cd $(sdpac_dir); \
rm -rf mumps; \
wget wget http://ftp.de.debian.org/debian/pool/main/m/mumps/$(mumps_tar_file); \
tar xzf $(mumps_tar_file); \
rm -f $(mumps_tar_file); \
mv -f MUMPS_$(mumps_ver)/ $(mumps_dir); \
cd $(mumps_dir); \
cp Make.inc/Makefile.inc.generic.SEQ Makefile.inc; \
echo "CC = " $(CC) >> Makefile.inc; \
echo "FC = " $(FC) >> Makefile.inc; \
echo "FL = " $(FC) >> Makefile.inc; \
echo "OPTC = " $(CFLAGS) >> Makefile.inc; \
echo "OPTF = " $(FCFLAGS) >> Makefile.inc; \
echo "OPTL = " $(FCFLAGS) >> Makefile.inc; \
echo "LPORDDIR = "`pwd`"/PORD/lib/" >> Makefile.inc; \
echo "IPORDDIR = "`pwd`"/PORD/include/" >> Makefile.inc; \
make d;)
OpenBLAS:$(openblas_lib)
$(openblas_lib):
(cd $(sdpac_dir); \
rm -rf OpenBLAS; \
git clone git://github.com/xianyi/OpenBLAS; \
mv -f OpenBLAS $(openblas_dir); \
cd $(openblas_dir); \
make NO_WARMUP=1 USE_THREAD=1 USE_OPENMP=1 FC=$(FC) CC=$(CC) libs netlib)
clean:
rm -rf *~ *.o
@echo "## If you want to clean SuiteSparse, MUMPS, OpenBLAS,"
@echo "## then use 'make dist-clean'"
dist-clean: clean
rm -f $(sdpac_lib) $(sdpac_exe)
(cd $(sdpac_dir); \
rm -rf SuiteSparse; rm -rf mumps; rm -rf OpenBLAS)
(cd mex; make dist-clean)
# -include make.head must be the bottom
# otherwise, you need to assign make 'all'.
-include make.head
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@@ -0,0 +1,24 @@
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
CC = gcc
OPTFLAGS = -O3 -fPIC
+8
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CC = gcc
FC = gfortran
FL = gfortran
OPTC = -O3 -fPIC
OPTF = -O3 -fPIC
OPTL = -O3 -fPIC
LPORDDIR = /home/makoto/sdpa-c/PORD/lib/
IPORDDIR = /home/makoto/sdpa-c/PORD/include/
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For the latest news on SDPA, please refer to
http://sdpa.sourceforge.net/
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"Example 1: mDim = 3, nBLOCK = 1, {2}"
3 = mDIM
1 = nBLOCK
2 = bLOCKsTRUCT
48, -8, 20
0 1 1 1 -11
0 1 2 2 23
1 1 1 1 10
1 1 1 2 4
2 1 2 2 -8
3 1 1 2 -8
3 1 2 2 -2
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5
1
7
1.1 -10.0 6.6 19.0 4.1
0 1 1 1 1.8
0 1 2 2 -4.0
0 1 3 3 -1.4
0 1 3 4 -3.2
0 1 4 4 -28.0
0 1 5 5 15.0
0 1 5 6 -12.0
0 1 5 7 2.1
0 1 6 6 16.0
0 1 6 7 -3.8
0 1 7 7 15.0
1 1 1 1 -4.5
1 1 2 2 -3.5
1 1 3 3 0.5
1 1 3 4 5.2
1 1 4 4 -5.3
1 1 5 5 7.8
1 1 5 6 -2.4
1 1 5 7 6.0
1 1 6 6 4.2
1 1 6 7 6.5
1 1 7 7 2.1
2 1 1 1 -0.2
2 1 2 2 -3.7
2 1 3 3 1.7
2 1 3 4 7.0
2 1 4 4 -9.3
2 1 5 5 -1.9
2 1 5 6 -0.9
2 1 5 7 -1.3
2 1 6 6 -0.8
2 1 6 7 -2.1
2 1 7 7 4.0
3 1 1 1 -3.3
3 1 2 2 -4.0
3 1 3 3 6.3
3 1 3 4 -7.5
3 1 4 4 -3.3
3 1 5 5 0.2
3 1 5 6 8.8
3 1 5 7 5.4
3 1 6 6 3.4
3 1 6 7 -0.4
3 1 7 7 7.5
4 1 1 1 4.8
4 1 2 2 9.7
4 1 3 3 -2.4
4 1 3 4 -2.5
4 1 4 4 -2.9
4 1 5 5 3.4
4 1 5 6 -3.2
4 1 5 7 -4.5
4 1 6 6 3.0
4 1 6 7 -4.8
4 1 7 7 3.6
5 1 1 1 6.1
5 1 2 2 -1.5
5 1 3 3 -6.5
5 1 3 4 -5.4
5 1 4 4 -6.6
5 1 5 5 6.7
5 1 5 6 -7.2
5 1 5 7 -3.6
5 1 6 6 7.3
5 1 6 7 -3.0
5 1 7 7 -1.4
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*Example 2:
*mDim = 5, nBLOCK = 3, {2,3,-2}
5 = mDIM
3 = nBLOCK
2 3 -2 = bLOCKsTRUCT
{1.1, -10, 6.6 , 19 , 4.1}
{
{ { -1.4, -3.2 },
{ -3.2,-28 } }
{ { 15, -12, 2.1 },
{-12, 16, -3.8 },
{ 2.1, -3.8, 15 } }
{ 1.8, -4.0 }
}
{
{ { 0.5, 5.2 },
{ 5.2, -5.3 } }
{ { 7.8, -2.4, 6.0 },
{ -2.4, 4.2, 6.5 },
{ 6.0, 6.5, 2.1 } }
{ -4.5, -3.5 }
}
{
{ { 1.7, 7.0 },
{ 7.0, -9.3 } }
{ {-1.9, -0.9, -1.3 },
{-0.9, -0.8, -2.1 },
{-1.3, -2.1, 4.0 } }
{-0.2, -3.7 }
}
{
{ { 6.3, -7.5 },
{-7.5, -3.3 } }
{ { 0.2, 8.8, 5.4 },
{ 8.8, 3.4, -0.4 },
{ 5.4, -0.4, 7.5 } }
{-3.3, -4.0 }
}
{
{ { -2.4, -2.5 },
{ -2.5, -2.9 } }
{ { 3.4, -3.2, -4.5 },
{ -3.2, 3.0, -4.8 },
{ -4.5, -4.8, 3.6 } }
{ 4.8 , 9.7 }
}
{
{ { -6.5, -5.4 },
{ -5.4, -6.6 } }
{ { 6.7, -7.2, -3.6 },
{ -7.2, 7.3, -3.0 },
{ -3.6, -3.0, -1.4 } }
{ 6.1, -1.5 }
}
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*Example 2:
*mDim = 5, nBLOCK = 3, {2,3,-2}
5 = mDIM
3 = nBLOCK
2 3 -2 = bLOCKsTRUCT
1.1, -10, 6.6 , 19 , 4.1
0 1 1 1 -1.4
0 1 1 2 -3.2
0 1 2 2 -28
0 2 1 1 15
0 2 1 2 -12
0 2 1 3 2.1
0 2 2 2 16
0 2 2 3 -3.8
0 2 3 3 15
0 3 1 1 1.8
0 3 2 2 -4.0
1 1 1 1 0.5
1 1 1 2 5.2
1 1 2 2 -5.3
1 2 1 1 7.8
1 2 1 2 -2.4
1 2 1 3 6.0
1 2 2 2 4.2
1 2 2 3 6.5
1 2 3 3 2.1
1 3 1 1 -4.5
1 3 2 2 -3.5
2 1 1 1 1.7
2 1 1 2 7.0
2 1 2 2 -9.3
2 2 1 1 -1.9
2 2 1 2 -0.9
2 2 1 3 -1.3
2 2 2 2 -0.8
2 2 2 3 -2.1
2 2 3 3 4.0
2 3 1 1 -0.2
2 3 2 2 -3.7
3 1 1 1 6.3
3 1 1 2 -7.5
3 1 2 2 -3.3
3 2 1 1 0.2
3 2 1 2 8.8
3 2 1 3 5.4
3 2 2 2 3.4
3 2 2 3 -0.4
3 2 3 3 7.5
3 3 1 1 -3.3
3 3 2 2 -4.0
4 1 1 1 -2.4
4 1 1 2 -2.5
4 1 2 2 -2.9
4 2 1 1 3.4
4 2 1 2 -3.2
4 2 1 3 -4.5
4 2 2 2 3.0
4 2 2 3 -4.8
4 2 3 3 3.6
4 3 1 1 4.8
4 3 2 2 9.7
5 1 1 1 -6.5
5 1 1 2 -5.4
5 1 2 2 -6.6
5 2 1 1 6.7
5 2 1 2 -7.2
5 2 1 3 -3.6
5 2 2 2 7.3
5 2 2 3 -3.0
5 2 3 3 -1.4
5 3 1 1 6.1
5 3 2 2 -1.5
+46
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#############################################################
# List of examples for callable-library
#
# example1.cpp: Solve example1.dat-s using inputElements
# example2.cpp: Solve example2.dat using inputElements
# example5.cpp: Solve problems reading from file
#
#############################################################
.PHONY: all lib clean cleanall distclean
.SUFFIXES: .exe
# after "make install", you can find
# 'make.inc' in 'share/sdpa' sub-directory under the installed directory
# For example
# make MAKE_INCLUDE_DIR=/usr/share/sdpa
# or
# make MAKE_INCLUDE_DIR=/usr/local/share/sdpa
MAKE_INCLUDE_DIR=..
-include ${MAKE_INCLUDE_DIR}/make.inc
# after "make install", you can find
# 'make.inc' in 'share/sdpa' sub-directory under the installed directory
# For example
# make MAKE_INCLUDE_DIR=/usr/share/sdpa
# or
# make MAKE_INCLUDE_DIR=/usr/local/share/sdpa
SRC = $(wildcard example?.cpp)
EXE = $(subst .cpp,.exe,$(SRC))
all: ${EXE}
%.exe: %.o
${CXX} ${CXXFLAGS} -o $@ $< ${sdpac_dir}/${sdpac_lib} ${sdpac_all_lib}
.cpp.o:
${CXX} -c ${CXXFLAGS} \
-I${sdpac_dir} ${sdpac_all_include} \
-o $@ $<
clean:
rm -f *.o *~
cleanall: clean
rm -f *.exe
dist-clean: cleanall
+227
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
// Here is the start of ``example1.cpp''
#include <cstdio>
#include <cstdlib>
#include <sdpa_call.h>
/*
example1.dat:
"Example 1: mDim = 3, nBLOCK = 1, {2}"
3 = mDIM
1 = nBLOCK
2 = bLOCKsTRUCT
{48, -8, 20}
{ {-11, 0}, { 0, 23} }
{ { 10, 4}, { 4, 0} }
{ { 0, 0}, { 0, -8} }
{ { 0, -8}, {-8, -2} }
*/
void printVector(double* ele, int dim, char* printFormat,
FILE* fpout);
void printMatrix(double* ele, int dim, char* printFormat,
FILE* fpout);
void printDimacsError(double dimacs_error[7],char* printFormat,
FILE* fpout);
int main ()
{
SDPA::printSDPAVersion(stdout);
SDPA Problem1;
Problem1.setDisplay(stdout);
// All parameteres are renewed
Problem1.setParameterType(SDPA::PARAMETER_DEFAULT);
// If necessary, each parameter can be set independently
// Problem1.setParameterMaxIteration(100);
// Problem1.setParameterEpsilonStar(1.0e-7);
// Problem1.setParameterLambdaStar(1.0e+2);
// Problem1.setParameterOmegaStar(2.0);
// Problem1.setParameterLowerBound(-1.0e+5);
// Problem1.setParameterUppwerBound(1.0e+5);
// Problem1.setParameterBetaStar(0.1);
// Problem1.setParameterBetaBar(0.2);
// Problem1.setParameterGammaStar(0.9);
// Problem1.setParameterEpsilonDash(1.0e-7);
// Problem1.setParameterPrintXVec((char*)"%+8.3e" );
// Problem1.setParameterPrintXMat((char*)"%+8.3e" );
// Problem1.setParameterPrintYMat((char*)"%+8.3e" );
// Problem1.setParameterPrintInformation((char*)"%+10.16e");
Problem1.printParameters(stdout);
int mDIM = 3;
int nBlock = 1;
Problem1.inputConstraintNumber(mDIM);
Problem1.inputBlockNumber(nBlock);
Problem1.inputBlockSize(1,2);
Problem1.inputBlockType(1,SDPA::SDP);
Problem1.initializeUpperTriangleSpace();
Problem1.inputCVec(1,48);
Problem1.inputCVec(2,-8);
Problem1.inputCVec(3,20);
Problem1.inputElement(0, 1, 1, 1, -11);
Problem1.inputElement(0, 1, 2, 2, 23);
Problem1.inputElement(1, 1, 1, 1, 10);
Problem1.inputElement(1, 1, 1, 2, 4);
Problem1.inputElement(2, 1, 2, 2, -8);
Problem1.inputElement(3, 1, 1, 2, -8);
Problem1.inputElement(3, 1, 2, 2, -2);
Problem1.initializeUpperTriangle();
Problem1.initializeSolve();
// if necessary, dump input data and initial point
// Problem1.writeInputSparse((char*)"tmp.dat-s",(char*)"%+8.3e");
// Problem1.writeInitSparse((char*)"tmp.ini-s",(char*)"%+8.3e");
Problem1.solve();
fprintf(stdout, "\nStop iteration = %d\n",
Problem1.getIteration());
char phase_string[30];
Problem1.getPhaseString(phase_string);
fprintf(stdout, "Phase = %s\n", phase_string);
fprintf(stdout, "objValPrimal = %+10.6e\n",
Problem1.getPrimalObj());
fprintf(stdout, "objValDual = %+10.6e\n",
Problem1.getDualObj());
fprintf(stdout, "p. feas. error = %+10.6e\n",
Problem1.getPrimalError());
fprintf(stdout, "d. feas. error = %+10.6e\n\n",
Problem1.getDualError());
fprintf(stdout, "xVec = \n");
// Problem1.printResultXVec();
printVector(Problem1.getResultXVec(),
Problem1.getConstraintNumber(), (char*)"%+8.3e",
stdout);
fprintf(stdout, "xMat = \n");
// Problem1.printResultXMat();
for (int l=0; l<Problem1.getBlockNumber(); ++l) {
if (Problem1.getBlockType(l+1) == SDPA::SDP) {
printMatrix(Problem1.getResultXMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
else if (Problem1.getBlockType(l+1) == SDPA::SOCP) {
printf("current version does not support SOCP\n");
}
if (Problem1.getBlockType(l+1) == SDPA::LP) {
printVector(Problem1.getResultXMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
}
fprintf(stdout, "yMat = \n");
// Problem1.printResultYMat();
for (int l=0; l<Problem1.getBlockNumber(); ++l) {
if (Problem1.getBlockType(l+1) == SDPA::SDP) {
printMatrix(Problem1.getResultYMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
else if (Problem1.getBlockType(l+1) == SDPA::SOCP) {
printf("current version does not support SOCP\n");
}
if (Problem1.getBlockType(l+1) == SDPA::LP) {
printVector(Problem1.getResultYMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
}
double dimacs_error[7];
Problem1.getDimacsError(dimacs_error);
printDimacsError(dimacs_error,(char*)"%+8.3e",stdout);
// Problem1.printComputationTime(stdout);
Problem1.finalize();
exit(0);
};
void printVector(double* ele, int dim, char* printFormat, FILE* fpout)
{
fprintf(fpout,"[ ");
for (int k=0; k<dim-1; ++k) {
fprintf(fpout,printFormat,ele[k]);
fprintf(fpout," ");
}
fprintf(fpout,printFormat,ele[dim-1]);
fprintf(fpout,"]; \n");
}
void printMatrix(double* ele, int dim, char* printFormat, FILE* fpout)
{
fprintf(fpout,"[\n");
for (int i=0; i<dim; ++i) {
fprintf(fpout,"[ ");
for (int j=0; j<dim-1; ++j) {
fprintf(fpout,printFormat,ele[i+dim*j]);
fprintf(fpout," ");
}
fprintf(fpout,printFormat,ele[i+dim*(dim-1)]);
fprintf(fpout,"]; \n");
}
fprintf(fpout,"]; \n");
}
void printDimacsError(double dimacs_error[7],char* printFormat,
FILE* fpout)
{
fprintf(fpout, "\n");
fprintf(fpout, "* DIMACS_ERRORS * \n");
fprintf(fpout, "err1 = ");
fprintf(fpout, printFormat, dimacs_error[1]);
fprintf(fpout, " [||Ax-b|| / (1+||b||_1)]\n");
fprintf(fpout, "err2 = ");
fprintf(fpout, printFormat, dimacs_error[2]);
fprintf(fpout, " [max(0, -lambda(x)/(1+||b||_1))]\n");
fprintf(fpout, "err3 = ");
fprintf(fpout, printFormat, dimacs_error[3]);
fprintf(fpout, " [||A^Ty + z - c || / (1+||c||_1)]\n");
fprintf(fpout, "err4 = ");
fprintf(fpout, printFormat, dimacs_error[4]);
fprintf(fpout, " [max(0, -lambda(z)/(1+||c||_1))]\n");
fprintf(fpout, "err5 = ");
fprintf(fpout, printFormat, dimacs_error[5]);
fprintf(fpout, " [(<c,x> - <b,y>) / (1 + |<c,x>| + |<b,y>|)]\n");
fprintf(fpout, "err6 = ");
fprintf(fpout, printFormat, dimacs_error[6]);
fprintf(fpout, " [<x,z> / (1 + |<c,x>| + |<b,y>|)]\n");
fprintf(fpout, "\n");
}
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
// Here is the start of ``example1.cpp''
#include <cstdio>
#include <cstdlib>
#include <sdpa_call.h>
/*
*Example 2:
*mDim = 5, nBLOCK = 3, {2,3,-2}
5 = mDIM
3 = nBLOCK
2 3 -2 = bLOCKsTRUCT
{1.1, -10, 6.6 , 19 , 4.1}
{
{ { -1.4, -3.2 },
{ -3.2,-28 } }
{ { 15, -12, 2.1 },
{-12, 16, -3.8 },
{ 2.1, -3.8, 15 } }
{ 1.8, -4.0 }
}
{
{ { 0.5, 5.2 },
{ 5.2, -5.3 } }
{ { 7.8, -2.4, 6.0 },
{ -2.4, 4.2, 6.5 },
{ 6.0, 6.5, 2.1 } }
{ -4.5, -3.5 }
}
{
{ { 1.7, 7.0 },
{ 7.0, -9.3 } }
{ {-1.9, -0.9, -1.3 },
{-0.9, -0.8, -2.1 },
{-1.3, -2.1, 4.0 } }
{-0.2, -3.7 }
}
{
{ { 6.3, -7.5 },
{-7.5, -3.3 } }
{ { 0.2, 8.8, 5.4 },
{ 8.8, 3.4, -0.4 },
{ 5.4, -0.4, 7.5 } }
{-3.3, -4.0 }
}
{
{ { -2.4, -2.5 },
{ -2.5, -2.9 } }
{ { 3.4, -3.2, -4.5 },
{ -3.2, 3.0, -4.8 },
{ -4.5, -4.8, 3.6 } }
{ 4.8 , 9.7 }
}
{
{ { -6.5, -5.4 },
{ -5.4, -6.6 } }
{ { 6.7, -7.2, -3.6 },
{ -7.2, 7.3, -3.0 },
{ -3.6, -3.0, -1.4 } }
{ 6.1, -1.5 }
}
*/
void printVector(double* ele, int dim, char* printFormat,
FILE* fpout);
void printMatrix(double* ele, int dim, char* printFormat,
FILE* fpout);
void printDimacsError(double dimacs_error[7],char* printFormat,
FILE* fpout);
int main ()
{
SDPA::printSDPAVersion(stdout);
SDPA Problem1;
Problem1.setDisplay(stdout);
// All parameteres are renewed
Problem1.setParameterType(SDPA::PARAMETER_DEFAULT);
// Problem1.printParameters(stdout);
int mDIM = 5;
int nBlock = 3;
Problem1.inputConstraintNumber(mDIM);
Problem1.inputBlockNumber(nBlock);
// bLOCKsTRUCT :: 2(SDP) 3(SDP) -2(LP)
Problem1.inputBlockSize(1,2);
Problem1.inputBlockSize(2,3);
Problem1.inputBlockSize(3,-2);
Problem1.inputBlockType(1,SDPA::SDP);
Problem1.inputBlockType(2,SDPA::SDP);
Problem1.inputBlockType(3,SDPA::LP);
Problem1.initializeUpperTriangleSpace();
//cVECT = {1.1, -10, 6.6 , 19 , 4.1}
Problem1.inputCVec(1,1.1);
Problem1.inputCVec(2,-10);
Problem1.inputCVec(3,6.6);
Problem1.inputCVec(4,19);
Problem1.inputCVec(5,4.1);
// --------- Input F_0 --------------------
// 1st block
// { { -1.4, -3.2},
// { -3.2, -28} }
Problem1.inputElement(0, 1, 1, 1, -1.4);
Problem1.inputElement(0, 1, 1, 2, -3.2);
Problem1.inputElement(0, 1, 2, 2, -28);
// 2nd block
// { { 15, -12, 2.1 },
// {-12, 16, -3.8 },
// { 2.1, -3.8, 15 } }
Problem1.inputElement(0, 2, 1, 1, 15);
Problem1.inputElement(0, 2, 1, 2, -12);
Problem1.inputElement(0, 2, 1, 3, 2.1);
Problem1.inputElement(0, 2, 2, 2, 16);
Problem1.inputElement(0, 2, 2, 3,-3.8);
Problem1.inputElement(0, 2, 3, 3, 15);
// 3rd block
// { 1.8, -4.0 }
Problem1.inputElement(0, 3, 1, 1, 1.8);
Problem1.inputElement(0, 3, 2, 2,-4.0);
// --------- Input F_1 --------------------
// 1st block
// { { 0.5, 5.2},
// { 5.2, -5.3} }
Problem1.inputElement(1, 1, 1, 1, 0.5);
Problem1.inputElement(1, 1, 1, 2, 5.2);
Problem1.inputElement(1, 1, 2, 2,-5.3);
// 2nd block
// { { 7.8, -2.4, 6.0 },
// {-2.4, 4.2, 6.5 },
// { 6.0, 6.5, 2.1 } }
Problem1.inputElement(1, 2, 1, 1, 7.8);
Problem1.inputElement(1, 2, 1, 2,-2.4);
Problem1.inputElement(1, 2, 1, 3, 6.0);
Problem1.inputElement(1, 2, 2, 2, 4.2);
Problem1.inputElement(1, 2, 2, 3, 6.5);
Problem1.inputElement(1, 2, 3, 3, 2.1);
// 3rd block
// { -4.5, -3.5 }
Problem1.inputElement(1, 3, 1, 1, -4.5);
Problem1.inputElement(1, 3, 2, 2, -3.5);
// --------- Input F_2 --------------------
// 1st block
// { { 1.7, 7.0},
// { 7.0,-9.3} }
Problem1.inputElement(2, 1, 1, 1, 1.7);
Problem1.inputElement(2, 1, 1, 2, 7.0);
Problem1.inputElement(2, 1, 2, 2, -9.3);
// 2nd block
// { {-1.9, -0.9, -1.3 },
// {-0.9, -0.8, -2.1 },
// {-1.3, -2.1, 4.0 } }
Problem1.inputElement(2, 2, 1, 1, -1.9);
Problem1.inputElement(2, 2, 1, 2, -0.9);
Problem1.inputElement(2, 2, 1, 3, -1.3);
Problem1.inputElement(2, 2, 2, 2, -0.8);
Problem1.inputElement(2, 2, 2, 3, -2.1);
Problem1.inputElement(2, 2, 3, 3, 4.0);
// 3rd block
// { -0.2, -3.7 }
Problem1.inputElement(2, 3, 1, 1, -0.2);
Problem1.inputElement(2, 3, 2, 2, -3.7);
// --------- Input F_3 --------------------
// 1st block
// { { 6.3, -7.5},
// { -7.5, -3.3} }
Problem1.inputElement(3, 1, 1, 1, 6.3);
Problem1.inputElement(3, 1, 1, 2, -7.5);
Problem1.inputElement(3, 1, 2, 2, -3.3);
// 2nd block
// { { 0.2, 8.8, 5.4 },
// { 8.8, 3.4, -0.4 },
// { 5.4, -0.4, 7.5 } }
Problem1.inputElement(3, 2, 1, 1, 0.2);
Problem1.inputElement(3, 2, 1, 2, 8.8);
Problem1.inputElement(3, 2, 1, 3, 5.4);
Problem1.inputElement(3, 2, 2, 2, 3.4);
Problem1.inputElement(3, 2, 2, 3, -0.4);
Problem1.inputElement(3, 2, 3, 3, 7.5);
// 3rd block
// { -3.3, -4.0 }
Problem1.inputElement(3, 3, 1, 1, -3.3);
Problem1.inputElement(3, 3, 2, 2, -4.0);
// --------- Input F_4 --------------------
// 1st block
// { { -2.4, -2.5},
// { -2.5, -2.9} }
Problem1.inputElement(4, 1, 1, 1, -2.4);
Problem1.inputElement(4, 1, 1, 2, -2.5);
Problem1.inputElement(4, 1, 2, 2, -2.9);
// 2nd block
// { { 3.4, -3.2, -4.5 },
// { -3.2, 3.0, -4.8 },
// { -4.5, -4.8, 3.6 } }
Problem1.inputElement(4, 2, 1, 1, 3.4);
Problem1.inputElement(4, 2, 1, 2, -3.2);
Problem1.inputElement(4, 2, 1, 3, -4.5);
Problem1.inputElement(4, 2, 2, 2, 3.0);
Problem1.inputElement(4, 2, 2, 3, -4.8);
Problem1.inputElement(4, 2, 3, 3, 3.6);
// 3rd block
// { 4.8, 9.7 }
Problem1.inputElement(4, 3, 1, 1, 4.8);
Problem1.inputElement(4, 3, 2, 2, 9.7);
// --------- Input F_5 --------------------
// 1st block
// { { -6.5, -5.4},
// { -5.4, -6.6} }
Problem1.inputElement(5, 1, 1, 1, -6.5);
Problem1.inputElement(5, 1, 1, 2, -5.4);
Problem1.inputElement(5, 1, 2, 2, -6.6);
// 2nd block
// { { 6.7, -7.2, -3.6 },
// { -7.2, 7.3, -3.0 },
// { -3.6, -3.0, -1.4 } }
Problem1.inputElement(5, 2, 1, 1, 6.7);
Problem1.inputElement(5, 2, 1, 2, -7.2);
Problem1.inputElement(5, 2, 1, 3, -3.6);
Problem1.inputElement(5, 2, 2, 2, 7.3);
Problem1.inputElement(5, 2, 2, 3, -3.0);
Problem1.inputElement(5, 2, 3, 3, -1.4);
// 3rd block
// { 6.1, -1.5 }
Problem1.inputElement(5, 3, 1, 1, 6.1);
Problem1.inputElement(5, 3, 2, 2,-1.5);
Problem1.initializeUpperTriangle();
Problem1.initializeSolve();
// if necessary, dump input data and initial point
// Problem1.writeInputSparse((char*)"tmp.dat-s",(char*)"%+8.3e");
// Problem1.writeInitSparse((char*)"tmp.ini-s",(char*)"%+8.3e");
Problem1.solve();
fprintf(stdout, "\nStop iteration = %d\n",
Problem1.getIteration());
char phase_string[30];
Problem1.getPhaseString(phase_string);
fprintf(stdout, "Phase = %s\n", phase_string);
fprintf(stdout, "objValPrimal = %+10.6e\n",
Problem1.getPrimalObj());
fprintf(stdout, "objValDual = %+10.6e\n",
Problem1.getDualObj());
fprintf(stdout, "p. feas. error = %+10.6e\n",
Problem1.getPrimalError());
fprintf(stdout, "d. feas. error = %+10.6e\n\n",
Problem1.getDualError());
fprintf(stdout, "xVec = \n");
// Problem1.printResultXVec();
printVector(Problem1.getResultXVec(),
Problem1.getConstraintNumber(), (char*)"%+8.3e",
stdout);
fprintf(stdout, "xMat = \n");
// Problem1.printResultXMat();
for (int l=0; l<Problem1.getBlockNumber(); ++l) {
if (Problem1.getBlockType(l+1) == SDPA::SDP) {
printMatrix(Problem1.getResultXMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
else if (Problem1.getBlockType(l+1) == SDPA::SOCP) {
printf("current version does not support SOCP\n");
}
if (Problem1.getBlockType(l+1) == SDPA::LP) {
printVector(Problem1.getResultXMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
}
fprintf(stdout, "yMat = \n");
// Problem1.printResultYMat();
for (int l=0; l<Problem1.getBlockNumber(); ++l) {
if (Problem1.getBlockType(l+1) == SDPA::SDP) {
printMatrix(Problem1.getResultYMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
else if (Problem1.getBlockType(l+1) == SDPA::SOCP) {
printf("current version does not support SOCP\n");
}
if (Problem1.getBlockType(l+1) == SDPA::LP) {
printVector(Problem1.getResultYMat(l+1),
Problem1.getBlockSize(l+1), (char*)"%+8.3e",
stdout);
}
}
double dimacs_error[7];
Problem1.getDimacsError(dimacs_error);
printDimacsError(dimacs_error,(char*)"%+8.3e",stdout);
// Problem1.printComputationTime(stdout);
Problem1.finalize();
exit(0);
};
void printVector(double* ele, int dim, char* printFormat, FILE* fpout)
{
fprintf(fpout,"[ ");
for (int k=0; k<dim-1; ++k) {
fprintf(fpout,printFormat,ele[k]);
fprintf(fpout," ");
}
fprintf(fpout,printFormat,ele[dim-1]);
fprintf(fpout,"]; \n");
}
void printMatrix(double* ele, int dim, char* printFormat, FILE* fpout)
{
fprintf(fpout,"[\n");
for (int i=0; i<dim; ++i) {
fprintf(fpout,"[ ");
for (int j=0; j<dim-1; ++j) {
fprintf(fpout,printFormat,ele[i+dim*j]);
fprintf(fpout," ");
}
fprintf(fpout,printFormat,ele[i+dim*(dim-1)]);
fprintf(fpout,"]; \n");
}
fprintf(fpout,"]; \n");
}
void printDimacsError(double dimacs_error[7],char* printFormat,
FILE* fpout)
{
fprintf(fpout, "\n");
fprintf(fpout, "* DIMACS_ERRORS * \n");
fprintf(fpout, "err1 = ");
fprintf(fpout, printFormat, dimacs_error[1]);
fprintf(fpout, " [||Ax-b|| / (1+||b||_1)]\n");
fprintf(fpout, "err2 = ");
fprintf(fpout, printFormat, dimacs_error[2]);
fprintf(fpout, " [max(0, -lambda(x)/(1+||b||_1))]\n");
fprintf(fpout, "err3 = ");
fprintf(fpout, printFormat, dimacs_error[3]);
fprintf(fpout, " [||A^Ty + z - c || / (1+||c||_1)]\n");
fprintf(fpout, "err4 = ");
fprintf(fpout, printFormat, dimacs_error[4]);
fprintf(fpout, " [max(0, -lambda(z)/(1+||c||_1))]\n");
fprintf(fpout, "err5 = ");
fprintf(fpout, printFormat, dimacs_error[5]);
fprintf(fpout, " [(<c,x> - <b,y>) / (1 + |<c,x>| + |<b,y>|)]\n");
fprintf(fpout, "err6 = ");
fprintf(fpout, printFormat, dimacs_error[6]);
fprintf(fpout, " [<x,z> / (1 + |<c,x>| + |<b,y>|)]\n");
fprintf(fpout, "\n");
}
+55
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@@ -0,0 +1,55 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
// Here is the start of ``example5.cpp''
#include <cstdio>
#include <cstdlib>
#include <sdpa_call.h>
int main(int argc, char** argv)
{
if (argc != 4) {
fprintf(stderr, "%s [Input] [Output] [Param] \n", argv[0]);
exit(EXIT_FAILURE);
}
SDPA Problem1;
FILE* fpresult;
if ((fpresult = fopen(argv[2],"w")) == NULL) {
fprintf(stderr, "Cannot Open %s \n", argv[2]);
}
Problem1.setResultFile(fpresult);
// fpresult records which file is read from argv[3]
Problem1.readParameter(argv[3],fpresult);
// Note that readParameter should be called before readInput
// Otherwise initial point cannot be decided by lambdaStar
Problem1.readInput(argv[1],fpresult);
Problem1.initializeSolve();
// All results and intermediate log are written into fpresult
Problem1.solve();
fclose(fpresult);
Problem1.finalize();
exit(0);
}
Binary file not shown.
+15
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100 unsigned int maxIteration;
1.0E-7 double 0.0 < epsilonStar;
1.0E2 double 0.0 < lambdaStar;
2.0 double 1.0 < omegaStar;
-1.0E5 double lowerBound;
1.0E5 double upperBound;
0.1 double 0.0 <= betaStar < 1.0;
0.3 double 0.0 <= betaBar < 1.0, betaStar <= betaBar;
0.9 double 0.0 < gammaStar < 1.0;
1.0E-7 double 0.0 < epsilonDash;
%+8.3e char* xPrint (default %+8.3e, NOPRINT skips printout)
%+8.3e char* XPrint (default %+8.3e, NOPRINT skips printout)
%+8.3e char* YPrint (default %+8.3e, NOPRINT skips printout)
%+10.16e char* infPrint (default %+10.16e, NOPRINT skips printout)
+30
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sdpa_block.o: sdpa_block.cpp sdpa_block.h sdpa_include.h sdpa_right.h \
sdpa_tool.h
sdpa_call.o: sdpa_call.cpp sdpa_call.h sdpa_io.h sdpa_block.h \
sdpa_include.h sdpa_right.h sdpa_tool.h sdpa_parts.h sdpa_dataset.h \
sdpa_struct.h sdpa_linear.h
sdpa_chordal.o: sdpa_chordal.cpp sdpa_chordal.h sdpa_dataset.h \
sdpa_include.h sdpa_right.h sdpa_tool.h sdpa_struct.h sdpa_block.h
sdpa_dataset.o: sdpa_dataset.cpp sdpa_dataset.h sdpa_include.h \
sdpa_right.h sdpa_tool.h sdpa_struct.h sdpa_block.h sdpa_parts.h \
sdpa_linear.h sdpa_newton.h sdpa_chordal.h
sdpa_dpotrf.o: sdpa_dpotrf.cpp sdpa_include.h sdpa_right.h sdpa_tool.h \
sdpa_algebra.h
sdpa_exe.o: sdpa_exe.cpp
sdpa_io.o: sdpa_io.cpp sdpa_io.h sdpa_block.h sdpa_include.h sdpa_right.h \
sdpa_tool.h sdpa_parts.h sdpa_dataset.h sdpa_struct.h sdpa_linear.h
sdpa_linear.o: sdpa_linear.cpp sdpa_linear.h sdpa_struct.h sdpa_include.h \
sdpa_right.h sdpa_tool.h sdpa_block.h sdpa_dataset.h sdpa_dpotrf.h \
sdpa_algebra.h
sdpa_newton.o: sdpa_newton.cpp sdpa_newton.h sdpa_chordal.h \
sdpa_dataset.h sdpa_include.h sdpa_right.h sdpa_tool.h sdpa_struct.h \
sdpa_block.h sdpa_parts.h sdpa_linear.h sdpa_algebra.h
sdpa_parts.o: sdpa_parts.cpp sdpa_parts.h sdpa_include.h sdpa_right.h \
sdpa_tool.h sdpa_dataset.h sdpa_struct.h sdpa_block.h sdpa_linear.h \
sdpa_newton.h sdpa_chordal.h
sdpa_solve.o: sdpa_solve.cpp sdpa_call.h sdpa_linear.h sdpa_struct.h \
sdpa_include.h sdpa_right.h sdpa_tool.h sdpa_block.h sdpa_io.h \
sdpa_parts.h sdpa_dataset.h
sdpa_struct.o: sdpa_struct.cpp sdpa_struct.h sdpa_include.h sdpa_right.h \
sdpa_tool.h sdpa_block.h sdpa_algebra.h sdpa_linear.h sdpa_dataset.h
sdpa_tool.o: sdpa_tool.cpp sdpa_tool.h sdpa_right.h
+62
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#########################################################
# Edit below accordingly your environment
#########################################################
# The base directory of SDPA-C
sdpac_dir = $(HOME)/sdpa-c
# The compilers
CC = gcc
CXX = g++
FC = gfortran
# The compiler options
# To generate mex files, you should not remove '-fPIC' from FLAGS
# When you use OpenBLAS, you should not remove '-DOPENBLAS' from CXXFLAGS
CFLAGS = -O3 -fPIC
CXXFLAGS = -O3 -fPIC -DOPENBLAS
FCFLAGS = -O3 -fPIC
#########################################################
# Usually, you do not have to edit below
#########################################################
SDPAC_VERSION = \"7.3.8\"
sdpac_lib = libsdpa-c.a
sdpac_exe = sdpa-c
## do not add '/' to the end of suitesparse_dir
suitesparse_dir = $(sdpac_dir)/SuiteSparse
suitesparse_include = -I$(suitesparse_dir)/CHOLMOD/Include \
-I$(suitesparse_dir)/SuiteSparse_config
suitesparse_lib = $(suitesparse_dir)/CHOLMOD/Lib/libcholmod.a \
$(suitesparse_dir)/CCOLAMD/Lib/libccolamd.a \
$(suitesparse_dir)/COLAMD/Lib/libcolamd.a \
$(suitesparse_dir)/CAMD/Lib/libcamd.a \
$(suitesparse_dir)/AMD/Lib/libamd.a \
$(suitesparse_dir)/metis-5.1.0/libmetis.a \
$(suitesparse_dir)/SuiteSparse_config/libsuitesparseconfig.a
suitesparse_ver = 5.1.2
## do not add '/' to the end of mumps_dir
mumps_dir = $(sdpac_dir)/mumps
mumps_include = -I$(mumps_dir)/include
mumps_lib = $(mumps_dir)/lib/libdmumps.a \
$(mumps_dir)/lib/libmumps_common.a \
$(mumps_dir)/lib/libpord.a \
$(mumps_dir)/libseq/libmpiseq.a
mumps_ver = 5.1.2
mumps_tar_file = mumps_${mumps_ver}.orig.tar.gz
## do not add '/' to the end of openblas_dir
openblas_dir = $(sdpac_dir)/OpenBLAS
openblas_lib = $(openblas_dir)/libopenblas.a
openmp_lib = -lgomp -lpthread
fortran_lib = -lgfortran
realtime_lib = -lrt
sdpac_all_include = $(suitesparse_include) $(mumps_include)
sdpac_all_lib = $(suitesparse_lib) $(mumps_lib) $(openblas_lib) \
$(openmp_lib) $(fortran_lib) $(realtime_lib)
+60
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This is a short list for SDPA-M command.
(1) read_data.m
>> [mDIM,nBLOCK,bLOCKsTRUCT,c,F] = read_data('example1.dat-s');
will read 'example1.dat-s' into the SDPA-M structures.
(2) paramC.m
>> OPTION=paramC;
will prepare default parameter. You can change the parameter
by this OPTION structure.
(3) sdpam.m
>> [objVal,x,X,Y,INFO] = sdpam(mDIM,nBLOCK,bLOCKsTRUCT,c,F);
or
>> [objVal,x,X,Y,INFO] = sdpam(mDIM,nBLOCK,bLOCKsTRUCT,c,F,OPTION);
will solve the SDP.
(4) gensdpafile.m
>> gensdpafile('myexample.dat-s',mDIM,nBLOCK,bLOCKsTRUCT,c,F);
will output the SDPA-M structure into 'myexample.dat-s'.
(5) initial_point.m
>> [x0,X0,Y0] = initial_point('example1.ini-s', mDIM, nBLOCK, bLOCKsTRUCT);
will read an initial point from 'example1.ini-s'.
You need to prepare mDIM, nBLOCK, bLOCKsTRUCT by read_data.m
(6) SDPAToSedumi.m
>> [At,b,c,K,blockStruct] = SDPAToSedumi('example1.dat-s');
will read 'example1.dat-s' into SeDuMi structures with
an additional structure 'blockStruct'.
(7) sedumiwrap.m
>> [x,y,info]=sedumiwrap(A,b,c,K,pars,OPTION);
will solve the SDP given in SeDuMi strucutres.
The 5th argument 'pars' will be ignored
and the 6th argument can be prepared by param.m
(8) SedumiToSDPA.m
>> SedumiToSDPA('myexample.dat-s',A,b,c,K,'%8.16e');
will output SeDuMi structures into 'myexample.dat-s'.
'%8.16' determines the output style by printf-format.
(9) read_output.m
>> [objVal,x,X,Y,INFO] = read_output('example1.result',mDIM,nBLOCK,bLOCKsTRUCT);
will read the result file generated by SDPA.
If you solve 'example1.dat-s' by
$ ./sdpa example1.dat-s example1.result
then this result can be read by
>> [mDIM,nBLOCK,bLOCKsTRUCT,c,F] = read_data('example1.dat-s');
>> [objVal,x,X,Y,INFO] = read_output('example1.result',mDIM,nBLOCK,bLOCKsTRUCT);
(10) read_outputSedumi.m
>> [x,y,info] = read_outputSedumi('example1.result',m,K);
will read the result file generated by SDPA.
If you solve 'example1.dat-s' by
$ ./sdpa example1.dat-s example1.result
then this result can be read by
>> [At,b,c,K,blockStruct] = SDPAToSedumi('example1.dat-s');
>> [x,y,info] = read_outputSedumi('example1.result',m,K);
+131
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#
# SDPA-M: $Revision: 7.3 $
#
# For Matlab
# $ make
# For Octave
# $ make COMPILE_ENVIRONMENT=octave
# after "make install", you can find
# 'make.inc' in 'share/sdpa' sub-directory under the installed directory
# For example
# make MAKE_INCLUDE_DIR=/usr/share/sdpa
# or
# make MAKE_INCLUDE_DIR=/usr/local/share/sdpa
# In addition, for Octave, you should try
# make MAKE_INCLUDE_DIR=/usr/local/share/sdpa COMPILE_ENVIRONMENT=octave
# To compile with mingw, the following command is a sample.
# Your need to modify directory names and compiler names.
# make MEX="i586-mingw32msvc-g++ -shared" COMPILE_ENVIRONMENT=octave \
# PRINTF_INT_STYLE=-DPRINTF_INT_STYLE=\\\"%zd\\\" \
# OUTPUT_FORMAT="-o \$@.mexw32" \
# MATLAB_INCLUDE="-Imatlab-extern/include" \
# MATLAB_LIBS="-I/matlab-extern/microsoft/libmx.lib -I/matlab-extern/microsoft/libmex.lib" \
# for only SDPA-Project members
# set DEVELOPEMENT_STAGE=1 to compile without 'make install'
# For example
# make MAKE_INCLUDE_DIR=../etc DEVELOPEMENT_STAGE=1
# In addition, for Octave, you should try
# make MAKE_INCLUDE_DIR=../etc DEVELOPEMENT_STAGE=1 COMPILE_ENVIRONMENT=octave
# This file is a component of SDPA
# Copyright (C) 2004-2013 SDPA Project
# This program is free software; you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation; either version 2 of the License, or
# (at your option) any later version.
# This program is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
# GNU General Public License for more details.
# You should have received a copy of the GNU General Public License
# along with this program; if not, write to the Free Software
# Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
MAKE_INCLUDE_DIR=..
-include ${MAKE_INCLUDE_DIR}/make.inc
# after "make install", you can find
# 'make.inc' in 'share/sdpa' sub-directory under the installed directory
# For example
# make MAKE_INCLUDE_DIR=/usr/share/sdpa
# or
# make MAKE_INCLUDE_DIR=/usr/local/share/sdpa
MEX = mex
DEF_FPIC = -fPIC
CXXFLAGSOPTIONS = CXXFLAGS="-Wall -fPIC" -O -DNDEBUG CC=${CC} CXX=${CXX}
LARGEARRAYOPTION = -largeArrayDims
SDPA_INCLUDE = -I${SDPA_DIR}/include
ifeq ($(DEVELOPEMENT_STAGE),1)
SDPA_INCLUDE = -I..
SDPA_LIB = ../libsdpa-c.a
endif
PRINTF_INT_STYLE = -DPRINTF_INT_STYLE=\\\"%zd\\\"
# Output format is usually automatically set by mex command.
OUTPUT_FORMAT =
ifeq ($(COMPILE_ENVIRONMENT),octave)
MEX = CC=${CC} CXX=${CXX} mkoctfile --mex
CXXFLAGSOPTIONS =
LARGEARRAYOPTION =
PRINTF_INT_STYLE = -DPRINTF_INT_STYLE=\\\"%d\\\"
endif
ALL_OPTION = ${CXXFLAGSOPTIONS} ${LARGEARRAYOPTION} ${PRINTF_INT_STYLE}
all: mexsdpaC mexSedumiWrapC
# all: mexSedumiWrap
mexBinaryCheck:
@echo "---------------------------------------------"
@echo "Mex Compilation Start "
@echo "---------------------------------------------"
@if [ -f $(MEX) ]; then \
echo "---------------------------------------------" ;\
echo " We use " ;\
echo " " $(MEX) ;\
echo " for Mex compilaton " ;\
echo "---------------------------------------------" ;\
else \
echo "---------------------------------------------" ;\
echo "Automatic search is failed, " ;\
echo " Set the full path for mex command mannually " ;\
echo " in "`pwd`"/Makekefile" ;\
echo " and try 'make' in `pwd` " ;\
echo "---------------------------------------------" ;\
false ;\
fi
mexsdpaC:
${MEX} ${ALL_OPTION} \
${OUTPUT_FORMAT} \
${SDPA_INCLUDE} ${sdpac_all_include} \
mexsdpaC.cpp mexFprintf.c \
${SDPA_LIB} ${sdpac_all_lib}
mexSedumiWrapC:
${MEX} ${ALL_OPTION} \
${OUTPUT_FORMAT} \
${SDPA_INCLUDE} ${sdpac_all_include} \
mexSedumiWrapC.cpp mexFprintf.c \
${SDPA_LIB} ${sdpac_all_lib}
# clean all generated files
clean:
rm -f *~ *.o
dist-clean: clean
rm -f mexsdpaC.mex* mexSedumiWrapC.mex*
#
# End of File
#
+116
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@@ -0,0 +1,116 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#include <stdio.h>
#include <stdarg.h>
#include <string.h>
#include <stdlib.h>
#include <mex.h>
#define BUF_LENGTH 4096
int fprintf(FILE *stream, const char *format, ...)
{
va_list arg;
va_start(arg,format);
int return_size = 0;
if (stream == stdout) {
char tmp_buf[BUF_LENGTH];
vsprintf(tmp_buf,format,arg);
#if 0
printf("tmp_buf = %s",tmp_buf);
#endif
mexPrintf(tmp_buf);
mexEvalString("drawnow;"); /* to dump string.*/
return_size = strlen(tmp_buf);
if ( return_size >= BUF_LENGTH ) {
mexPrintf("Too Long Message To PrintOut "
"(some part might be truncated)");
}
}
else {
return_size = vfprintf(stream,format,arg);
}
va_end(arg);
return return_size;
}
static int internal_fprintf(FILE *stream, const char *format, ...)
{
va_list arg;
va_start(arg,format);
int return_size = 0;
return_size = vfprintf(stream,format,arg);
va_end(arg);
return return_size;
}
size_t fwrite(const void *ptr, size_t size, size_t nmemb,
FILE *stream)
{
#if 1
fprintf(stream,"%s",(const char*)ptr);
#else
// internal_fprintf does not work well here
internal_fprintf(stream, (const char*) internal_fprintf);
#endif
return 1;
}
int fputc(int c, FILE* fp)
{
if (fp == stdout) {
mexPrintf("%c",(unsigned char)c);
}
else {
internal_fprintf(fp,"%c",c);
/* fprintf(fp,"%c ",c);*/
}
return c;
}
#ifdef __GNUC__
/*Only GNU, to avoid
warning: 'noreturn' function does return
*/
static void internal_exit() __attribute__ ((noreturn));
extern void mexErrMsgTxt(const char*) __attribute__ ((noreturn));
void exit() __attribute__ ((noreturn));
void abort() __attribute__ ((noreturn));
#endif
static void internal_exit()
{
mexWarnMsgTxt("SDPA-C exits with some error.");
mexWarnMsgTxt("Matlab should be reboot to clear up memory space.");
mexErrMsgTxt("SDPA-C exits with some error.");
}
void exit(int status)
{
internal_exit();
}
void abort(void)
{
internal_exit();
}
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/*
* This file is a component of SDPA
* Copyright (C) 2004-2013 SDPA Project
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
*
* SDPA-M: 7.3
* mexsdpa.cpp
*/
#include <mex.h>
/*
* SDPA header files
*/
#include <sdpa_tool.h>
#include <sdpa_call.h>
using namespace sdpa;
extern void _main();
void sdpasolver(mxArray* At_ptr, mxArray* b_ptr, mxArray* c_ptr,
mxArray* K_ptr, mxArray* OPTION_ptr,
mxArray* x_ptr, mxArray* y_ptr,
mxArray* info_ptr)
{
time_t ltime;
time(&ltime);
char string_time[1024];
strcpy(string_time,ctime(&ltime));
string_time[strlen(string_time)-1]='\0';
SDPA sdpa;
int maxIteration = 0;
double param = 0.0;
/* mxArray pointer */
mxArray *field_ptr = NULL;
int nSymmChk = 0;
int nDimacs = 0;
/* strings for phase value */
const char *szPhase[] = {
"noINFO", "pFEAS", "dFEAS", "pdFEAS", "pdINF",
"pFEAS_dINF", "pINF_dFEAS", "pdOPT", "pUNBD", "dUNBD"};
/* output file */
char *outfile = NULL;
FILE *fp = NULL;
FILE *fpResult = NULL;
int nOutfile = 0;
mwSize mDIM;
mwSize nBLOCK;
/* temporary variables */
mwIndex k;
int size;
mwSize mwsize;
double *tmp_ptr = NULL;
char* tmpPrint = NULL;
TimeStart(SDPA_START);
TimeStart(SDPA_CONVERT_START);
/*** Set SDPA parameters by OPTIONS ***/
/* Max Iteration */
field_ptr = mxGetField(OPTION_ptr, 0, "maxIteration");
if( field_ptr != NULL ){
maxIteration = (int)mxGetScalar(field_ptr);
// mexPrintf("maxIteration = %d\n",maxIteration);
sdpa.setParameterMaxIteration(maxIteration);
}
/* epsilonStar */
field_ptr = mxGetField(OPTION_ptr, 0, "epsilonStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterEpsilonStar(param);
}
/* lambdaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "lambdaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterLambdaStar(param);
}
/* omegaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "omegaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterOmegaStar(param);
}
/* lowerBound */
field_ptr = mxGetField(OPTION_ptr, 0, "lowerBound");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterLowerBound(param);
}
/* upperBound */
field_ptr = mxGetField(OPTION_ptr, 0, "upperBound");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterUpperBound(param);
}
/* betaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "betaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterBetaStar(param);
}
/* betaBar */
field_ptr = mxGetField(OPTION_ptr, 0, "betaBar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterBetaBar(param);
}
/* gammaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "gammaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterGammaStar(param);
}
/* epsilonDash */
field_ptr = mxGetField(OPTION_ptr, 0, "epsilonDash");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterEpsilonDash(param);
}
/* xPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "xPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintXVec(tmpPrint);
mxFree(tmpPrint);
}
/* XPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "XPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintXMat(tmpPrint);
mxFree(tmpPrint);
}
/* YPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "YPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintYMat(tmpPrint);
mxFree(tmpPrint);
}
/* infPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "infPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintInformation(tmpPrint);
mxFree(tmpPrint);
}
/* isSymmetric */
field_ptr = mxGetField(OPTION_ptr, 0, "isSymmetric");
if( field_ptr != NULL ){
nSymmChk = (int)mxGetScalar(field_ptr);
}
/* isDimacs */
field_ptr = mxGetField(OPTION_ptr, 0, "isDimacs");
if( field_ptr != NULL ){
nDimacs = (int)mxGetScalar(field_ptr);
}
/* print */
field_ptr = mxGetField(OPTION_ptr, 0, "print");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
if (mwsize == 1) {
// mexPrintf("display is NULL\n");
fp = NULL;
}
else {
outfile = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, outfile, mwsize);
if( strncmp("display", outfile, mwsize - 1) == 0 ){
fp = stdout;
} else if( strncmp("no", outfile, mwsize - 1) == 0 ){
fp = NULL;
} else {
fp = fopen(outfile, "at");
if( fp == NULL ){
mexPrintf("Failed to open %s\n", outfile);
fp = stdout;
} else {
nOutfile = 1;
}
}
mxFree(outfile);
}
} else {
/* default setting is displaying information to stdout */
fp = stdout;
}
sdpa.setDisplay(fp);
/* resultFile */
field_ptr = mxGetField(OPTION_ptr, 0, "resultFile");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
if (mwsize == 1) {
// mexPrintf("resultFile is NULL\n");
}
else {
outfile = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, outfile, mwsize);
if ( strncmp("no", outfile, mwsize - 1) == 0 ) {
mexPrintf("resultFile is NULL\n");
}
else {
fpResult = fopen(outfile, "w");
if ( fpResult == NULL ) {
mexPrintf("Failed to open %s\n", outfile);
mexPrintf("Skip the detail file\n");
} else {
sdpa.setResultFile(fpResult);
}
}
mxFree(outfile);
}
}
if (fp) {
fprintf(fp,"SDPA-C start at [%s]\n",string_time);
}
if (fpResult) {
fprintf(fpResult,"SDPA-C start at [%s]\n",string_time);
}
if (nDimacs != 0) {
if (sdpa.judgeDimacsAvailability() == false) {
if (fp) {
fprintf(fp, "Dimacs will be skipped by XPrint and YPrint parameter.\n");
}
if (fpResult) {
fprintf(fpResult, "Dimacs will be skipped by XPrint and YPrint parameter.\n");
}
nDimacs = 0;
}
}
/* NumThreads */
field_ptr = mxGetField(OPTION_ptr, 0, "NumThreads");
if( field_ptr != NULL ){
sdpa.setNumThreads((int)mxGetScalar(field_ptr));
}
/*** initialize SDPA class members ***/
/* mDIM */
mDIM = mxGetN(At_ptr);
sdpa.inputConstraintNumber(mDIM);
/* nBLOCK */
nBLOCK = 0;
mwSize K_l = 0;
int isK_l = 0; // 1 (K_l > 0) or 0 (K_l == 0)
field_ptr = mxGetField(K_ptr, 0, "l");
if (field_ptr != NULL) {
K_l = (mwSize)((mxGetPr(field_ptr))[0]);
#if 0
mexPrintf("K_l = %zd\n", K_l);
#endif
if (K_l > 0) {
isK_l = 1;
nBLOCK++;
}
}
mwSize* K_s = NULL;
mwSize* K_sdpConeStart = NULL;
int K_sdpNoCones = 0;
field_ptr = mxGetField(K_ptr, 0, "s");
if (field_ptr != NULL) {
K_sdpNoCones = (int) mxGetM(field_ptr);
K_s = (mwSize*) mxCalloc(K_sdpNoCones, sizeof(mwSize));
K_sdpConeStart = (mwSize*) mxCalloc(K_sdpNoCones+1, sizeof(mwSize));
K_sdpConeStart[0] = 0;
for (int l=0; l<K_sdpNoCones; ++l) {
K_s[l] = (mwSize)((mxGetPr(field_ptr))[l]);
#if 0
mexPrintf("K_s[%zd] = %zd\n", l+isK_l+1, K_s[l]);
#endif
K_sdpConeStart[l+1] = K_sdpConeStart[l] + K_s[l]*K_s[l];
nBLOCK++;
}
}
#if 0
mexPrintf("isK_l = %d, nBlock = %d \n", isK_l, nBLOCK);
#endif
sdpa.inputBlockNumber(nBLOCK);
if (isK_l > 0) {
sdpa.inputBlockSize(1, K_l);
sdpa.inputBlockType(1, SDPA::LP);
}
for (int l=0; l<K_sdpNoCones; ++l) {
#if 0
mexPrintf("l+isK_l+1 = %d, K_s = %d \n", l+isK_l+1, K_s[l]);
#endif
sdpa.inputBlockSize(l+isK_l+1, K_s[l]);
sdpa.inputBlockType(l+isK_l+1, SDPA::SDP);
}
/* Execute initializeUpperTriangleSpace() */
sdpa.initializeUpperTriangleSpace();
/* cVECT = -b*/
double* b = mxGetPr(b_ptr);
for(mwSize i = 0; i < mDIM; i++){
sdpa.inputCVec((int)i+1, -b[i]);
}
/*** Count NonZeroNumber in coefficience matrices ***/
// Do nothing for SDPA 7
/* F_0 = - C */
if (mxIsEmpty(c_ptr) || mxGetNzmax(c_ptr) == 0
|| (mxGetJc(c_ptr))[1] == 0) {
mexPrintf("c = empty\n");
}
else {
mwIndex* C_row = mxGetIr(c_ptr);
mwIndex* C_column = mxGetJc(c_ptr);
double* C_ele = mxGetPr(c_ptr);
mwIndex C_length = C_column[1];
int currentSdpCone = 0;
for (mwSize index = 0; index<C_length; ++index) {
mwSize C_j = C_row[index];
/* A_0 = - C */
double ele = -C_ele[index];
// mexPrintf("C_j = %zd, ele = %e\n", C_j, ele);
if (C_j < K_l) {
sdpa.inputElement(0, 1, C_j+1, C_j+1, ele);
}
else {
C_j -= K_l;
while (K_sdpConeStart[currentSdpCone+1] <= C_j) {
currentSdpCone++;
}
int index2, i,j;
index2 = C_j - K_sdpConeStart[currentSdpCone];
i = index2 / K_s[currentSdpCone];
j = index2 % K_s[currentSdpCone];
if (i <= j) {
// Only upper triangular is input
#if 0
mexPrintf("input k=%d, l=%d, i=%d, j=%d, v=%e\n",
0, isK_l + currentSdpCone+1,i+1, j+1, ele);
#endif
sdpa.inputElement(0, isK_l + currentSdpCone+1,i+1, j+1, ele);
}
}
}
}
/* F_{k+1} = - A_k */
mwIndex* At_row = mxGetIr(At_ptr);
mwIndex* At_column = mxGetJc(At_ptr);
double* At_ele = mxGetPr(At_ptr);
for (k=0; k<mDIM; ++k) {
mwIndex Ak_start = At_column[k ];
mwIndex Ak_end = At_column[k+1];
int currentSdpCone = 0;
for (mwSize index = Ak_start; index<Ak_end; ++index) {
mwSize Ak_j = At_row[index];
/* F_{k+1} = - A_k */
double ele = -At_ele[index];
if (Ak_j < K_l) {
sdpa.inputElement(k+1, 1, Ak_j+1, Ak_j+1, ele);
}
else {
Ak_j -= K_l;
while (K_sdpConeStart[currentSdpCone+1] <= Ak_j) {
currentSdpCone++;
}
int index2, i,j;
index2 = Ak_j - K_sdpConeStart[currentSdpCone];
i = index2 / K_s[currentSdpCone];
j = index2 % K_s[currentSdpCone];
if (i <= j) {
// Only upper triangular is input
#if 0
mexPrintf("input k=%d, l=%d, i=%d, j=%d, v=%e\n",
k+1, isK_l + currentSdpCone+1,i+1, j+1, ele);
#endif
sdpa.inputElement(k+1, isK_l + currentSdpCone+1,i+1, j+1, ele);
}
}
}
}
/*** Check the consistence of F, c ***/
if( nSymmChk ){
sdpa.initializeUpperTriangle(true);
}
else {
sdpa.initializeUpperTriangle(false);
}
// sdpa.writeInputSparse((char*)"b.dat-s",(char*)"%e");
/*** Solve SDP ***/
sdpa.initializeSolve();
mexPrintf("Converted to SDPA internal data / ");
mexPrintf("Starting SDPA-C main loop\n");
TimeEnd(SDPA_CONVERT_END);
TimeStart(SDPA_SOLVE_START);
sdpa.solve();
TimeEnd(SDPA_SOLVE_END);
TimeStart(SDPA_RETRIEVE_START);
mexPrintf("Converting optimal solution to Sedumi format\n");
/**** Set output values to arguments ****/
/* Optimal value for xVec */
double* y = mxGetPr(y_ptr);
tmp_ptr = sdpa.getResultXVec();
if( tmp_ptr != NULL ){
for(k = 0; k < mDIM; k++){
y[k] = tmp_ptr[k];
}
}
/* Optimal value for YMat */
double* x = mxGetPr(x_ptr);
// if sdpa.getResultYMat(1) == NULL, YMat is not computed
if (sdpa.getResultYMat(1) != NULL) {
if (isK_l > 0) {
size = sdpa.getBlockSize(1);
tmp_ptr = sdpa.getResultYMat(1);
for (int index = 0; index < size; ++index) {
x[index] = tmp_ptr[index];
}
}
for (int l=0; l<K_sdpNoCones; ++l) {
size = sdpa.getBlockSize(l+isK_l+1);
tmp_ptr = sdpa.getResultYMat(l+isK_l+1);
for (int index = 0; index < size*size; ++index) {
x[K_l + K_sdpConeStart[l] + index] = tmp_ptr[index];
}
}
}
else {
rMessage("x is not computed by YPrint, and x will be empty matrix.");
}
TimeEnd(SDPA_RETRIEVE_END);
/* Dimacs Error Information */
if (nDimacs != 0) {
field_ptr = mxCreateNumericMatrix(6,1,mxDOUBLE_CLASS,mxREAL);
double* dimacs_store = mxGetPr(field_ptr);
double dimacs_error[7];
if (sdpa.judgeDimacsAvailability() == false) {
for (int i=0; i<=6; i++) {
dimacs_store[i] = 0.0;
}
}
else {
mexPrintf("Computing Dimacs Error\n");
sdpa.getDimacsError(dimacs_error);
for (int i=1; i<=6; i++) {
dimacs_store[i-1] = dimacs_error[i];
}
}
mxSetField(info_ptr, 0, "dimacs", field_ptr);
}
/* Phase information */
field_ptr = mxCreateString(szPhase[sdpa.getPhaseValue()]);
mxSetField(info_ptr, 0, "phasevalue", field_ptr);
/* Iteration */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = (double)sdpa.getIteration();
mxSetField(info_ptr, 0, "iteration", field_ptr);
/* primalObj */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = -sdpa.getDualObj();
mxSetField(info_ptr, 0, "primalObj", field_ptr);
/* dualObj */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = -sdpa.getPrimalObj();
mxSetField(info_ptr, 0, "dualObj", field_ptr);
/* primalError */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = sdpa.getDualError();
mxSetField(info_ptr, 0, "primalError", field_ptr);
/* dualError */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = sdpa.getPrimalError();
mxSetField(info_ptr, 0, "dualError", field_ptr);
/* digits */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = sdpa.getDigits();
mxSetField(info_ptr, 0, "digits", field_ptr);
/* dualityGap */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = sdpa.getDualityGap();
mxSetField(info_ptr, 0, "dualityGap", field_ptr);
/* mu */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = sdpa.getMu();
mxSetField(info_ptr, 0, "mu", field_ptr);
/* solveTime */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = TimeCal(SDPA_SOLVE_START,SDPA_SOLVE_END);
mxSetField(info_ptr, 0, "solveTime", field_ptr);
/* convertingTime */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = TimeCal(SDPA_CONVERT_START,SDPA_CONVERT_END);
mxSetField(info_ptr, 0, "convertingTime", field_ptr);
/* retrivingTime */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = TimeCal(SDPA_RETRIEVE_START,SDPA_RETRIEVE_END);
mxSetField(info_ptr, 0, "retrievingTime", field_ptr);
/* retrivingTime */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
TimeEnd(SDPA_END);
*mxGetPr(field_ptr) = TimeCal(SDPA_START,SDPA_END);
mxSetField(info_ptr, 0, "sdpaTime", field_ptr);
time(&ltime);
strcpy(string_time,ctime(&ltime));
string_time[strlen(string_time)-1]='\0';
if (fp) {
fprintf(fp,"SDPA-C end at [%s]\n",string_time);
}
if (fpResult) {
fprintf(fpResult,"SDPA-C end at [%s]\n",string_time);
}
/* close output file */
if( nOutfile ){
fclose(fp);
}
if (fpResult != NULL) {
fclose(fpResult);
}
/*** Free allocated memory ****/
mxFree(K_s);
mxFree(K_sdpConeStart);
sdpa.finalize();
return;
}
/*
* Matlab gateway function
*/
void mexFunction(int nlhs, mxArray *plhs[],
int nrhs, const mxArray *prhs[])
{
/* Decleration of variables */
mxArray* At_ptr;
mxArray* b_ptr;
mxArray* c_ptr;
mxArray* K_ptr;
mxArray* OPTION_ptr;
mxArray* x_ptr;
mxArray* y_ptr;
mxArray* info_ptr;
const char *fnames[] = {
"phasevalue",
"iteration",
"cpusec",
"primalObj",
"dualObj",
"primalError",
"dualError",
"digits",
"dualityGap",
"mu",
"dimacs",
"solveTime",
"convertingTime",
"retrievingTime",
"sdpaTime"
};
/* Get the pointer of input variables */
At_ptr = (mxArray*)prhs[0];
b_ptr = (mxArray*)prhs[1];
c_ptr = (mxArray*)prhs[2];
K_ptr = (mxArray*)prhs[3];
OPTION_ptr = (mxArray*)prhs[4];
mwSize m = mxGetM(b_ptr);
mwSize n = mxGetM(c_ptr);
mxArray *field_ptr = NULL;
field_ptr = mxGetField(OPTION_ptr, 0, "YPrint");
bool x_ptr_empty = false;
if( field_ptr != NULL ){
mwSize mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
char* tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
#if 0
rMessage("tmpPrint = " << tmpPrint
<< " : NO_P_FORMAT " << NO_P_FORMAT);
#endif
if (strcmp(tmpPrint,NO_P_FORMAT) == 0) {
x_ptr_empty = true;
}
mxFree(tmpPrint);
}
/* Create cellarrays for the output variables */
if (x_ptr_empty == true) {
rMessage("x is not computed by YPrint, and x will be empty matrix.");
plhs[0] = mxCreateDoubleMatrix(0,0,mxREAL);
}
else {
plhs[0] = mxCreateDoubleMatrix(n,1,mxREAL);
}
plhs[1] = mxCreateDoubleMatrix(m,1,mxREAL);
plhs[2] = mxCreateStructMatrix(1,1,15,fnames);
//Get the pointer of output variables
x_ptr = plhs[0];
y_ptr = plhs[1];
info_ptr = plhs[2];
/* Call sdpasolver here */
sdpasolver(At_ptr,b_ptr,c_ptr,K_ptr,OPTION_ptr,
x_ptr,y_ptr,info_ptr);
return;
}
/*
* End of File
*/
+842
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@@ -0,0 +1,842 @@
/*
* This file is a component of SDPA
* Copyright (C) 2004-2013 SDPA Project
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
*
* SDPA-M: 7.3
* mexsdpa.cpp
*/
#include <mex.h>
/*
* SDPA header files
*/
#include <sdpa_call.h>
extern void _main();
void sdpasolver(double *mDIM_ptr,
double *nBLOCK_ptr,
double *bLOCKsTRUCT_ptr,
double *c_ptr,
mxArray *F_ptr,
double *x0_ptr,
mxArray *X0_ptr,
mxArray *Y0_ptr,
mxArray *OPTION_ptr,
int IniPt,
double *objVal_ptr,
double *x_ptr,
mxArray *X_ptr,
mxArray *Y_ptr,
mxArray *INFO_ptr)
{
time_t ltime;
time(&ltime);
char string_time[1024];
strcpy(string_time,ctime(&ltime));
string_time[strlen(string_time)-1]='\0';
SDPA sdpa;
int maxIteration = 0;
double param = 0.0;
/* mxArray pointer */
mxArray *field_ptr = NULL;
mxArray *cell_ptr = NULL;
int nSymmChk = 0;
int nDimacs = 0;
/* strings for phase value */
const char *szPhase[] = {
"noINFO", "pFEAS", "dFEAS", "pdFEAS", "pdINF",
"pFEAS_dINF", "pINF_dFEAS", "pdOPT", "pUNBD", "dUNBD"};
/* output file */
char *outfile = NULL;
FILE *fp = NULL;
FILE *fpResult = NULL;
int nOutfile = 0;
mwSize mDIM;
mwSize nBLOCK;
/* temporary variables */
mwIndex i,j,k,l;
int size;
mwSize mwsize;
mwIndex idx, startidx, endidx;
mwSize sizeM, sizeN;
mwIndex *subscript = NULL;
mwIndex *dims = NULL;
int cell_index = 0;
mwIndex *ir_ptr = NULL;
mwIndex *jc_ptr = NULL;
double *tmp_ptr = NULL;
double *result_ptr = NULL;
char* tmpPrint = NULL;
/*** Set SDPA parameters by OPTIONS ***/
/* Max Iteration */
field_ptr = mxGetField(OPTION_ptr, 0, "maxIteration");
if( field_ptr != NULL ){
maxIteration = (int)mxGetScalar(field_ptr);
sdpa.setParameterMaxIteration(maxIteration);
}
/* epsilonStar */
field_ptr = mxGetField(OPTION_ptr, 0, "epsilonStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterEpsilonStar(param);
}
/* lambdaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "lambdaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterLambdaStar(param);
}
/* omegaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "omegaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterOmegaStar(param);
}
/* lowerBound */
field_ptr = mxGetField(OPTION_ptr, 0, "lowerBound");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterLowerBound(param);
}
/* upperBound */
field_ptr = mxGetField(OPTION_ptr, 0, "upperBound");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterUpperBound(param);
}
/* betaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "betaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterBetaStar(param);
}
/* betaBar */
field_ptr = mxGetField(OPTION_ptr, 0, "betaBar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterBetaBar(param);
}
/* gammaStar */
field_ptr = mxGetField(OPTION_ptr, 0, "gammaStar");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterGammaStar(param);
}
/* epsilonDash */
field_ptr = mxGetField(OPTION_ptr, 0, "epsilonDash");
if( field_ptr != NULL ){
param = *mxGetPr(field_ptr);
sdpa.setParameterEpsilonDash(param);
}
/* xPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "xPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintXVec(tmpPrint);
mxFree(tmpPrint);
}
/* XPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "XPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintXMat(tmpPrint);
mxFree(tmpPrint);
}
/* YPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "YPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintYMat(tmpPrint);
mxFree(tmpPrint);
}
/* infPrint */
field_ptr = mxGetField(OPTION_ptr, 0, "infPrint");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
tmpPrint = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, tmpPrint, mwsize);
sdpa.setParameterPrintInformation(tmpPrint);
mxFree(tmpPrint);
}
/* isSymmetric */
field_ptr = mxGetField(OPTION_ptr, 0, "isSymmetric");
if( field_ptr != NULL ){
nSymmChk = (int)mxGetScalar(field_ptr);
}
/* isDimacs */
field_ptr = mxGetField(OPTION_ptr, 0, "isDimacs");
if( field_ptr != NULL ){
nDimacs = (int)mxGetScalar(field_ptr);
}
/* print */
field_ptr = mxGetField(OPTION_ptr, 0, "print");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
if (mwsize == 1) {
// mexPrintf("display is NULL\n");
fp = NULL;
}
else {
outfile = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, outfile, mwsize);
if( strncmp("display", outfile, mwsize - 1) == 0 ){
fp = stdout;
} else if( strncmp("no", outfile, mwsize - 1) == 0 ){
fp = NULL;
} else {
fp = fopen(outfile, "at");
if( fp == NULL ){
mexPrintf("Failed to open %s\n", outfile);
fp = stdout;
} else {
nOutfile = 1;
}
}
mxFree(outfile);
}
} else {
/* default setting is displaying information to stdout */
fp = stdout;
}
sdpa.setDisplay(fp);
/* resultFile */
field_ptr = mxGetField(OPTION_ptr, 0, "resultFile");
if( field_ptr != NULL ){
mwsize = mxGetM(field_ptr) * mxGetN(field_ptr) + 1;
if (mwsize == 1) {
// mexPrintf("resultFile is NULL\n");
}
else {
outfile = (char*)mxCalloc(mwsize, sizeof(char));
mxGetString(field_ptr, outfile, mwsize);
fpResult = fopen(outfile, "w");
if( fpResult == NULL ){
mexPrintf("Failed to open %s\n", outfile);
mexPrintf("Skip the detail file\n");
} else {
sdpa.setResultFile(fpResult);
}
mxFree(outfile);
}
}
if (fp) {
fprintf(fp,"SDPA-C start at [%s]\n",string_time);
}
if (fpResult) {
fprintf(fpResult,"SDPA-C start at [%s]\n",string_time);
}
if (nDimacs) {
if (sdpa.judgeDimacsAvailability() == false) {
if (fp) {
fprintf(fp, "Dimacs will be skipped by XPrint and YPrint parameter.\n");
}
if (fpResult) {
fprintf(fpResult, "Dimacs will be skipped by XPrint and YPrint parameter.\n");
}
}
}
/* NumThreads */
field_ptr = mxGetField(OPTION_ptr, 0, "NumThreads");
if( field_ptr != NULL ){
sdpa.setNumThreads((int)mxGetScalar(field_ptr));
}
/*** initialize SDPA class members ***/
/* mDIM */
mDIM = (mwSize)(*mDIM_ptr);
sdpa.inputConstraintNumber(mDIM);
/* nBLOCK */
nBLOCK = (mwSize)(*nBLOCK_ptr);
sdpa.inputBlockNumber(nBLOCK);
/* bLOCKsTRUCT */
for(i = 0; i < nBLOCK; i++){
int bs = (int)(bLOCKsTRUCT_ptr[i]);
sdpa.inputBlockSize(i+1,bs);
if (bs < 0 || bs == 1) {
sdpa.inputBlockType(i+1,SDPA::LP);
}
else {
sdpa.inputBlockType(i+1,SDPA::SDP);
}
}
/* Execute initializeUpperTriangleSpace() */
sdpa.initializeUpperTriangleSpace();
/* cVECT */
for(i = 0; i < mDIM; i++){
sdpa.inputCVec(i+1, c_ptr[i]);
}
/*** Count NonZeroNumber in coefficience matrices ***/
// Do nothing for SDPA 7
/*** Set coefficience matrices value ***/
subscript = (mwIndex*)mxCalloc(2,sizeof(mwIndex));
dims = (mwIndex*)mxGetDimensions(F_ptr);
for(l = 0; l < dims[0]; l++){
for(k = 0; k < dims[1]; k++){
subscript[0]=l; subscript[1]=k;
cell_index = mxCalcSingleSubscript(F_ptr, 2, subscript);
cell_ptr = mxGetCell(F_ptr, cell_index);
// mxGetDimensions at the next line is redundant,
// but this is necessary to octave
dims = (mwIndex*)mxGetDimensions(F_ptr);
if( cell_ptr == NULL || mxIsEmpty(cell_ptr) ){
/* If the cell is empty, we assume this cell as zero matrix */
continue;
}
sizeM = mxGetM(cell_ptr);
sizeN = mxGetN(cell_ptr);
tmp_ptr = mxGetPr(cell_ptr);
if( mxIsSparse(cell_ptr) ){
/* Sparse Matrix */
ir_ptr = mxGetIr(cell_ptr);
jc_ptr = mxGetJc(cell_ptr);
if( sizeM == 1 && sizeN != 1 ){
/* Row Vector Case */
for(j = 0; j < sizeN; j++){
startidx = jc_ptr[j];
endidx = jc_ptr[j+1];
if( startidx == endidx ){ continue; }
sdpa.inputElement( k, l+1, j+1, j+1, tmp_ptr[startidx]);
}
} else if( sizeM != 1 && sizeN == 1 ){
/* Column Vector Case */
endidx = jc_ptr[sizeN];
for(idx = 0; idx < endidx; idx++){
i = ir_ptr[idx];
sdpa.inputElement( k, l+1, i+1, i+1, tmp_ptr[idx]);
}
} else {
/* Matrix Case */
for(j = 0; j < sizeN; j++){
startidx = jc_ptr[j];
endidx = jc_ptr[j+1];
if( startidx == endidx ){ continue; }
for(idx = startidx; idx < endidx; idx++){
i = ir_ptr[idx];
if( i <= j ){
sdpa.inputElement( k, l+1, i+1, j+1, tmp_ptr[idx]);
}
}
}
}
} else {
/* Dense Matrix */
if( sdpa.getBlockType(l+1)==SDPA::SDP ){
/* Full Matrix */
for(j = 0; j < sizeN; j++){
for(i = 0; i < sizeM; i++){
if( i <= j ){
if( tmp_ptr[j * sizeN + i] != 0 ){
sdpa.inputElement(k, l+1, i+1, j+1,
tmp_ptr[j * sizeN + i]);
}
}
}
}
} else {
/* Diagonal Matrix */
if( sizeM == 1 && sizeN != 1 ){
/* Row Vector Case */
for(j = 0; j < sizeN; j++){
if( tmp_ptr[j] != 0 ){
sdpa.inputElement( k, l+1, j+1, j+1, tmp_ptr[j]);
}
}
} else if( sizeM != 1 && sizeN == 1 ){
/* Column Vector Case */
for(i = 0; i < sizeM; i++){
if( tmp_ptr[i] != 0 ){
sdpa.inputElement( k, l+1, i+1, i+1, tmp_ptr[i]);
}
}
} else {
/* Matrix Case */
for(j = 0; j < sizeN; j++){
if( tmp_ptr[j * sizeN + j] != 0 ){
sdpa.inputElement( k, l+1, j+1, j+1,
tmp_ptr[j * sizeN + j]);
}
}
}
}
}
}
}
/*** Check the consistence of F, c ***/
if( nSymmChk ){
sdpa.initializeUpperTriangle(true);
}
else {
sdpa.initializeUpperTriangle(false);
}
/*** Check initial point ***/
if( IniPt == 1 ){
rMessage("Initial point is ignored in SDPA-C.");
#if 0
sdpa.setInitPoint(true);
/* initial value for xVec */
for(k = 0; k < mDIM; k++){
sdpa.inputInitXVec( k+1, x0_ptr[k]);
}
/* initial value for XMat */
cell_index = 0;
for(l = 0; l < nBLOCK; l++){
cell_ptr = mxGetCell(X0_ptr, cell_index);
if( cell_ptr == NULL || mxIsEmpty(cell_ptr) ){
/* If the cell is empty, we assume this cell as zero matrix */
continue;
}
sizeM = mxGetM(cell_ptr);
sizeN = mxGetN(cell_ptr);
tmp_ptr = mxGetPr(cell_ptr);
if( mxIsSparse(cell_ptr) ){
/* Sparse Matrix */
ir_ptr = mxGetIr(cell_ptr);
jc_ptr = mxGetJc(cell_ptr);
if( sizeM == 1 && sizeN != 1 ){
/* Row Vector Case */
for(j = 0; j < sizeN; j++){
startidx = jc_ptr[j];
endidx = jc_ptr[j+1];
if( startidx == endidx ){ continue; }
sdpa.inputInitXMat(l+1, j+1, j+1, tmp_ptr[startidx]);
}
} else if( sizeM != 1 && sizeN == 1 ){
/* Column Vector Case */
endidx = jc_ptr[sizeN];
for(idx = 0; idx < endidx; idx++){
i = ir_ptr[idx];
sdpa.inputInitXMat(l+1, i+1, i+1, tmp_ptr[idx]);
}
} else {
/* Matrix Case */
for(j = 0; j < sizeN; j++){
startidx = jc_ptr[j];
endidx = jc_ptr[j+1];
if( startidx == endidx ){ continue; }
for(idx = startidx; idx < endidx; idx++){
i = ir_ptr[idx];
if( i <= j ){
sdpa.inputInitXMat( l+1, i+1, j+1, tmp_ptr[idx]);
}
}
}
}
} else {
/* Dense Matrix */
if( sdpa.getBlockType(l+1) == SDPA::SDP ){
/* Full Matrix */
for(j = 0; j < sizeN; j++){
for(i = 0; i < sizeM; i++){
if( i <= j ){
if( tmp_ptr[j * sizeN + i] != 0 ){
sdpa.inputInitXMat( l+1, i+1, j+1,
tmp_ptr[j * sizeN + i]);
}
}
}
}
} else {
/* Diagonal Matrix */
if( sizeM == 1 && sizeN != 1 ){
/* Row Vector Case */
for(j = 0; j < sizeN; j++){
if( tmp_ptr[j] != 0 ){
sdpa.inputInitXMat( l+1, j+1, j+1, tmp_ptr[j]);
}
}
} else if( sizeM != 1 && sizeN == 1 ){
/* Column Vector Case */
for(i = 0; i < sizeM; i++){
if( tmp_ptr[i] != 0 ){
sdpa.inputInitXMat( l+1, i+1, i+1, tmp_ptr[i]);
}
}
} else {
/* Matrix Case */
for(j = 0; j < sizeN; j++){
if( tmp_ptr[j * sizeN + j] != 0 ){
sdpa.inputInitXMat( l+1, j+1, j+1,
tmp_ptr[j * sizeN + j]);
}
}
}
}
}
cell_index++;
}
/* initial value for YMat */
cell_index = 0;
for(l = 0; l < nBLOCK; l++){
cell_ptr = mxGetCell(Y0_ptr, cell_index);
if( cell_ptr == NULL || mxIsEmpty(cell_ptr) ){
/* If the cell is empty, we assume this cell as zero matrix */
continue;
}
sizeM = mxGetM(cell_ptr);
sizeN = mxGetN(cell_ptr);
tmp_ptr = mxGetPr(cell_ptr);
if( mxIsSparse(cell_ptr) ){
/* Sparse Matrix */
ir_ptr = mxGetIr(cell_ptr);
jc_ptr = mxGetJc(cell_ptr);
if( sizeM == 1 && sizeN != 1 ){
/* Row Vector Case */
for(j = 0; j < sizeN; j++){
startidx = jc_ptr[j];
endidx = jc_ptr[j+1];
if( startidx == endidx ){ continue; }
sdpa.inputInitYMat( l+1, j+1, j+1, tmp_ptr[startidx]);
}
} else if( sizeM != 1 && sizeN == 1 ){
/* Column Vector Case */
endidx = jc_ptr[sizeN];
for(idx = 0; idx < endidx; idx++){
i = ir_ptr[idx];
sdpa.inputInitYMat( l+1, i+1, i+1, tmp_ptr[idx]);
}
} else {
/* Matrix Case */
for(j = 0; j < sizeN; j++){
startidx = jc_ptr[j];
endidx = jc_ptr[j+1];
if( startidx == endidx ){ continue; }
for(idx = startidx; idx < endidx; idx++){
i = ir_ptr[idx];
if( i <= j ){
sdpa.inputInitYMat( l+1, i+1, j+1, tmp_ptr[idx]);
}
}
}
}
} else {
/* Dense Matrix */
if( sdpa.getBlockType(l+1) == SDPA::SDP ){
/* Full Matrix */
for(j = 0; j < sizeN; j++){
for(i = 0; i < sizeM; i++){
if( i <= j ){
if( tmp_ptr[j * sizeN + i] != 0 ){
sdpa.inputInitYMat( l+1, i+1, j+1,
tmp_ptr[j * sizeN + i]);
}
}
}
}
} else {
/* Diagonal Matrix */
if( sizeM == 1 && sizeN != 1 ){
/* Row Vector Case */
for(j = 0; j < sizeN; j++){
if( tmp_ptr[j] != 0 ){
sdpa.inputInitYMat( l+1, j+1, j+1, tmp_ptr[j]);
}
}
} else if( sizeM != 1 && sizeN == 1 ){
/* Column Vector Case */
for(i = 0; i < sizeM; i++){
if( tmp_ptr[i] != 0 ){
sdpa.inputInitYMat( l+1, i+1, i+1, tmp_ptr[i]);
}
}
} else {
/* Matrix Case */
for(j = 0; j < sizeN; j++){
if( tmp_ptr[j * sizeN + j] != 0 ){
sdpa.inputInitYMat( l+1, j+1, j+1,
tmp_ptr[j * sizeN + j]);
}
}
}
}
}
cell_index++;
}
#endif
}
/*** Solve SDP ***/
sdpa.initializeSolve();
sdpa.solve();
/*** Dimacs Error Information ****/
if (nDimacs != 0) {
field_ptr = mxCreateNumericMatrix(6,1,mxDOUBLE_CLASS,mxREAL);
double dimacs_error[7];
sdpa.getDimacsError(dimacs_error);
double* dimacs_store = mxGetPr(field_ptr);
if (sdpa.judgeDimacsAvailability() == false) {
for (int i=0; i<=6; i++) {
dimacs_store[i] = 0.0;
}
}
else {
for (int i=1; i<=6; i++) {
dimacs_store[i-1] = dimacs_error[i];
}
}
mxSetField(INFO_ptr, 0, "dimacs", field_ptr);
}
/**** Set output values to arguments ****/
/* Optimal value of Primal objective */
objVal_ptr[0] = sdpa.getPrimalObj();
/* Optimal value of Dual objective */
objVal_ptr[1] = sdpa.getDualObj();
/* Optimal value for xVec */
tmp_ptr = sdpa.getResultXVec();
if( tmp_ptr != NULL ){
for(k = 0; k < mDIM; k++){
x_ptr[k] = tmp_ptr[k];
}
}
/* Optimal value for XMat */
cell_index = 0;
result_ptr = sdpa.getResultXMat(1);
if (result_ptr == NULL) {
rMessage("XMat is not computed by XPrint, and XMat will be empty matrix.");
}
for(l = 0; l < nBLOCK; l++){
result_ptr = sdpa.getResultXMat(l+1);
if (result_ptr == NULL) {
cell_ptr = mxCreateDoubleMatrix(0, 0, mxREAL);
mxSetCell(X_ptr, cell_index++, mxDuplicateArray(cell_ptr));
continue;
}
size = sdpa.getBlockSize(l+1);
if( sdpa.getBlockType(l+1) == SDPA:: SDP){
sizeM = size;
sizeN = size;
} else {
sizeM = 1;
sizeN = abs(size);
}
cell_ptr = mxCreateDoubleMatrix(sizeM, sizeN, mxREAL);
tmp_ptr = mxGetPr(cell_ptr);
idx = 0;
result_ptr = sdpa.getResultXMat(l+1);
if( size >= 0 ){
for(j = 0; j < sizeN; j++){
for(i = 0; i < sizeM; i++){
tmp_ptr[idx++] = result_ptr[j + sizeN * i];
}
}
} else {
for(idx = 0; idx < sizeN; idx++){
tmp_ptr[idx] = result_ptr[idx];
}
}
mxSetCell(X_ptr, cell_index++, mxDuplicateArray(cell_ptr));
}
/* Optimal value for YMat */
result_ptr = sdpa.getResultYMat(1);
if (result_ptr == NULL) {
rMessage("YMat is not computed by YPrint, and YMat will be empty matrix.");
}
cell_index = 0;
for(l = 0; l < nBLOCK; l++){
result_ptr = sdpa.getResultYMat(l+1);
if (result_ptr == NULL) {
cell_ptr = mxCreateDoubleMatrix(0, 0, mxREAL);
mxSetCell(Y_ptr, cell_index++, mxDuplicateArray(cell_ptr));
continue;
}
size = sdpa.getBlockSize(l+1);
if( sdpa.getBlockType(l+1) == SDPA:: SDP){
sizeM = size;
sizeN = size;
} else {
sizeM = 1;
sizeN = abs(size);
}
cell_ptr = mxCreateDoubleMatrix(sizeM, sizeN, mxREAL);
tmp_ptr = mxGetPr(cell_ptr);
idx = 0;
result_ptr = sdpa.getResultYMat(l+1);
if( size >= 0 ){
for(j = 0; j < sizeN; j++){
for(i = 0; i < sizeM; i++){
tmp_ptr[idx++] = result_ptr[j + sizeN * i];
}
}
} else {
for(idx = 0; idx < sizeN; idx++){
tmp_ptr[idx] = result_ptr[idx];
}
}
mxSetCell(Y_ptr, cell_index++, mxDuplicateArray(cell_ptr));
}
/* Phase information */
field_ptr = mxCreateString(szPhase[sdpa.getPhaseValue()]);
mxSetField(INFO_ptr, 0, "phasevalue", field_ptr);
/* Iteration */
field_ptr = mxCreateNumericMatrix(1,1,mxDOUBLE_CLASS,mxREAL);
*mxGetPr(field_ptr) = (double)sdpa.getIteration();
mxSetField(INFO_ptr, 0, "iteration", field_ptr);
/* close output file */
time(&ltime);
strcpy(string_time,ctime(&ltime));
string_time[strlen(string_time)-1]='\0';
if (fp) {
fprintf(fp,"SDPA-C end at [%s]\n",string_time);
}
if (fpResult) {
fprintf(fpResult,"SDPA-C end at [%s]\n",string_time);
}
if( nOutfile ){
fclose(fp);
}
if (fpResult != NULL) {
fclose(fpResult);
}
/*** Free allocated memory ****/
mxFree(subscript);
sdpa.finalize();
return;
}
/*
* Matlab gateway function
*/
void mexFunction(int nlhs, mxArray *plhs[],
int nrhs, const mxArray *prhs[])
{
/* Decleration of variables */
double
*mDIM_ptr,
*nBLOCK_ptr,
*bLOCKsTRUCT_ptr,
*c_ptr,
*x_ptr,
*objVal_ptr,
*x0_ptr;
mxArray
*F_ptr,
*X_ptr,
*Y_ptr,
*X0_ptr,
*Y0_ptr,
*OPTION_ptr,
*INFO_ptr;
int IniPt;
const char *fnames[] = {
"phasevalue",
"iteration",
"dimacs",
"cpusec"
};
/*
* check arguments
*/
if( nrhs != 9 ){
mexErrMsgTxt("Input arguments must be 9.");
}
/* Get the pointer of input variables */
mDIM_ptr = mxGetPr(prhs[0]);
nBLOCK_ptr = mxGetPr(prhs[1]);
bLOCKsTRUCT_ptr = mxGetPr(prhs[2]);
c_ptr = mxGetPr(prhs[3]);
F_ptr = (mxArray*)prhs[4];
x0_ptr = mxGetPr(prhs[5]);
X0_ptr = (mxArray*)prhs[6];
Y0_ptr = (mxArray*)prhs[7];
OPTION_ptr = (mxArray*)prhs[8];
if( mxIsEmpty(prhs[5]) /* x0 */
|| mxIsEmpty(prhs[6]) /* X0 */
|| mxIsEmpty(prhs[7]) /* Y0 */
){
/* nouse of Initial Point*/
IniPt = 0;
} else {
/* use of Initial Point */
IniPt = 1;
/* check of argument dimensions */
/* if(*mDIM_ptr != mxGetM(prhs[5]) || !mxIsDouble(prhs[5]))
mexErrMsgTxt("x0 must be (mDIM x 1) column vector of double");
if( *nBLOCK_ptr != sizeM_X0 || 1 != sizeN_X0 || !mxIsCell(prhs[6]))
mexErrMsgTxt("X0 must be (nBLOCK x 1) cell array");
if( *nBLOCK_ptr != sizeM_Y0 || 1 != sizeN_Y0 || !mxIsCell(prhs[7]))
mexErrMsgTxt("Y0 must be (nBLOCK x 1) cell array");*/
}
/* Create cellarrays for the output variables */
plhs[0] = mxCreateDoubleMatrix(1,2,mxREAL);
plhs[1] = mxCreateDoubleMatrix((int) *mDIM_ptr,1,mxREAL);
plhs[2] = mxCreateCellMatrix((int) *nBLOCK_ptr,1);
plhs[3] = mxCreateCellMatrix((int) *nBLOCK_ptr,1);
plhs[4] = mxCreateStructMatrix(1,1,4,fnames);
//Get the pointer of output variables
objVal_ptr = mxGetPr(plhs[0]);
x_ptr = mxGetPr(plhs[1]);
X_ptr = plhs[2];
Y_ptr = plhs[3];
INFO_ptr = plhs[4];
/* Call sdpasolver here */
sdpasolver(mDIM_ptr,
nBLOCK_ptr,
bLOCKsTRUCT_ptr,
c_ptr,
F_ptr,
x0_ptr,
X0_ptr,
Y0_ptr,
OPTION_ptr,
IniPt,
objVal_ptr,
x_ptr,
X_ptr,
Y_ptr,
INFO_ptr);
return;
}
/*
* End of File
*/
+233
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@@ -0,0 +1,233 @@
function OPTION=paramC(OPTION)
%
% Create SDPA-C parameters.
% If there is no argument, default parameters are returned.
%
% OPTION=paramC % for default parameter
% or
% OPTION=paramC(field1,value1,field2,value2,....)
%
% <INPUT>
% - field?: string : field name
% - value?: numeric or string :
%
% <OUTPUT>
% - OPTION: structure data: each field is as follows:
% * maxIteration : The maximum number of iterations.
% * epsilonStar : The accuracy of an approximate optimal solution
% for primal and dual SDP.
% * lambdaStar : An initial point.
% * omegaStar : The search region for an optimal solution.
% * lowerBound : Lower bound of the minimum objective value of
% the primal SDP.
% * upperBound : Upper bound of the maximum objective value of
% the dual SDP
% * betaStar : The parameter for controlling the search direction
% if the current point is feasible.
% * betaBar : The parameter for controlling the search direction
% if the current point is infeasible.
% * gammaStar : A reduction factor for the primal and dual step
% lengths.
% * epsilonDash : The relative accuracy of an approximate optimal
% solution between primal and dual SDP.
% * isSymmetric : The flag for the checking the symmetricity of input
% matrices. (0 => no check, 1=> check)
% * isDimacs : The flag to compute DIMACS ERROR
% (0 => no computation, 1=> computation)
% * xPrint : (default %+8.3e, NOPRINT skips printout)
% * XPrint : (default %+8.3e, NOPRINT skips printout)
% * YPrint : (default %+8.3e, NOPRINT skips printout)
% * infPrint : (default %+10.16e, NOPRINT skips printout)
% * print : Destination of file output. the default setting is
% stdout by 'display'.
% If print is set 'no' or empty, no message
% is print out
% * resultFile : Destination of detail file output
% * NumThreads : Number of Threads for internal computation
% This file is a component of SDPA
% Copyright (C) 2004-2013 SDPA Project
%
% This program is free software; you can redistribute it and/or modify
% it under the terms of the GNU General Public License as published by
% the Free Software Foundation; either version 2 of the License, or
% (at your option) any later version.
%
% This program is distributed in the hope that it will be useful,
% but WITHOUT ANY WARRANTY; without even the implied warranty of
% MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
% GNU General Public License for more details.
%
% You should have received a copy of the GNU General Public License
% along with this program; if not, write to the Free Software
% Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
%
% SDPA-M: $Revision: 6.2 $
% $Id: param.m,v 6.2 2005/05/28 02:36:40 drophead Exp $
% create default OPTION
OPTION0.maxIteration = 100;
OPTION0.epsilonStar = 1.0E-7;
OPTION0.lambdaStar = 1.0E2;
OPTION0.omegaStar = 2.0;
OPTION0.lowerBound = -1.0E5;
OPTION0.upperBound = 1.0E5;
OPTION0.betaStar = 0.1;
OPTION0.betaBar = 0.3;
OPTION0.gammaStar = 0.9;
OPTION0.epsilonDash = 1.0E-7;
OPTION0.isSymmetric = 0;
OPTION0.isDimacs = 0;
OPTION0.xPrint = '%+8.3e';
OPTION0.XPrint = '%+8.3e';
OPTION0.YPrint = '%+8.3e';
OPTION0.infPrint = '%+16.10e';
OPTION0.print = 'display';
OPTION0.resultFile = '';
try
OPTION0.NumThreads = maxNumCompThreads; % Max Avialable Number
catch
fprintf(['Function maxNumCompThreads is not found, NumThreads ' ...
'is set as 1.\n']);
OPTION0.NumThreads = 1;
end
OPTION0.aggConeSize = [];
if (nargin == 0) || isempty(OPTION)
OPTION = OPTION0;
return
else
if ~isfield(OPTION,'maxIteration')
OPTION.maxIteration=OPTION0.maxIteration;
elseif ~isnumeric(OPTION.maxIteration)
error('OPTION.maxIteration must be numeric.');
end
%
if ~isfield(OPTION,'epsilonStar')
OPTION.epsilonStar=OPTION0.epsilonStar;
elseif ~isnumeric(OPTION.epsilonStar)
error('epsilonStar must be numeric.');
end
%
if ~isfield(OPTION,'lambdaStar')
OPTION.lambdaStar=OPTION0.lambdaStar;
elseif ~isnumeric(OPTION.lambdaStar)
error('OPTION.lambdaStar must be numeric.');
end
%
if ~isfield(OPTION,'omegaStar')
OPTION.omegaStar=OPTION0.omegaStar;
elseif ~isnumeric(OPTION.omegaStar)
error('OPTION.omegaStar must be numeric.');
end
%
if ~isfield(OPTION,'lowerBound')
OPTION.lowerBound=OPTION0.lowerBound;
elseif ~isnumeric(OPTION.lowerBound)
error('OPTION.lowerBound must be numeric.');
end
%
if ~isfield(OPTION,'upperBound')
OPTION.upperBound=OPTION0.upperBound;
elseif ~isnumeric(OPTION.upperBound)
error('OPTION.upperBound must be numeric.');
end
%
if ~isfield(OPTION,'betaStar')
OPTION.betaStar=OPTION0.betaStar;
elseif ~isnumeric(OPTION.betaStar)
error('OPTION.beaStar must be numeric.');
end
%
if ~isfield(OPTION,'betaBar')
OPTION.betaBar=OPTION0.betaBar;
elseif ~isnumeric(OPTION.betaBar)
error('OPTION.betaBar must be numeric.');
end
%
if ~isfield(OPTION,'gammaStar')
OPTION.gammaStar=OPTION0.gammaStar;
elseif ~isnumeric(OPTION.gammaStar)
error('OPTION.gammaStar must be numeric.');
end
%
if ~isfield(OPTION,'epsilonDash')
OPTION.epsilonDash=OPTION0.epsilonDash;
elseif ~isnumeric(OPTION.epsilonDash)
error('OPTION.epsilonDash must be numeric.');
end
%
if isfield(OPTION,'searchDir')
disp('Parameter *searchDir* is no longer supported.');
disp('HRVW/KSH/M is automatically used.');
end
%
if ~isfield(OPTION,'isSymmetric')
OPTION.isSymmetric=OPTION0.isSymmetric;
elseif ~isnumeric(OPTION.isSymmetric) || ((OPTION.isSymmetric~=0) && (OPTION.isSymmetric~=1))
error('OPTION.isSymmetric must be 0 or 1.');
end
%
if ~isfield(OPTION,'isDimacs')
OPTION.isDimacs=OPTION0.isDimacs;
elseif ~isnumeric(OPTION.isDimacs) || ((OPTION.isDimacs~=0) && (OPTION.isDimacs~=1))
error('OPTION.isDimacs must be 0 or 1.');
end
%
if ~isfield(OPTION,'XPrint')
OPTION.XPrint=OPTION0.XPrint;
elseif ~ischar(OPTION.XPrint)
error('OPTION.XPrint must be string.');
end
%
if ~isfield(OPTION,'YPrint')
OPTION.YPrint=OPTION0.YPrint;
elseif ~ischar(OPTION.YPrint)
error('OPTION.YPrint must be string for printf.');
end
%
if ~isfield(OPTION,'infPrint')
OPTION.infPrint=OPTION0.infPrint;
elseif ~ischar(OPTION.infPrint)
error('OPTION.infPrint must be string for printf.');
end
%
if isfield(OPTION,'print') && ...
(isempty(OPTION.print) || length(OPTION.print) == 0)
OPTION.print = 'no';
end
if ~isfield(OPTION,'print')
OPTION.print=OPTION0.print;
elseif ~ischar(OPTION.print)
disp('*** OPTION.print must be string for FILE. ***');
disp(' "display" is for stdout.');
disp(' "no" or empty is for skip message.');
disp(' filename is filename in which message will be written.');
error('*** OPTION.print must be string for FILE. ***');
end
%
if ~isfield(OPTION,'resultFile') || isempty(OPTION.resultFile)
OPTION.resultFile=OPTION0.resultFile;
elseif ~ischar(OPTION.resultFile)
error('OPTION.resultFile must be string.');
end
%
if ~isfield(OPTION,'NumThreads')
OPTION.NumThreads=OPTION0.NumThreads;
elseif ~isnumeric(OPTION.NumThreads)
error('OPTION.NumThreads must be positive integer.');
end
if ~isfield(OPTION,'aggConeSize')
OPTION.aggConeSize = OPTION0.aggConeSize;
elseif (~isempty(OPTION.aggConeSize)) && ...
((~isnumeric(OPTION.aggConeSize)) || (OPTION.aggConeSize <=0))
error('OPTION.aggConeSize must be a positive integer.');
end
end
return
% End of File
+81
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@@ -0,0 +1,81 @@
function [objVal,x,X,Y,INFO]=sdpamC(mDIM,nBLOCK,bLOCKsTRUCT,c,F,...
x0,X0,Y0,OPTION)
%
% Compute the solution of standard SDP.
% Since some of input arguments are optional, sdpam can be
% overloaded as below.
%
% [objVal,x,X,Y,INFO] = sdpamC(mDIM,nBLOCK,bLOCKsTRUCT,c,F,
% x0,X0,Y0,OPTION);
%
% <INPUT>
% - mDIM : integer ; number of primal variables
% - nBLOCK : integer ; number of blocks of F
% - bLOCKsTRUCT: vector ; represetns the block structure of F
% - c : vector ; coefficient vector
% - F : cell array; coefficient matrices
% - x0,X0,Y0 : cell array; initial point
% (NOTE: In SDPA-C, initial point is ignored.)
% - OPTION : structure ; options
%
% <OUTPUT>
% - objVal: [objValP objValD]; optimal value of P and D
% - x : vector ; optimal solution
% - X,Y : cell arrray ; optimal solutions
% - INFO : structure ; infomation of the solution
%
% This file is a component of SDPA
% Copyright (C) 2004-2013 SDPA Project
%
% This program is free software; you can redistribute it and/or modify
% it under the terms of the GNU General Public License as published by
% the Free Software Foundation; either version 2 of the License, or
% (at your option) any later version.
%
% This program is distributed in the hope that it will be useful,
% but WITHOUT ANY WARRANTY; without even the implied warranty of
% MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
% GNU General Public License for more details.
%
% You should have received a copy of the GNU General Public License
% along with this program; if not, write to the Free Software
% Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
%
% SDPA-M: $Revision: 6.2 $
% $Id: sdpam.m,v 6.2 2005/05/28 02:36:40 drophead Exp $
t = cputime;
if (nargin < 5 || nargin > 9)
error('incorrect number of input arguments')
elseif nargin == 5
% make initial points empty
x0=[];X0=[];Y0=[];
% load default parameters
OPTION=paramC;
% solve by SDPA
[objVal,x,X,Y,INFO]=mexsdpaC(mDIM,nBLOCK,bLOCKsTRUCT,...
c,F,x0,X0,Y0,OPTION);
elseif nargin == 6
% use OPTION given by arguments
OPTION=paramC(x0);
% make initial points empty
x0=[];X0=[];Y0=[];
[objVal,x,X,Y,INFO]=mexsdpaC(mDIM,nBLOCK,bLOCKsTRUCT,...
c,F,x0,X0,Y0,OPTION);
elseif nargin == 8
% load default parameters
OPTION=paramC;
%solve by SDPA
[objVal,x,X,Y,INFO]=mexsdpaC(mDIM,nBLOCK,bLOCKsTRUCT,...
c,F,x0,X0,Y0,OPTION);
elseif nargin == 9
OPTION=paramC(OPTION);
% solve by SDPA
[objVal,x,X,Y,INFO]=mexsdpaC(mDIM,nBLOCK,bLOCKsTRUCT,...
c,F,x0,X0,Y0,OPTION);
end
INFO.cpusec = cputime-t;
% End of File
+382
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@@ -0,0 +1,382 @@
function [x,y,info]=sedumiwrapC(A,b,c,K,pars,OPTION);
%
% SeDuMi wrapper for SDPA
%
% [x,y,info]=sedumiwrapC(A,b,c,K,pars,OPTION);
% or
% [x,y,info]=sedumiwrapC(A,b,c,K); % with SDPA-M default parameter
%
% Note :
% 'A', in each SDP block, only upper triangle part is used.
% 'K' can include only 'f'(free) 'l'(linear) 's'(SDP) cones.
% 'pars' information is NOT used (just for SeDuMi compatibility)
% 'OPTION' is option structure for SDPA-M (for details, try 'help param')
% 'info' information is based on SDPA-M
%
% This file is a component of SDPA
% Copyright (C) 2004-2013 SDPA Project
%
% This program is free software; you can redistribute it and/or modify
% it under the terms of the GNU General Public License as published by
% the Free Software Foundation; either version 2 of the License, or
% (at your option) any later version.
%
% This program is distributed in the hope that it will be useful,
% but WITHOUT ANY WARRANTY; without even the implied warranty of
% MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
% GNU General Public License for more details.
%
% You should have received a copy of the GNU General Public License
% along with this program; if not, write to the Free Software
% Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
%
% SDPA-M: $Revision: 7.3 $
t = cputime;
fprintf('-SeDuMi Wrapper for SDPA-C Start-\n');
if (nargin < 4 || nargin > 6)
error('incorrect number of input arguments')
end
if nargin >= 5
if isfield(OPTION,'print') && ~isempty(OPTION.print)
fprintf('Note: pars information [5th argument] is not used\n');
end
end
if nargin < 6
OPTION = paramC;
else
OPTION = paramC(OPTION);
end
if isfield(K,'q') && ~isempty(K.q)
error('Current Wrapper cannot handle K.q');
end
if isfield(K,'r') && ~isempty(K.r)
error('Current Wrapper cannot handle K.r');
end
if size(b,2) ~= 1
% fprintf('Transposing b to a column vector');
b = b';
end
if size(b,2) ~= 1
error('b must be a vector');
end
if size(c,2) ~= 1
% fprintf('Transposing c to a column vector\n');
c = c';
end
if size(c,2) ~= 1
error('c must be a vector');
end
%%%%%
% Constructing at least one SDP cone if necesary
if (~isfield(K,'s')) || (isempty(K.s))
[K] = LPtoLP_SDP(K);
end
%%%%%
totalLength = 0;
Kf = 0;
if isfield(K,'f') && ~isempty(K.f)
totalLength = totalLength + K.f;
Kf = K.f;
end
if isfield(K,'l') && ~isempty(K.l)
totalLength = totalLength + K.l;
else
K.l = 0;
end
if isfield(K,'s') && ~isempty(K.s)
if size(K.s,2) ~= 1
% fprintf('Transposing K.s to a column vector\n');
K.s = K.s';
end
Ks = sum(K.s .* K.s);
totalLength = totalLength + Ks;
else
error('Cannot handle empty K.s');
end
m = size(b,1);
n = size(c,1);
[mA,nA] = size(A);
if (m~=mA || n~=nA) && (m~=nA || n~=mA)
fprintf('Inconsistent Size of A,b,c\n');
fprintf('size(A) = [%d,%d], size(b) = %d, size(c) = %d\n',...
mA,nA, m,n);
error('Cannot continue...');
end
if (n~=totalLength)
fprintf('Inconsistent Size of c and K\n');
fprintf('size(c) = %d, totalSize(K) = %d\n',...
n, totalLength);
error('Cannot continue...');
end
if ~issparse(A)
if isfield(OPTION,'print') && ~isempty(OPTION.print)
fprintf('Converting A from dense to sparse\n');
end
A = sparse(A);
end
if issparse(b)
% fprintf('Converting b from sparse to dense\n');
b = full(b);
end
if ~issparse(c)
% fprintf('Converting c from dense to sparse\n');
c = sparse(c);
end
if issparse(K.s)
% fprintf('Converting K.s from sparse to dense\n');
K.s = full(K.s);
end
if Kf ~= 0
if isfield(OPTION,'print') && ~isempty(OPTION.print)
fprintf(['Free Variables are divided into positive and ' ...
'negative part of LP cone\n']);
end
Af = A(:,1:Kf);
Kl = K.l;
Al = A(:,Kf+1:Kf+Kl);
As = A(:,Kf+Kl+1:Kf+Kl+Ks);
Anew = [Af, -Af, Al, As];
cf = c(1:Kf);
cl = c(Kf+1:Kf+Kl);
cs = c(Kf+Kl+1:Kf+Kl+Ks);
cnew = [cf; -cf; cl; cs];
Knew.l = 2*Kf + Kl;
Knew.s = K.s;
A = Anew;
c = cnew;
K = Knew;
clear Af;
clear Al;
clear As;
clear Anew;
clear cf;
clear cl;
clear cs;
clear cnew;
clear Knew;
end
if isfield(K,'s') && ~isempty(K.s)
if size(K.s,2) ~= 1
K.s = Ks';
end
end
%%%%%
% Aggregating small SDP cones into larger SDP cones
aggSW = 0;
minNoSDPcones = 3;
if (isfield(OPTION,'aggConeSize')) && (~isempty(OPTION.aggConeSize)) && (isnumeric(OPTION.aggConeSize)) && ...
((OPTION.aggConeSize > 0)) && (length(K.s') > minNoSDPcones) && (length(find(K.s' < OPTION.aggConeSize)) > minNoSDPcones)
fprintf('OPTION.aggConeSize = %d\n',OPTION.aggConeSize)
K0 = K;
aggSW = 1;
[A,c,K1] = aggSDPcones(A,c,K,OPTION.aggConeSize);
A = sparse(A);
c = sparse(c);
K = K1;
end
%%%%%
% A should be transposed when passed to mex
[mA,nA] = size(A);
if mA ~= K.l + sum(K.s.*K.s)
A = A';
end
% fprintf('size(A) = (%d,%d)\n',size(A,2),size(A,1));
% fprintf('length(K.s) = %d\n',length(K.s));
[x,y,info] = mexSedumiWrapC(A,b,c,K,OPTION);
%%%%%
% Retrieving the origianl primal SDP cone variables
if aggSW == 1
if (isfield(K,'l')) && (~isempty(K.l)) && (K.l > 0)
xSDP = x(K.l+1:size(x,1),1);
xLP = x(1:K.l,1);
[xSDP] = mexDisAggSDPsol(xSDP,K0.s,K1.s);
x = [xLP; xSDP];
else
[x] = mexDisAggSDPsol(x,K0.s,K1.s);
end
end
%%%%%
if Kf ~=0
xlength = size(x);
xnew = x(1:Kf) - x(Kf+1:Kf+Kf);
xnew = [xnew; x(Kf+Kf+1:xlength)];
x = xnew;
end
info.cpusec = cputime-t;
% if isfield(OPTION,'print') && ~isempty(OPTION.print)
fprintf('-SeDuMi Wrapper for SDPA-C End-\n');
% end
% End of File
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
function [K] = LPtoLP_SDP(K)
if isfield(K,'q') && ~isempty(K.q)
error('Current Wrapper cannot handle K.q');
end
if isfield(K,'r') && ~isempty(K.r)
error('Current Wrapper cannot handle K.r');
end
if isfield(K,'s') && ~isempty(K.s)
return;
elseif ~isfield(K,'l') || isempty(K.l)
error('Both LP and SDP cones are empty, so the problem can not be solved');
else
K.l = K.l-1;
if K.l == 0
K.l = [];
end
K.s = 1;
end
return
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
function [A1,c1,K1] = aggSDPcones(A,c,K0,aggConeSize)
%
% [A1,c1,K1] = aggSDPcones(A,c,K0,aggConeSize)
% Input : SeDuMi format
% aggConeSize : the block size into which small blocks are converted
% Output: Sedumi format with larger SDP cone matrices
%
if (size(K0.s,2) > 1)
K0.s = K0.s';
end
if size(A,1) > size(A,2)
A = A';
end
% if size(c,1) < size(c,2)
% c = c';
% end
[m,n] = size(A);
%
if ~isfield(K0,'f') || isempty(K0.f)
fDim = 0;
else
fDim = K0.f;
end
%
if ~isfield(K0,'l') || isempty(K0.l)
ellDim = 0;
else
ellDim = K0.l;
end
%
if ~isfield(K0,'q')
qDim = 0;
else
if size(K0.q,1) > size(K0.q,2)
K0.q = K0.q'; % a row vector
end
qDim = sum(K0.q);
end
%
if ~isfield(K0,'s') || isempty(K0.s)
K1 = K0;
A1 = A;
c1 = c;
return
else
if size(K0.s,2) > size(K0.s,1)
K0.s = K0.s'; % a column vector
end
sDim = sum(K0.s .* K0.s);
end
nonSDim = fDim+ellDim+qDim;
if nonSDim == 0
cNonSDP = [];
AnonSDP = [];
c0SDP = c;
A0SDP = A;
else
cNonSDP = c(1:nonSDim,1);
AnonSDP = A(:,1:nonSDim);
c0SDP = c(nonSDim+1:n,1);
A0SDP = A(:,nonSDim+1:n);
end
K1s = [];
coneSize = 0;
for p=1:length(K0.s)
if (K0.s(p) > aggConeSize)
if coneSize > 0
K1s = [K1s; coneSize; K0.s(p)];
coneSize = 0;
else
K1s = [K1s; K0.s(p)];
coneSize = 0;
end
elseif ((coneSize + K0.s(p) > aggConeSize))
K1s = [K1s; coneSize];
coneSize = K0.s(p);
elseif ((coneSize + K0.s(p) == aggConeSize))
K1s = [K1s; coneSize + K0.s(p)];
coneSize = 0;
else
coneSize = coneSize + K0.s(p);
end
end
if (coneSize > 0)
K1s = [K1s; coneSize];
end
K0s = K0.s; % K0.s is a column vector
K1 = K0;
K1.s = K1s; % K1s is a column vector
tStart = tic;
% C0SDP, K0s and K1s need to be clolumn vector
[A1SDP,c1SDP] = mexAggSDPcones(A0SDP,c0SDP',K0s,K1s);
tElapsed = toc(tStart);
fprintf('Original SDP: the max cone size, the number of cones = %3d, %3d\n',full(max(K0.s)),length(K0.s));
fprintf('Transformed SDP: the max cone size, the number of cones = %3d, %3d\n',full(max(K1.s)),length(K1.s));
% fprintf('Elapsed time for transformation = %6.2e\n',tElapsed);
c1SDP = c1SDP';
A1 = sparse([AnonSDP, A1SDP]);
c1 = sparse([cNonSDP;c1SDP]);
% checkData(A1,b1,c1,K1);
% sedumi(A1,b1,c1,K1);
return
+15
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@@ -0,0 +1,15 @@
100 unsigned int maxIteration;
1.0E-7 double 0.0 < epsilonStar;
1.0E2 double 0.0 < lambdaStar;
2.0 double 1.0 < omegaStar;
-1.0E5 double lowerBound;
1.0E5 double upperBound;
0.1 double 0.0 <= betaStar < 1.0;
0.3 double 0.0 <= betaBar < 1.0, betaStar <= betaBar;
0.9 double 0.0 < gammaStar < 1.0;
1.0E-7 double 0.0 < epsilonDash;
%+8.3e char* xPrint (default %+8.3e, NOPRINT skips printout)
%+8.3e char* XPrint (default %+8.3e, NOPRINT skips printout)
%+8.3e char* YPrint (default %+8.3e, NOPRINT skips printout)
%+10.16e char* infPrint (default %+10.16e, NOPRINT skips printout)
+153
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/* sdpa_algebra.h
LAPACK+BLAS definitions wrapper
Define macros to mangle the given C identifier (in lower and upper
case), which must not contain underscores, for linking with Fortran.
*/
#ifndef __sdpa_algebra_h__
#define __sdpa_algebra_h__
#define FC_RET_I int
#define FC_RET_D double
#if defined(__APPLE__) // Dirty...
#define FC_FUNC(name,NAME) name ## _
#endif
#define FC_FUNC(name,NAME) name ## _ // for SDPA-C temporary
#define dtrsm_fc FC_FUNC (dtrsm, DTRSM)
#define dsyrk_fc FC_FUNC (dsyrk, DSYRK)
#define dcopy_fc FC_FUNC (dcopy, DCOPY)
#define daxpy_fc FC_FUNC (daxpy, DAXPY)
#define dgemm_fc FC_FUNC (dgemm, DGEMM)
#define dgemv_fc FC_FUNC (dgemv, DGEMV)
#define dscal_fc FC_FUNC (dscal, DSCAL)
#define dtrsv_fc FC_FUNC (dtrsv, DTRSV)
#define dtrmv_fc FC_FUNC (dtrmv, DTRMV)
#define ddot_fc FC_FUNC (ddot, DDOT)
#define dtrmm_fc FC_FUNC (dtrmm, DTRMM)
#define ilaenv_fc FC_FUNC (ilaenv, ILAENV)
#define dsteqr_fc FC_FUNC (dsteqr, DSTEQR)
#define dsyev_fc FC_FUNC (dsyev, DSYEV)
#define dpotrf_fc FC_FUNC (dpotrf, DPORTRF)
extern "C"
{
// BLAS
FC_RET_I dtrsm_fc
(char* side, char* uplo, char* trans, char* diag,
int* M, int* N,
double* alpha,
double* A, int* lda,
double* B, int* ldb, int side_len,
int uplo_len, int trans_len, int diag_len);
FC_RET_I dsyrk_fc
(char* uplo, char* trans, int* N, int* K,
double* alpha,
double* A, int* lda,
double* beta,
double* C, int* ldc, int uplo_len, int trans_len);
FC_RET_I dcopy_fc
(int* N,
double* X, int* incX,
double* Y, int* incY);
FC_RET_I daxpy_fc
(int* N,
double* alpha,
double* X, int* incX,
double* Y, int* incY);
FC_RET_I dgemm_fc
(char* transA, char* transB, int* M, int* N, int* K,
double* alpha,
double* A, int* lda,
double* B, int* ldb,
double* beta,
double* C, int* ldc, int transA_len, int transB_len);
FC_RET_I dgemv_fc
(char* trans, int* M, int* N,
double* alpha,
double* A, int* lda,
double* X, int* incX,
double* beta,
double* Y, int* incY, int trans_len);
FC_RET_I dscal_fc
(int* N,
double* alpha,
double* X, int* incX);
FC_RET_I dtrsv_fc
(char* uplo, char* trans, char* diag, int* N,
double* A, int* lda,
double* X, int* incX, int uplo_len,
int trans_len, int diag_len);
FC_RET_I dtrmv_fc
(char* uplo, char *trans, char* diag, int *N,
double *A, int *lda,
double *X, int *incX, int uplo_len, int trans_len, int diag_len);
FC_RET_D ddot_fc
(int* N, double* X, int* incX, double* Y, int* incY);
FC_RET_I dtrmm_fc
(char* side, char* uplo, char* trans, char* diag,
int* M, int* N,
double* alpha,
double* A, int* lda,
double* B, int* ldb, int side_len, int uplo_len,
int trans_len, int diag_len);
// LAPACK
FC_RET_I ilaenv_fc
(int *ispec, char *name, char *opts, int *n1,
int *n2, int *n3, int *n4, int name_len, int opts_len);
FC_RET_I dsteqr_fc
(char *compz, int *n, double *d,
double *e, double *z, int *ldz, double *work,
int *info, int compz_len);
FC_RET_I dsyev_fc
(char *jobz, char *uplo, int *n, double *a,
int *lda, double *w, double *work, int *lwork,
int *info, int jobz_len, int uplo_len);
FC_RET_I dpotrf_fc
(char *uplo, int *n, double *a, int *lda,
int *info, int uplo_len);
}
#endif // __sdpa_algebra_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#include "sdpa_block.h"
namespace sdpa {
BlockStruct::BlockStruct()
{
nBlock = 0;
blockStruct = NULL;
blockNumber = NULL;
blockType = NULL;
SDP_nBlock = 0;
SDP_blockStruct = NULL;
LP_nBlock = 0;
}
BlockStruct::~BlockStruct()
{
finalize();
}
void BlockStruct::initialize(int nBlock)
{
this->nBlock = nBlock;
NewArray(blockStruct,int,nBlock);
NewArray(blockType, BlockType, nBlock);
NewArray(blockNumber,int,nBlock);
SDP_nBlock = 0;
SDP_blockStruct = NULL;
LP_nBlock = 0;
}
void BlockStruct::finalize()
{
DeleteArray(blockStruct);
DeleteArray(blockNumber);
DeleteArray(blockType);
DeleteArray(SDP_blockStruct);
}
void BlockStruct::makeInternalStructure()
{
SDP_nBlock = 0;
LP_nBlock = 0;
for (int l=0; l<nBlock; l++){
#if 0
rMessage("blockStruct[" << l << "] = "<< blockStruct[l]
<< ": blockType[" << l << "] = " << blockType[l]);
#endif
if (blockStruct[l] >= 2 && blockType[l] == btSDP) {
blockType[l] = btSDP;
blockNumber[l] = SDP_nBlock;
SDP_nBlock++;
} else if (blockStruct[l] < 0 || blockType[l] == btLP) {
blockType[l] = btLP;
if (blockStruct[l] < 0) {
blockStruct[l] = - blockStruct[l];
}
blockNumber[l] = LP_nBlock;
LP_nBlock += blockStruct[l];
} else if (blockStruct[l] == 1) {
blockType[l] = btLP;
blockStruct[l] = 1;
blockNumber[l] = LP_nBlock;
LP_nBlock += blockStruct[l];
} else {
rError("block struct");
}
}
NewArray(SDP_blockStruct, int,SDP_nBlock);
SDP_nBlock = 0;
for (int l=0; l<nBlock; l++){
if (blockType[l] == btSDP) {
SDP_blockStruct[SDP_nBlock] = blockStruct[l];
SDP_nBlock++;
}
}
}
void BlockStruct::display(FILE* fpout)
{
if (fpout == NULL) {
return;
}
fprintf(fpout,"--- BlockStruct ---\n");
fprintf(fpout,"nBlock = %d\n",nBlock);
fprintf(fpout,"blockStruct = \n");
for (int l=0; l<nBlock; ++l) {
fprintf(fpout,"%5d,",blockStruct[l]);
}
fprintf(fpout,"\n");
fprintf(fpout,"blockNumber = \n");
for (int l=0; l<nBlock; ++l) {
fprintf(fpout,"%5d,",blockNumber[l]);
}
fprintf(fpout,"\n");
fprintf(fpout,"blockType = \n");
for (int l=0; l<nBlock; ++l) {
char displaychar = '-';
if (blockType[l] == btSDP) {
displaychar= 'S';
} else if (blockType[l] == btLP) {
displaychar= 'L';
}
fprintf(fpout," %c,",displaychar);
}
fprintf(fpout,"\n");
fprintf(fpout,"SDP_nBlock = %d\n",SDP_nBlock);
fprintf(fpout,"SDP_blockStruct = \n");
for (int l=0; l<SDP_nBlock; ++l) {
fprintf(fpout,"%5d,",SDP_blockStruct[l]);
}
fprintf(fpout,"\n");
fprintf(fpout,"LP_nBlock = %d\n",LP_nBlock);
fprintf(fpout,"--- BlockStruct ---\n");
}
} // end of namespace 'sdpa'
+52
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#ifndef __sdpa_block_h__
#define __sdpa_block_h__
#include "sdpa_include.h"
namespace sdpa {
class BlockStruct
{
public:
enum BlockType {btSDP,btLP};
int nBlock;
int* blockStruct;
int* blockNumber;
BlockType* blockType;
int SDP_nBlock;
int* SDP_blockStruct;
int LP_nBlock;
BlockStruct();
~BlockStruct();
void initialize(int nBlock);
void finalize();
void makeInternalStructure();
void display(FILE* fpOut = stdout);
};
} //end of namespace 'sdpa'
#endif // __sdpa_block_h__
+901
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*--------------------------------------------------
sdpa_call.cpp
--------------------------------------------------*/
#include "sdpa_call.h"
#include "sdpa_io.h"
#include "sdpa_linear.h"
using namespace sdpa;
#define LengthOfBuffer 1024
SDPA::SDPA()
{
KAPPA = 1.5;
m = 0;
nBlock = 0;
fpout = NULL;
Display = NULL;
isInitPoint = false;
typeParameter = PARAMETER_DEFAULT;
param.setDefaultParameter(Parameter::PARAMETER_DEFAULT);
}
SDPA::~SDPA()
{
finalize();
}
void SDPA::setParameterType(ParameterType type)
{
if (type == PARAMETER_DEFAULT) {
param.setDefaultParameter(Parameter::PARAMETER_DEFAULT);
} else if (type == PARAMETER_UNSTABLE_BUT_FAST) {
param.setDefaultParameter(Parameter::PARAMETER_UNSTABLE_BUT_FAST);
} else if (type == PARAMETER_STABLE_BUT_SLOW) {
param.setDefaultParameter(Parameter::PARAMETER_STABLE_BUT_SLOW);
}
typeParameter = type;
}
void SDPA::setParameterMaxIteration(int maxIteration)
{
param.maxIteration = maxIteration;
}
void SDPA::setParameterEpsilonStar (double epsilonStar)
{
param.epsilonStar = epsilonStar;
}
void SDPA::setParameterLambdaStar (double lambdaStar)
{
param.lambdaStar = lambdaStar;
}
void SDPA::setParameterOmegaStar (double omegaStar)
{
param.omegaStar = omegaStar;
}
void SDPA::setParameterLowerBound (double lowerBound)
{
param.lowerBound = lowerBound;
}
void SDPA::setParameterUpperBound (double upperBound)
{
param.upperBound = upperBound;
}
void SDPA::setParameterBetaStar (double betaStar)
{
param.betaStar = betaStar;
}
void SDPA::setParameterBetaBar (double betaBar)
{
param.betaBar = betaBar;
}
void SDPA::setParameterGammaStar (double gammaStar)
{
param.gammaStar = gammaStar;
}
void SDPA::setParameterEpsilonDash (double epsilonDash)
{
param.epsilonDash = epsilonDash;
}
void SDPA::setParameterPrintXVec(char* xPrint)
{
strncpy(param.xPrint,xPrint,PRINT_DEFAULT_LENGTH);
}
void SDPA::setParameterPrintXMat(char* XPrint)
{
strncpy(param.XPrint,XPrint,PRINT_DEFAULT_LENGTH);
}
void SDPA::setParameterPrintYMat(char* YPrint)
{
strncpy(param.YPrint,YPrint,PRINT_DEFAULT_LENGTH);
}
void SDPA::setParameterPrintInformation(char* infPrint)
{
strncpy(param.infPrint,infPrint,PRINT_DEFAULT_LENGTH);
}
void SDPA::setDisplay(FILE* Display)
{
this->Display = Display;
}
void SDPA::setResultFile(FILE* fpout)
{
this->fpout = fpout;
}
void SDPA::setNumThreads(int NumThreads)
{
newton.setNumThreads(Display,fpout,NumThreads);
}
SDPA::ParameterType SDPA::getParameterType()
{
return typeParameter;
}
int SDPA::getParameterMaxIteration()
{
return param.maxIteration;
}
double SDPA::getParameterEpsilonStar()
{
return param.epsilonStar;
}
double SDPA::getParameterLambdaStar()
{
return param.lambdaStar;
}
double SDPA::getParameterOmegaStar()
{
return param.omegaStar;
}
double SDPA::getParameterLowerBound()
{
return param.lowerBound;
}
double SDPA::getParameterUpperBound()
{
return param.upperBound;
}
double SDPA::getParameterBetaStar()
{
return param.betaStar;
}
double SDPA::getParameterBetaBar()
{
return param.betaBar;
}
double SDPA::getParameterGammaStar()
{
return param.gammaStar;
}
double SDPA::getParameterEpsilonDash()
{
return param.epsilonDash;
}
char* SDPA::getParameterPrintXVec()
{
return param.xPrint;
}
char* SDPA::getParameterPrintXMat()
{
return param.XPrint;
}
char* SDPA::getParameterPrintYMat()
{
return param.YPrint;
}
char* SDPA::getParameterPrintInformation()
{
return param.infPrint;
}
FILE* SDPA::getDisplay()
{
return Display;
}
FILE* SDPA::getResultFile()
{
return fpout;
}
bool SDPA::getInitPoint()
{
return isInitPoint;
}
int SDPA::getNumThreads()
{
return newton.NUM_THREADS;
}
void SDPA::inputConstraintNumber(int m)
{
this->m = m;
}
void SDPA::inputBlockNumber(int nBlock)
{
this->nBlock = nBlock;
bs.initialize(nBlock);
}
void SDPA::inputBlockSize(int l, int size)
{
bs.blockStruct[l-1] = size;
}
void SDPA::inputBlockType(int l, ConeType coneType)
{
if (coneType == SDPA::SDP) {
bs.blockType[l-1] = BlockStruct::btSDP;
}
if (coneType == SDPA::LP) {
bs.blockType[l-1] = BlockStruct::btLP;
}
}
void SDPA::inputCVec(int k, double value)
{
if (k > m || k <= 0) {
rError("k exceeds ConstraintNumber or "
"k is less than or equal to zero :: m= "
<< m << " : k= " << k);
}
inputData.b.ele[k-1] = value;
}
void SDPA::inputElement(int k, int l, int i, int j, double value,
bool inputCheck)
{
if (inputCheck) {
if (k > m || k < 0) {
rError ("k exceeds ConstraintNumber or "
"k is less than zero :: m= "
<< m << " : k= " << k << " : l= " << l
<< " : i= " << i << " : j= " << j);
}
if (l > nBlock || l <= 0) {
rError ("l exceeds nBlock or "
"l is less than or equal to zero :: nBlock= "
<< nBlock << " : k= " << k << " : l= " << l
<< " : i= " << i << " : j= " << j);
}
int dim = bs.blockStruct[l-1];
if (i > dim || i <= 0) {
rError ("i exceeds dimension of the block or "
"i is less than or equal to zero :: dim= "
<< dim << " : k= " << k << " : l= " << l
<< " : i= " << i << " : j= " << j);
}
if (j > dim || j <= 0) {
rError ("j exceeds dimension of the block or "
"j is less than or equal to zero :: dim= "
<< dim << " : k= " << k << " : l= " << l
<< " : i= " << i << " : j= " << j);
}
if (bs.blockType[l-1] == BlockStruct::btSDP) {
if (i > j) {
rMessage("Swap i and j [Only Upper Triangle]"
" : k= " << k << " : l= " << l
<< " : i= " << i << " : j= " << j);
}
}
if (bs.blockType[l-1] == BlockStruct::btLP) {
if (i!=j) {
rError("i should be j in LP block"
" : k= " << k << " : l= " << l
<< " : i= " << i << " : j= " << j);
}
}
}
if (i > j) {
int tmp = i; i = j; j = tmp;
}
LIJV* indexLIJv;
NewArray(indexLIJv,LIJV,1);
indexLIJv[0].SDPl = -1;
indexLIJv[0].LPl = -1;
indexLIJv[0].i = i;
indexLIJv[0].j = j;
indexLIJv[0].value = value;
if (bs.blockType[l-1] == BlockStruct::btSDP) {
int l2 = bs.blockNumber[l-1];
indexLIJv[0].SDPl = l2;
NonZeroElements[k].push_back(indexLIJv);
} else if (bs.blockType[l-1] == BlockStruct::btLP) {
int l2 = bs.blockNumber[l-1];
indexLIJv[0].LPl = l2+i-1;
NonZeroElements[k].push_back(indexLIJv);
}
// NonZeroElements[k].push_back(indexLIJv);
}
void SDPA::inputInitXVec(int k, double value)
{
rError("This routine is not available in SDPA-C");
}
void SDPA::inputInitXMat(int l, int i, int j, double value)
{
rError("This routine is not available in SDPA-C");
}
void SDPA::inputInitYMat(int l, int i, int j, double value)
{
rError("This routine is not available in SDPA-C");
}
void SDPA::initializeUpperTriangleSpace()
{
bs.makeInternalStructure();
NewArray(NonZeroElements,vector<LIJV*>,m+1);
inputData.initialize(m, bs);
// In SDPA-C, currentPt.initialize will be called later
// currentPt.initialize(m, bs, param.lambdaStar, com);
}
void SDPA::printNonZeroElements(FILE* fp)
{
for (int k=0; k<=m; ++k) {
int size = NonZeroElements[k].size();
for (int index = 0; index<size; ++index) {
LIJV* a = NonZeroElements[k][index];
int SDPl = a[0].SDPl;
int LPl = a[0].LPl;
int i = a[0].i;
int j = a[0].j;
double value = a[0].value;
if (SDPl >= 0) {
fprintf(fp,"%d, %d(S), %d, %d, ",k,SDPl,i,j);
}
if (LPl >= 0) {
fprintf(fp,"%d, %d(L), %d, %d, ",k,LPl,i,j);
}
fprintf(fp,param.infPrint,value);
fprintf(fp,"\n");
}
}
}
void SDPA::checkNonZeroElements()
{
TimeStart(FILE_CHECK_START1);
for (int k=0; k<=m; ++k) {
int size = NonZeroElements[k].size();
for (int index = 0; index<size-1; ++index) {
LIJV* a = NonZeroElements[k][index];
LIJV* b = NonZeroElements[k][index+1];
if (a[0].SDPl == b[0].SDPl && a[0].LPl == b[0].SDPl
&& a[0].i == b[0].i && a[0].j == b[0].j) {
int SDPl = a[0].SDPl;
int LPl = a[0].LPl;
int i = a[0].i;
int j = a[0].j;
rError("Twice input to the same index. "
": k = " << k << ": SDPl = " << SDPl << ": LPl = " << LPl
<< ": i = " << i << ": j = " << j);
}
}
}
TimeEnd(FILE_CHECK_END1);
com.FileChange += TimeCal(FILE_CHECK_START1,
FILE_CHECK_END1);
com.TotalTime += TimeCal(FILE_CHECK_START1,
FILE_CHECK_END1);
}
void SDPA::setNonZeroBlockStruct()
{
// almost equivalent to IO::setBlockStruct
vector<int> LP_blockCount;
vector<int> SDP_blockCount;
for (int k=0; k<m+1; ++k) {
LP_blockCount.clear();
SDP_blockCount.clear();
int length = NonZeroElements[k].size();
for (int index1 = 0; index1 < length; ++index1) {
LIJV* oneData = NonZeroElements[k].at(index1);
if (oneData[0].LPl >= 0) {
LP_blockCount.push_back(oneData[0].LPl);
}
if (oneData[0].SDPl >= 0) {
SDP_blockCount.push_back(oneData[0].SDPl);
}
}
sort(LP_blockCount.begin(), LP_blockCount.end());
sort(SDP_blockCount.begin(), SDP_blockCount.end());
int LP_sp_nBlock = 0;
int SDP_sp_nBlock = 0;
int LP_old_block = -1;
int SDP_old_block = -1;
const int LP_length = LP_blockCount.size();
const int SDP_length = SDP_blockCount.size();
for (int index1 = 0; index1 < LP_length; ++index1) {
if (LP_blockCount[index1] != LP_old_block) {
LP_old_block = LP_blockCount[index1];
LP_sp_nBlock++;
}
}
for (int index1 = 0; index1 < SDP_length; ++index1) {
if (SDP_blockCount[index1] != SDP_old_block) {
SDP_old_block = SDP_blockCount[index1];
SDP_sp_nBlock++;
}
}
CompSpace* target = &inputData.C;
if (k>0) {
target = &inputData.A[k-1];
}
target->initialize(LP_sp_nBlock, SDP_sp_nBlock);
int index_t = 0;
LP_old_block = -1;
for (int index1 = 0; index1 < LP_length; ++index1) {
const int current_block = LP_blockCount[index1];
if (current_block != LP_old_block) {
target->LP_sp_index[index_t] = current_block;
LP_old_block = current_block;
index_t++;
}
}
index_t = 0;
SDP_old_block = -1;
for (int index1 = 0; index1 < SDP_length; ++index1) {
const int current_block = SDP_blockCount[index1];
if (current_block != SDP_old_block) {
target->SDP_sp_index[index_t] = current_block;
SDP_old_block = current_block;
target->SDP_sp_block[index_t].nRow = bs.SDP_blockStruct[current_block];
target->SDP_sp_block[index_t].nCol = bs.SDP_blockStruct[current_block];
index_t++;
}
}
#if 0
rMessage("LP blocks = ");
for (int index2 = 0; index2 < LP_sp_nBlock; ++index2) {
printf(" %d", target->LP_sp_index[index2]);
}
printf("\n");
rMessage("SDP blocks = ");
for (int index2 = 0; index2 < SDP_sp_nBlock; ++index2) {
printf(" %d", target->SDP_sp_index[index2]);
}
printf("\n");
#endif
target->initializeInputVector();
}
LP_blockCount.clear();
SDP_blockCount.clear();
}
void SDPA::setNonZeroElements()
{
for (int k=0; k<m+1; ++k) {
CompSpace* target = &inputData.C;
double scale = -1.0; // Input of C should be reversed
if (k>0) {
target = &inputData.A[k-1];
scale = 1.0;
}
int length = NonZeroElements[k].size();
for (int index1 = 0; index1 < length; ++index1) {
LIJV* oneData = NonZeroElements[k].at(index1);
if (oneData[0].LPl >= 0) {
target->setElement_LP(oneData[0].LPl, oneData[0].value*scale);
}
if (oneData[0].SDPl >= 0) {
target->setElement_SDP(oneData[0].SDPl,
oneData[0].i-1, oneData[0].j-1,
oneData[0].value*scale);
}
}
}
double v1 = 0; // dummy initialize
double v2 = 0; // dummy initialize
inputData.C.sortInputVector();
int check_l = 0, check_i = 0, check_j = 0;
double check_v1 = 0, check_v2 = 0;
inputData.C.checkInputDataStructure(check_l, check_i, check_j,
check_v1, check_v2);
inputData.C.makeInternalStructure();
if (check_l>=0) {
printf("***** invalid data ******\n");
printf("F[0]:%d-th SDP block:[%d, %d]-th element has more than one input\n",
check_l+1, check_i+1, check_j+1);
rError("Stop due to input error\n");
}
for (int k=0; k<m; ++k) {
inputData.A[k].sortInputVector();
inputData.A[k].checkInputDataStructure(check_l, check_i, check_j,
check_v1, check_v2);
inputData.A[k].makeInternalStructure();
if (check_l>=0) {
printf("***** invalid data ******\n");
printf("F[%d]:%d-th SDP block:[%d, %d]-th element has more than one input\n",
k+1, check_l+1, check_i+1, check_j+1);
rError("Stop due to input error\n");
}
}
#if 0
rMessage("************** Read finished, internal data is from here.");
rMessage("C = -------------------------");
inputData.C.display();
for (int k=0; k<m; ++k) {
rMessage("A[" << k << "] = -------------------------");
inputData.A[k].display();
}
rMessage("************** Read finished, internal data is until here.");
#endif
}
void SDPA::initializeUpperTriangle(bool checkTwiceInput)
{
if (checkTwiceInput) {
checkNonZeroElements();
}
// printNonZeroElements();
setNonZeroBlockStruct();
setNonZeroElements();
for (int k=0; k<=m; ++k) {
int size = NonZeroElements[k].size();
for (int index = 0; index < size; ++index) {
DeleteArray(NonZeroElements[k][index]);
}
}
DeleteArray(NonZeroElements);
}
double* SDPA::getResultXVec()
{
return currentPt.cholmodSpace.yVec.ele;
}
double* SDPA::getResultXMat(int l)
{
if (IO::judgeZmake(param) == false) {
return NULL;
}
if (l > nBlock || l <= 0) {
rError ("l exceeds nBlock or "
"l is less than or equal to zero :: nBlock= "
<< nBlock << " : l= " << l);
}
if (bs.blockType[l-1] == BlockStruct::btSDP) {
int l2 = bs.blockNumber[l-1];
return currentPt.finalZ.SDP_block[l2].de_ele;
}
else if (bs.blockType[l-1] == BlockStruct::btLP) {
int start = bs.blockNumber[l-1];
return &currentPt.finalZ.LP_block[start];
}
return NULL;
}
double* SDPA::getResultYMat(int l)
{
if (IO::judgeXmake(param) == false) {
return NULL;
}
if (l > nBlock || l <= 0) {
rError ("l exceeds nBlock or "
"l is less than or equal to zero :: nBlock= "
<< nBlock << " : l= " << l);
}
if (bs.blockType[l-1] == BlockStruct::btSDP) {
int l2 = bs.blockNumber[l-1];
return currentPt.finalX.SDP_block[l2].de_ele;
}
else if (bs.blockType[l-1] == BlockStruct::btLP) {
int start = bs.blockNumber[l-1];
return &currentPt.finalX.LP_block[start];
}
return NULL;
}
double SDPA::getPrimalObj()
{
// Note reverse primal-dual
return -solveInfo.objValDual;
}
double SDPA::getDualObj()
{
// Note reverse primal-dual
return -solveInfo.objValPrimal;
}
double SDPA::getPrimalError()
{
// Note reverse primal-dual
return currentRes.normDual;
}
double SDPA::getDualError()
{
// Note reverse primal-dual
return currentRes.normPrimal;
}
double SDPA::getDigits()
{
double mean = (fabs(solveInfo.objValPrimal)
+ fabs(solveInfo.objValDual)) / 2.0;
double PDgap = getDualityGap();
double digits = -log10(fabs(PDgap/mean));
return digits;
}
int SDPA::getIteration()
{
return pIteration;
}
double SDPA::getMu()
{
return mu.current;
}
double SDPA::getDualityGap()
{
double PDgap = fabs(solveInfo.objValPrimal
- solveInfo.objValDual);
return PDgap;
}
SDPA::PhaseType SDPA::getPhaseValue()
{
// Note reverse primal-dual
switch (phase.value) {
case SolveInfo::noINFO : return noINFO ; break;
case SolveInfo::pFEAS : return pFEAS ; break;
case SolveInfo::dFEAS : return dFEAS ; break;
case SolveInfo::pdFEAS : return pdFEAS ; break;
case SolveInfo::pdINF : return pdINF ; break;
case SolveInfo::pFEAS_dINF: return pINF_dFEAS; break;
case SolveInfo::pINF_dFEAS: return pFEAS_dINF; break;
case SolveInfo::pdOPT : return pdOPT ; break;
case SolveInfo::pUNBD : return dUNBD ; break;
case SolveInfo::dUNBD : return pUNBD ; break;
default: break;
}
return noINFO;
}
void SDPA::getPhaseString(char* str)
{
switch (phase.value) {
case SolveInfo::noINFO : strcpy(str,(char *)"noINFO "); break;
case SolveInfo::pFEAS : strcpy(str,(char *)"pFEAS "); break;
case SolveInfo::dFEAS : strcpy(str,(char *)"dFEAS "); break;
case SolveInfo::pdFEAS : strcpy(str,(char *)"pdFEAS "); break;
case SolveInfo::pdINF : strcpy(str,(char *)"pdINF "); break;
case SolveInfo::pFEAS_dINF: strcpy(str,(char *)"pFEAS_dINF"); break;
case SolveInfo::pINF_dFEAS: strcpy(str,(char *)"pINF_dFEAS"); break;
case SolveInfo::pdOPT : strcpy(str,(char *)"pdOPT "); break;
case SolveInfo::pUNBD : strcpy(str,(char *)"pUNBD "); break;
case SolveInfo::dUNBD : strcpy(str,(char *)"dUNBD "); break;
default:
strcpy(str,(char *)"phase error");
break;
}
return;
}
double SDPA::getSolveTime()
{
return com.TotalTime;
}
int SDPA::getConstraintNumber()
{
return m;
}
int SDPA::getBlockNumber()
{
return nBlock;
}
int SDPA::getBlockSize(int l)
{
if (l<=0 || l>nBlock) {
rMessage("out of range : getBlockSize "
": l = " << l
<< " should be between 1 and nBlock " << nBlock);
}
return bs.blockStruct[l-1];
}
SDPA::ConeType SDPA::getBlockType(int l)
{
if (l<=0 || l>nBlock) {
rMessage("out of range : getBlockSize "
": l = " << l
<< " should be between 1 and nBlock " << nBlock);
}
switch (bs.blockType[l-1]) {
case BlockStruct::btSDP : return SDPA::SDP ;
case BlockStruct::btLP : return SDPA::LP ;
}
rError("Type Error in getBlockType ");
return SDPA::SDP; // dummy return
}
void SDPA::getDimacsError(double* DimacsError)
{
if (judgeDimacsAvailability() == false) {
return;
}
IO::computeDimacs(DimacsError, solveInfo, currentRes,
currentPt, inputData);
}
void SDPA::printDimacsError(double* DimacsError, char* printFormat,
FILE* fpout)
{
if (judgeDimacsAvailability() == false) {
return;
}
IO::printDimacs(DimacsError,printFormat,fpout);
}
void SDPA::printDimacsEasy(FILE* fpout)
{
double dimacs_error[7];
currentPt.makeFinalSolution(true, true, bs);
getDimacsError(dimacs_error);
printf("Dimacs = ");
for (int dd=1; dd<7; ++dd) {
printf("%.3e ", dimacs_error[dd]);
}
printf("\n");
}
void SDPA::printResultXVec(FILE* fp)
{
// Note reverse primal-dual
currentPt.cholmodSpace.yVec.display(fp,1.0,param.xPrint);
}
void SDPA::printResultXMat(FILE* fp)
{
if (IO::judgeZmake(param) == false) {
fprintf(fp, "Result XMat is not computed.\n");
return;
}
// Note reverse primal-dual
currentPt.finalZ.displaySolution(bs,fp,param.XPrint);
}
void SDPA::printResultYMat(FILE* fp)
{
if (IO::judgeXmake(param) == false) {
fprintf(fp, "Result YMat is not computed.\n");
return;
}
// Note reverse primal-dual
currentPt.finalX.displaySolution(bs,fp,param.YPrint);
}
void SDPA::printComputationTime(FILE* fp)
{
com.display(fp);
}
void SDPA::printParameters(FILE* fp)
{
param.display(fp);
}
bool SDPA::judgeDimacsAvailability() // for only SDPA-C
{
bool Xmake = IO::judgeXmake(param);
bool Zmake = IO::judgeZmake(param);
if (Xmake == false || Zmake == false) {
return false;
}
return true;
}
void SDPA::printSDPAVersion(FILE* fp)
{
if (fp) {
fprintf(fp,"%s\n",(char*)sdpa_right);
}
}
void SDPA::readInput(char* filename, FILE* fpout)
{
TimeStart(FILE_READ_START1);
FILE* fpinput = NULL;
if ((fpinput = fopen(filename,"r")) == NULL) {
rError("Cannot Open Data File " << filename);
}
#if 0
if (fpout){
fprintf(fpout,"data is %s ", filename);
fprintf(fpout," : sparse\n");
}
#endif
char titleAndComment[LengthOfBuffer];
IO::read(fpinput,fpout,m,titleAndComment);
IO::read(fpinput,nBlock);
bs.initialize(nBlock);
IO::read(fpinput,bs);
bs.makeInternalStructure();
inputData.initialize(m, bs);
IO::read(fpinput, inputData.b);
IO::read(fpinput, m, bs, inputData);
// inputData.initialize_index();
fclose(fpinput);
TimeEnd(FILE_READ_END1);
com.FileRead += TimeCal(FILE_READ_START1,
FILE_READ_END1);
com.TotalTime += TimeCal(FILE_READ_START1,
FILE_READ_END1);
return;
}
void SDPA::readParameter(char* filename, FILE* fpout)
{
FILE* fp = NULL;
if ((fp=fopen(filename,"r"))==NULL) {
rError("Cannot Open parameter File " << filename);
}
param.readFile(fp);
fclose(fp);
return;
}
void SDPA::finalize()
{
bs.finalize();
inputData.finalize();
chordal.finalize();
newton.finalize();
currentPt.finalize();
initPt_xMat.finalize();
initPt_zMat.finalize();
currentRes.finalize();
alpha.finalize();
}
void SDPA::copyCurrentToInit()
{
// This function is only compatibility with SDPA.
rMessage("The function SDPA::copyCurrentToInit() does nothing in SDPA-C");
return;
}
void SDPA::setKappa(double KAPPA)
{
this->KAPPA = KAPPA;
}
+256
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@@ -0,0 +1,256 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*--------------------------------------------------
sdpa_call.h
--------------------------------------------------*/
/***************************************************
In this header file,
Do NOT use 'using namespace sdpa;'.
Otherwise, if users define their OWN 'sdpa' namespace,
it would be trouble.
***************************************************/
#ifndef __sdpa_call_h__
#define __sdpa_call_h__
#include <sdpa_right.h>
#include <sdpa_newton.h>
#include <sdpa_chordal.h>
#include <sdpa_parts.h>
#include <sdpa_struct.h>
#include <cstdio>
#include <vector>
#include <algorithm>
/* The class list is generated by the following command
$ grep class *.h | grep -v \; | grep -v SDPA | tr ':' ' ' | \
awk '{print $2 " " $3 ";"}'
*/
namespace sdpa {
class BlockStruct;
class Chordal;
class Solutions;
class InputData;
class Residuals;
class IO;
class Lal;
class Newton;
class ComputeTime;
class Parameter;
class StepLength;
class DirectionParameter;
class Switch;
class AverageComplementarity;
class RatioInitResCurrentRes;
class SolveInfo;
class Phase;
class Vector;
class BlockVector;
class SparseMatrix;
class DenseMatrix;
class SparseLinearSpace;
class DenseLinearSpace;
class Time;
class LIJV
{
public:
int SDPl,LPl,i,j;
double value;
};
};
class SDPA
{
public:
enum PhaseType {noINFO, pFEAS,dFEAS,pdFEAS,pdINF,
pFEAS_dINF,pINF_dFEAS,pdOPT,pUNBD,dUNBD};
enum ParameterType {PARAMETER_DEFAULT,
PARAMETER_UNSTABLE_BUT_FAST,
PARAMETER_STABLE_BUT_SLOW};
enum ConeType {SDP, SOCP, LP};
// SOCP is not implemented in the current version.
enum SparseType {AUTO, SPARSE, DENSE};
// SparseType is only for compatiblity with SDPA7
// In SDPA-C, this always must be SPARSE.
// enum SparseType {AUTO, SPARSE, DENSE};
// when AUTO is set, the type is analyzed by the file extenstion.
SDPA();
~SDPA();
void setParameterType(ParameterType type = PARAMETER_DEFAULT);
void setParameterMaxIteration(int maxIteration);
void setParameterEpsilonStar (double epsilonStar);
void setParameterLambdaStar (double lambdaStar);
void setParameterOmegaStar (double omegaStar);
void setParameterLowerBound (double lowerBound);
void setParameterUpperBound (double upperBound);
void setParameterBetaStar (double betaStar);
void setParameterBetaBar (double betaBar);
void setParameterGammaStar (double gammaStar);
void setParameterEpsilonDash (double epsilonDash);
void setParameterPrintXVec(char* xPrint);
void setParameterPrintXMat(char* XPrint);
void setParameterPrintYMat(char* YPrint);
void setParameterPrintInformation(char* infPrint);
void setDisplay(FILE* Display = stdout);
void setResultFile(FILE* fpout = stdout);
void setNumThreads(int NumThreads=0);
ParameterType getParameterType();
int getParameterMaxIteration();
double getParameterEpsilonStar ();
double getParameterLambdaStar ();
double getParameterOmegaStar ();
double getParameterLowerBound ();
double getParameterUpperBound ();
double getParameterBetaStar ();
double getParameterBetaBar ();
double getParameterGammaStar ();
double getParameterEpsilonDash ();
char* getParameterPrintXVec();
char* getParameterPrintXMat();
char* getParameterPrintYMat();
char* getParameterPrintInformation();
FILE* getDisplay();
FILE* getResultFile();
bool getInitPoint();
int getNumThreads();
void inputConstraintNumber(int m);
void inputBlockNumber(int nBlock);
void inputBlockSize(int l, int size);
void inputBlockType(int l, ConeType coneType);
void inputCVec(int k, double value);
void inputElement(int k, int l, int i, int j, double value,
bool inputCheck = false);
void inputInitXVec(int k, double value);
void inputInitXMat(int l, int i, int j, double value);
void inputInitYMat(int l, int i, int j, double value);
void initializeUpperTriangleSpace();
void initializeUpperTriangle(bool inputTwiceCheck = false);
void initializeSolve();
void solve();
double* getResultXVec();
double* getResultXMat(int l);
double* getResultYMat(int l);
double getPrimalObj();
double getDualObj();
double getPrimalError();
double getDualError();
double getDigits();
int getIteration();
double getMu();
double getDualityGap();
PhaseType getPhaseValue();
void getPhaseString(char* str);
double getSolveTime();
int getConstraintNumber();
int getBlockNumber();
int getBlockSize(int l);
ConeType getBlockType(int l);
void getDimacsError(double* DimacsError);
void printDimacsError(double* DimacsError, char* printFormat,
FILE* fp = stdout);
void printResultXVec(FILE* fp = stdout);
void printResultXMat(FILE* fp = stdout);
void printResultYMat(FILE* fp = stdout);
void printComputationTime(FILE* fp = stdout);
void printParameters(FILE* fp = stdout);
bool judgeDimacsAvailability(); // for only SDPA-C
static void printSDPAVersion(FILE* fp = stdout);
void readInput(char* filename, FILE* fpout = NULL);
void readParameter(char* filename, FILE* fpout = NULL);
void writeInputSparse(char* filename, char* printFormat);
void writeInitSparse(char* filename, char* printFormat);
void finalize();
void copyCurrentToInit();
// setKappa is for only SDPA developers
void setKappa(double KAPPA);
// // for debugging, private is replaced by public
// public:
private:
double KAPPA;
int m;
int nBlock;
FILE* Display;
FILE* fpout;
bool isInitPoint;
ParameterType typeParameter;
int pIteration;
sdpa::ComputeTime com;
sdpa::Parameter param;
sdpa::BlockStruct bs;
sdpa::InputData inputData;
sdpa::Newton newton;
sdpa::Chordal chordal;
sdpa::Solutions currentPt;
sdpa::DenseLinearSpace initPt_xMat;
sdpa::DenseLinearSpace initPt_zMat;
sdpa::Residuals currentRes;
sdpa::StepLength alpha;
sdpa::DirectionParameter beta;
sdpa::Switch reduction;
sdpa::AverageComplementarity mu;
sdpa::RatioInitResCurrentRes theta;
sdpa::SolveInfo solveInfo;
sdpa::Phase phase;
// temporary space to store
// upper trianguler part non-zeros.
vector<sdpa::LIJV*> * NonZeroElements;
void printNonZeroElements(FILE* fpout = stdout);
void checkNonZeroElements();
void setNonZeroBlockStruct();
void setNonZeroElements();
void printDimacsEasy(FILE* fpout = stdout); // heavy but for each iteration
};
#endif // __sdpa_call_h__
+557
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@@ -0,0 +1,557 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#include <algorithm>
#define PrintSparsity 1
#define PLUS_ADJUST_DIAGONAL (1.0e-10)
// #define PLUS_ADJUST_DIAGONAL (m*1.0e-10)
// For debug
#define FORCE_SCHUR_DENSE 0
#define FORCE_SCHUR_SPARSE 0
#include "sdpa_chordal.h"
#define MUMPS_JOB_INIT -1
#define MUMPS_JOB_END -2
#define MUMPS_JOB_ANALYSIS 1
#define MUMPS_JOB_FACTORIZE 2
#define MUMPS_JOB_SOLVE 3
#define MUMPS_USE_COMM_WORLD (-987654)
namespace sdpa {
Chordal::Chordal()
{
mumps_usage = false;
sparse_bMat_ptr = NULL;
best = 0;
}
Chordal::~Chordal()
{
finalize();
}
void Chordal::initialize(SparseMatrix* sparse_bMat_ptr)
{
// condition of sparse computation
// m_threshold < mDim,
// b_threshold < nBlock,
// aggregate_threshold >= aggrigated sparsity ratio
// extend_threshold >= extended sparsity ratio
m_threshold = 100;
b_threshold = 5;
aggregate_threshold = 0.70;
extend_threshold = 0.80;
#if FORCE_SCHUR_DENSE // DENSE computation for debugging
m_threshold = 10000000;
b_threshold = 1000000;
aggregate_threshold = 0.0;
extend_threshold = 0.0;
#endif
#if FORCE_SCHUR_SPARSE // SPARSE computation for debugging
m_threshold = 0;
b_threshold = 0;
aggregate_threshold = 2.0;
extend_threshold = 2.0;
#endif
// initialize by assuming Schur would be DENSE
best = SELECT_DENSE;
this->sparse_bMat_ptr = sparse_bMat_ptr;
// initialize MUMPS
mumps_id.job = MUMPS_JOB_INIT;
mumps_id.comm_fortran = MUMPS_USE_COMM_WORLD;
// rank 0 process participates factorizations
mumps_id.par = 1;
// Only symmetric positive definite matricies
mumps_id.sym = 1;
// No OUTPUTS
mumps_id.icntl[1-1] = -1;
mumps_id.icntl[2-1] = -1;
mumps_id.icntl[3-1] = -1;
mumps_id.icntl[4-1] = 0;
// MUMPS selects ordering automatically
mumps_id.icntl[7-1] = SELECT_MUMPS_BEST;
// for Minumum Degree Ordering
// mumps_id.icntl[7-1] = 0;
dmumps_c(&mumps_id);
mumps_usage = true;
}
void Chordal::finalize()
{
if (mumps_usage == true) {
mumps_id.job = MUMPS_JOB_END;
dmumps_c(&mumps_id);
mumps_usage = false;
}
if (sparse_bMat_ptr) {
sparse_bMat_ptr->finalize();
}
sparse_bMat_ptr = NULL;
}
// merge array1 to array2
void Chordal::mergeArray(int na1, int* array1, int na2, int* array2)
{
int ptr = na1 + na2 - 1;
int ptr1 = na1-1;
int ptr2 = na2-1;
int idx1, idx2;
while ((ptr1 >= 0) || (ptr2 >= 0)){
if (ptr1 >= 0){
idx1 = array1[ptr1];
} else {
idx1 = -1;
}
if (ptr2 >= 0 ){
idx2 = array2[ptr2];
} else {
idx2 = -1;
}
if (idx1 > idx2){
array2[ptr] = idx1;
ptr1--;
} else {
array2[ptr] = idx2;
ptr2--;
}
ptr--;
}
// error check
if (ptr != -1){
rMessage("Chordal::mergeArray:: program bug");
}
}
void Chordal::catArray(int na1, int* array1, int na2, int* array2)
{
int ind1 = 0;
for (int index=0; index<na1; ++index) {
array2[na2] = array1[ind1];
ind1++;
na2++;
}
}
void Chordal::slimArray(int j, int length, int* array, int& slimedLength)
{
if (length == 0) {
return;
}
sort(&array[0],&array[length]);
// We list up only lower triangular
int index = 0;
while (array[index] != j) {
index++;
}
array[0] = j;
slimedLength = 0;
index++;
for (; index<length; ++index) {
if (array[slimedLength] == array[index]) {
continue;
}
slimedLength++;
array[slimedLength] = array[index];
}
slimedLength++;
}
// make aggrigate sparsity pattern
void Chordal::makeGraph(InputData& inputData, int m)
{
int j,k,l;
int SDP_nBlock = inputData.SDP_nBlock;
int LP_nBlock = inputData.LP_nBlock;
int* counter;
NewArray(counter,int,m);
for (j=0; j<m; j++){
counter[j] = 0;
}
// count maximum mumber of index
for (l = 0; l<SDP_nBlock; l++){
int SDP_nConstraint = inputData.SDP_nConstraint[l];
for (k=0; k<SDP_nConstraint; k++){
j = inputData.SDP_constraint[l][k];
counter[j] += SDP_nConstraint;
}
}
for (l = 0; l<LP_nBlock; l++){
int LP_nConstraint = inputData.LP_nConstraint[l];
for (k=0; k<LP_nConstraint; k++){
j = inputData.LP_constraint[l][k];
counter[j] += LP_nConstraint;
}
}
// allocate temporaly workspace
int** tmp;
NewArray(tmp,int*,m);
for (j=0; j<m; j++){
// Anyway B(j,j) exists even if A(j) is empty
counter[j]++;
}
for (j=0; j<m; j++){
NewArray(tmp[j],int,counter[j]);
}
for (j=0; j<m; j++){
// Anyway B(j,j) exists even if A(j) is empty
tmp[j][0] = j;
}
// merge index
for (j=0; j<m; j++){
// Slide 1: Anyway B(j,j) exists even if A(j) is empty
counter[j] = 1;
}
// merge index of for SDP
for (l = 0; l<SDP_nBlock; l++){
for (k=0; k<inputData.SDP_nConstraint[l]; k++){
j = inputData.SDP_constraint[l][k];
catArray(inputData.SDP_nConstraint[l],
inputData.SDP_constraint[l],
counter[j], tmp[j]);
counter[j] += inputData.SDP_nConstraint[l];
}
}
// merge index of for LP
for (l = 0; l<LP_nBlock; l++){
for (k=0; k<inputData.LP_nConstraint[l]; k++){
j = inputData.LP_constraint[l][k];
catArray(inputData.LP_nConstraint[l], inputData.LP_constraint[l],
counter[j], tmp[j]);
counter[j] += inputData.LP_nConstraint[l];
}
}
for (j=0; j<m; j++){
#if 0
printf("BeforeSlimArray[%d] = ",j);
for (int index=0; index<counter[j]; ++index) {
printf(" %d", tmp[j][index]);
}
printf("\n");
#endif
int tmp2 = 0;
slimArray(j,counter[j],tmp[j],tmp2);
counter[j] = tmp2;
#if 0
printf("slimArray[%d] = ",j);
for (int index=0; index<counter[j]; ++index) {
printf(" %d", tmp[j][index]);
}
printf("\n");
#endif
}
int nz = 0;
for (j=0; j<m; j++){
nz += counter[j];
}
sparse_bMat_ptr -> initialize(m,m,SparseMatrix::SPARSE,
nz,SparseMatrix::DSarrays);
sparse_bMat_ptr -> NonZeroCount = nz;
int indexNZ = 0;
for (j=0; j<m; ++j) {
for (int index_i=0; index_i<counter[j]; ++index_i) {
// Note that MUMPS is written in FORTRAN
// So, we need to slide all indices by +1
sparse_bMat_ptr -> row_index[indexNZ] = tmp[j][index_i]+1;
sparse_bMat_ptr -> column_index[indexNZ] = j+1;
sparse_bMat_ptr -> sp_ele[indexNZ] = 0.0;
indexNZ++;
}
}
DeleteArray(counter);
for (j=0; j<m; j++){
DeleteArray(tmp[j]);
}
DeleteArray(tmp);
}
double Chordal::analysisAndcountLowerNonZero(int m)
{
mumps_id.job = MUMPS_JOB_ANALYSIS;
mumps_id.n = m;
mumps_id.nz = sparse_bMat_ptr->NonZeroCount;
mumps_id.irn = sparse_bMat_ptr->row_index;
mumps_id.jcn = sparse_bMat_ptr->column_index;
mumps_id.a = sparse_bMat_ptr->sp_ele;
// sparse_bMat_ptr->display();
// rMessage("m = " << m);
// rMessage("NonZeroCount = " << sparse_bMat_ptr->NonZeroCount);
// No OUTPUTS for analysis
mumps_id.icntl[1-1] = -1;
mumps_id.icntl[2-1] = -1;
mumps_id.icntl[3-1] = -1;
mumps_id.icntl[4-1] = 0;
// strcpy(mumps_id.write_problem,"write_problem");
dmumps_c(&mumps_id);
double lower_nonzeros = (double)mumps_id.infog[20-1];
// if lower_nonzeros is greater than 1.0e+6,
// the value infog[20-1] is lower_nonzeros*(-1)/(1.0e+6).
// we need to adjust the value.
if (lower_nonzeros < 0) {
lower_nonzeros *= (-1.0e+6);
}
#if 0
rMessage("lower_nonzeros = " << lower_nonzeros);
rMessage("Schur density = " << lower_nonzeros/((m+1)*m/2)*100 << "%" );
#endif
if (mumps_id.infog[1-1] != 0) {
rError("MUMPS ERROR " << mumps_id.infog[1-1]);
}
return lower_nonzeros;
}
void Chordal::ordering_bMat(int m, int nBlock,
InputData& inputData,
FILE* Display, FILE* fpOut)
{
best = SELECT_MUMPS_BEST;
#if 0
if ((m <= m_threshold)||(nBlock <= b_threshold)) {
best = SELECT_DENSE;
return;
}
#else
if (m <= m_threshold) {
best = SELECT_DENSE;
return;
}
#endif
#if 1
for (int b=0; b<inputData.SDP_nBlock; b++){
if (inputData.SDP_nConstraint[b] > m * sqrt(aggregate_threshold)){
best = SELECT_DENSE;
return;
}
}
for (int b=0; b<inputData.LP_nBlock; b++){
if (inputData.LP_nConstraint[b] > m * sqrt(aggregate_threshold)){
best = SELECT_DENSE;
return;
}
}
#endif
makeGraph(inputData,m);
// Here, we initialize sparse_bMat
int NonZeroAggregate = sparse_bMat_ptr->NonZeroCount*2-m;
if (NonZeroAggregate > aggregate_threshold * (double)m * (double) m) {
best = SELECT_DENSE;
return;
}
double lowerExtended = analysisAndcountLowerNonZero(m);
double NonZeroExtended = lowerExtended*2 - m;
double overM2 = 1.0/((double)m*(double)m)*100.0;
#if PrintSparsity
/* print sparsity information */
if (Display) {
#if 0
fprintf(Display,"dense matrix :\t\t\t%14d elements\n", m*m);
fprintf(Display,"aggregate sparsity pattern :\t\t\t%14d elements\n",
NonZeroAggregate);
fprintf(Display,"extended sparsity pattern :\t\t\t%14d elements\n",
(int)NonZeroExtended);
fprintf(Display,"Schur density = %.8lf%%\n",
(double)NonZeroExtended*overM2);
fprintf(Display,"Fill in = %e%%\n",
(double)(NonZeroExtended-NonZeroAggregate)*overM2);
fprintf(Display, "Estimated FLOPs for elimation process = %e\n",
mumps_id.rinfog[1-1]);
fprintf(Display,
"Maximum Processor Memory Requirement = %d MB = %.2lf GB\n",
mumps_id.infog[16-1],(double)mumps_id.infog[16-1]/1024);
fprintf(Display,
"Total Processors Memory Requirement = %d MB = %.2lf GB\n",
mumps_id.infog[17-1],(double)mumps_id.infog[17-1]/1024);
#else
fprintf(Display, "Full Schur Elements %ld, %.2e\n",
(long int)((double)m*m),(double)m*m);
fprintf(Display, "Agg %d (%.2e%%)->Ext %d (%.2e%%)"
" [Fill %d (%.2e%%)]\n",
NonZeroAggregate,
(double)NonZeroAggregate*overM2,
(int)NonZeroExtended,
(double)NonZeroExtended*overM2,
(int)(NonZeroExtended-NonZeroAggregate),
(double)(NonZeroExtended-NonZeroAggregate)*overM2);
fprintf(Display, "Est FLOPs Elim = %.2e:",
mumps_id.rinfog[1-1]);
fprintf(Display,
"MaxMem = %dMB = %.2lfGB:",
mumps_id.infog[16-1],(double)mumps_id.infog[16-1]/1024);
fprintf(Display,
"TotMem = %dMB = %.2lfGB\n",
mumps_id.infog[17-1],(double)mumps_id.infog[17-1]/1024);
#endif
}
if (fpOut) {
#if 0
fprintf(fpOut,"dense matrix :\t\t\t%14d elements\n", m*m);
fprintf(fpOut,"aggregate sparsity pattern :\t\t\t%14d elements\n",
NonZeroAggregate);
fprintf(fpOut,"extended sparsity pattern :\t\t\t%14d elements\n",
(int)NonZeroExtended);
fprintf(fpOut,"Schur density = %.8lf%%\n",
(double)NonZeroExtended*overM2);
fprintf(fpOut,"Fill in = %e%%\n",
(double)(NonZeroExtended-NonZeroAggregate)*overM2);
fprintf(fpOut, "Estimated FLOPS for elimation process = %e\n",
mumps_id.rinfog[1-1]);
fprintf(fpOut,
"Maximum Processor Memory Requirement = %d MB = %.2lf GB\n",
mumps_id.infog[16-1],(double)mumps_id.infog[16-1]/1024);
fprintf(fpOut,
"Total Processors Memory Requirement = %d MB = %.2lf GB\n",
mumps_id.infog[17-1],(double)mumps_id.infog[17-1]/1024);
#else
fprintf(fpOut, "Full Schur Elements Number %ld, %.2e\n",
(long int)((double)m*m),(double)m*m);
fprintf(fpOut, "Agg %d (%.2e%%)->Ext %d (%.2e%%)"
" [Fill %d (%.2e%%)]\n",
NonZeroAggregate,
(double)NonZeroAggregate*overM2,
(int)NonZeroExtended,
(double)NonZeroExtended*overM2,
(int)(NonZeroExtended-NonZeroAggregate),
(double)(NonZeroExtended-NonZeroAggregate)*overM2);
fprintf(fpOut, "Est FLOPs Elim = %.2e:",
mumps_id.rinfog[1-1]);
fprintf(fpOut,
"MaxMem = %dMB = %.2lfGB:",
mumps_id.infog[16-1],(double)mumps_id.infog[16-1]/1024);
fprintf(fpOut,
"TotMem = %dMB = %.2lfGB\n",
mumps_id.infog[17-1],(double)mumps_id.infog[17-1]/1024);
#endif
}
#endif
if (NonZeroExtended > extend_threshold * m * m){
best = SELECT_DENSE;
}
double sparse_cost = mumps_id.rinfog[1-1] * 1.15;
double dense_cost = 1.0/3.0 * (double)m * (double)m * (double) m;
double sd_ratio = 0.85;
// The ratio of (dense/sparse)
// estimated by BbRosenB10.dat-s
#if 0
rMessage("sparse_cost = " << sparse_cost
<< " : dense_cost = " << dense_cost
<< " : dense_cost * sd_ratio = "
<< (dense_cost * sd_ratio));
#endif
#if !FORCE_SCHUR_SPARSE
if (sparse_cost > dense_cost * sd_ratio) {
best = SELECT_DENSE;
}
#endif
}
bool Chordal::factorizeSchur(int m, int* diagonalIndex,
FILE* Display, FILE* fpOut)
{
// I need to adjust Schur before factorization
// to loose Numerical Error Condition
double adjustSize = PLUS_ADJUST_DIAGONAL;
for (int i=0; i<m; ++i) {
sparse_bMat_ptr->sp_ele[diagonalIndex[i]] += adjustSize;
}
mumps_id.job = MUMPS_JOB_FACTORIZE;
mumps_id.a = sparse_bMat_ptr->sp_ele;
dmumps_c(&mumps_id);
bool isSuccess = SDPA_SUCCESS;
while (mumps_id.infog[1-1] == -9) {
#if 0
rMessage("mumps icntl(14) = " << mumps_id.icntl[14-1]);
rMessage("mumps icntl(23) = " << mumps_id.icntl[23-1]);
#endif
if (Display) {
fprintf(Display,"MUMPS needs more memory space. Trying ANALYSIS phase once more\n");
}
if (fpOut) {
fprintf(fpOut, "MUMPS needs more memory space. Trying ANALYSIS phase once more\n");
}
mumps_id.icntl[14-1] += 20; // More 20% working memory space
analysisAndcountLowerNonZero(m);
mumps_id.job = MUMPS_JOB_FACTORIZE;
dmumps_c(&mumps_id);
}
if (mumps_id.infog[1-1] < 0) {
isSuccess = SDPA_FAILURE;
if (mumps_id.infog[1-1] == -10) {
rMessage("Cholesky failed by NUMERICAL ERROR");
rMessage("There are some possibilities.");
rMessage("1. SDPA finalizes due to inaccuracy of numerical error");
rMessage("2. The input problem may not have (any) interior-points");
rMessage("3. Input matrices are linearly dependent");
}
else {
rMessage("Cholesky failed with Error Code "
<< mumps_id.infog[1-1]);
}
}
return isSuccess;
}
bool Chordal::solveSchur(Vector& rhs)
{
mumps_id.job = MUMPS_JOB_SOLVE;
mumps_id.rhs = rhs.ele;
dmumps_c(&mumps_id);
return SDPA_SUCCESS;
}
} // end of namespace 'sdpa'
+84
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@@ -0,0 +1,84 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*-----------------------------------------
sdpa_chordal.h
-----------------------------------------*/
#ifndef __sdpa_chordal_h__
#define __sdpa_chordal_h__
#include "sdpa_dataset.h"
#include <dmumps_c.h>
#define SELECT_MUMPS_BEST 7 // MUMPS selects automatically when 7
#define SELECT_DENSE -1 // This value must be minus
namespace sdpa {
class Chordal {
public:
// condition of sparse computation
// m_threshold < mDim,
// b_threshold < nBlock,
// aggregate_threshold >= aggrigated sparsity ratio
// extend_threshold >= extended sparsity ratio
int m_threshold;
int b_threshold;
double aggregate_threshold;
double extend_threshold;
int best;
/* indicates the used ordering method */
/* -1: dense computation */
/* 7: sparse computation by MUMPS */
SparseMatrix* sparse_bMat_ptr;
DMUMPS_STRUC_C mumps_id;
bool mumps_usage;
Chordal(void);
~Chordal();
void initialize(SparseMatrix* sparse_bMat_ptr);
void finalize();
// merge array1 to array2
void mergeArray(int na1, int* array1, int na2, int* array2);
void catArray(int na1, int* array1, int na2, int* array2);
void slimArray(int i, int length, int* array, int& slimedLength);
void makeGraph(InputData& inputData, int m);
void ordering_bMat(int m, int nBlock,
InputData& inputData, FILE* Display,
FILE* fpOut);
double analysisAndcountLowerNonZero(int m);
bool factorizeSchur(int m, int* diagonalIndex,
FILE* Display, FILE* fpOut);
bool solveSchur(Vector& rhs);
};
} // end of namespace 'sdpa'
#endif // __sdpa_chordal_h__
+557
View File
@@ -0,0 +1,557 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#include "sdpa_dataset.h"
#include "sdpa_parts.h"
#include "sdpa_linear.h"
#include "sdpa_newton.h"
namespace sdpa {
Solutions::Solutions()
{
initialize();
}
Solutions::~Solutions()
{
finalize();
}
void Solutions::initialize()
{
nDim = 0;
mDim = 0;
}
void Solutions::initialize(int m, BlockStruct& bs)
{
mDim = m;
nDim = 0;
for (int l=0; l<bs.SDP_nBlock; ++l) {
nDim += bs.SDP_blockStruct[l];
}
nDim += bs.LP_nBlock;
order.initialize(bs.SDP_nBlock, bs.SDP_blockStruct);
cholmodSpace.initialize(bs.LP_nBlock, bs.SDP_nBlock);
// Do not initialize finalX & finalZ here.
// They will be initialized in makeFinalSolution.
}
void Solutions::makeCliques(BlockStruct& bs, InputData& inputData)
{
cholmodSpace.makeAggregate(mDim, bs.SDP_nBlock, bs.SDP_blockStruct,
inputData.C, inputData.A);
cholmodSpace.analyze();
order.extractCliques(cholmodSpace);
cholmodSpace.initializeClique(mDim, order);
#if 0
rMessage("order = ");
order.display();
rMessage("cholmodSpace = ");
cholmodSpace.display();
#endif
}
void Solutions::setInitialPoint(BlockStruct&bs, double lambda)
{
cholmodSpace.setXIdentity(lambda);
cholmodSpace.yVec.setZero();
cholmodSpace.setZIdentity(lambda);
}
void Solutions::finalize()
{
cholmodSpace.finalize();
order.finalize();
finalX.finalize();
finalZ.finalize();
nDim = 0;
mDim = 0;
}
bool Solutions::update(StepLength& alpha,
ComputeTime& com)
{
bool total_judge = SDPA_SUCCESS;
double primal = alpha.primal;
double dual = alpha.dual;
TimeStart(START1_1);
for (int l=0; l<cholmodSpace.LP_nBlock; ++l) {
cholmodSpace.LP_X[l] += cholmodSpace.LP_dX[l]*primal;
}
for (int l=0; l<cholmodSpace.SDP_nBlock; ++l) {
CliqueMatrix& clique_xMat = cholmodSpace.SDP_block[l].clique_xMat;
CliqueMatrix& clique_dX = cholmodSpace.SDP_block[l].clique_dX;
for (int l2=0; l2<clique_xMat.nBlock; ++l2) {
DenseMatrix& xMat = clique_xMat.ele[l2];
DenseMatrix& DxMat = clique_dX.ele[l2];
Lal::let(xMat,'=',xMat,'+',DxMat, &primal);
}
}
TimeEnd(END1_1);
com.xMatTime += TimeCal(START1_1,END1_1);
Lal::let(cholmodSpace.yVec,'=',cholmodSpace.yVec,
'+',cholmodSpace.dyVec,&dual);
TimeStart(START1_2);
for (int l=0; l<cholmodSpace.LP_nBlock; ++l) {
cholmodSpace.LP_Z[l] += cholmodSpace.LP_dZ[l]*dual;
}
for (int l=0; l<cholmodSpace.SDP_nBlock; ++l) {
cholmod_sparse* Z = cholmodSpace.SDP_block[l].Z;
cholmod_sparse* dZ = cholmodSpace.SDP_block[l].dZ;
int NNZ_Z = cholmodSpace.SDP_block[l].NNZ_Z;
double* Zele = (double*)(Z->x);
double* dZele = (double*)(dZ->x);
for (int index1=0; index1 < NNZ_Z; ++index1) {
Zele[index1] += dZele[index1]*dual;
}
}
TimeEnd(END1_2);
com.zMatTime += TimeCal(START1_2,END1_2);
const double cannot_move = 1.0e-4;
if (alpha.primal < cannot_move && alpha.dual < cannot_move) {
rMessage("Step length is too small. ");
return SDPA_FAILURE;
}
return total_judge;
}
void Solutions::display(FILE* fpout, char* printFormat)
{
if (fpout == NULL) {
return;
}
rMessage("Solutions @ start @@@@@@@@@@@@@@@@@@@@@@");
fprintf(fpout, "cholmodSpace =========> \n");
cholmodSpace.display(fpout, printFormat);
fprintf(fpout, "order =========> \n");
order.display(fpout, printFormat);
rMessage("Solutions @ end @@@@@@@@@@@@@@@@@@@@@@");
}
void Solutions::makeFinalSolution(bool Xmake, bool Zmake,
BlockStruct& bs)
{
if (Xmake == true) {
cholmodSpace.getCholesky(order);
finalX.initialize(bs);
for (int l=0; l<cholmodSpace.LP_nBlock; ++l) {
finalX.LP_block[l] = cholmodSpace.LP_X[l];
}
for (int l=0; l<cholmodSpace.SDP_nBlock; ++l) {
CholmodMatrix& cholmodMatrix = cholmodSpace.SDP_block[l];
// rMessage("cholmodMatrix = "); cholmodMatrix.display();
DenseMatrix& targetMatrix = finalX.SDP_block[l];
const int nDim = cholmodMatrix.nDim;
for (int j=0; j<nDim; ++j) {
// rMessage("j = " << j) ;
cholmodMatrix.setB_Xzero();
double* b_x = (double*)(cholmodMatrix.b_x->x);
b_x[j] = 1.0;
cholmodMatrix.solveByX();
double* x_x = (double*)(cholmodMatrix.x_x->x);
// rMessage("b = "); CholmodMatrix::display_dense(cholmodMatrix.b_x);
// rMessage("x = "); CholmodMatrix::display_dense(cholmodMatrix.x_x);
for (int i=0; i<nDim; ++i) {
targetMatrix.de_ele[i+j*nDim] = x_x[i];
#if 0
rMessage("i = "<< i << " : j = " << j
<< " : pos = " << (i+j*nDim));
rMessage("finalXin = "); targetMatrix.display();
#endif
}
}
// rMessage("finalX = "); targetMatrix.display();
}
}
if (Zmake == true) {
finalZ.initialize(bs);
for (int l=0; l<cholmodSpace.LP_nBlock; ++l) {
finalZ.LP_block[l] = cholmodSpace.LP_Z[l];
}
for (int l=0; l<cholmodSpace.SDP_nBlock; ++l) {
CholmodMatrix& cholmodMatrix = cholmodSpace.SDP_block[l];
cholmod_sparse* Z = cholmodMatrix.Z;
DenseMatrix& targetMatrix = finalZ.SDP_block[l];
targetMatrix.setZero();
const int ncol = (int) Z->ncol;
for (int j=0; j < ncol; ++j) {
const int start_row = ((int*)Z->p)[j];
const int end_row = ((int*)Z->p)[j+1];
for (int i_index = start_row; i_index < end_row; ++i_index) {
const int i = (( int*)Z->i)[i_index];
const double value = ((double*)Z->x)[i_index];
targetMatrix.de_ele[i+j*ncol] = value;
targetMatrix.de_ele[j+i*ncol] = value;
}
}
}
}
}
InputData::InputData()
{
A = NULL;
SDP_nBlock = 0;
SDP_nConstraint = NULL;
SDP_constraint = NULL;
SDP_blockIndex = NULL;
SDP_nBlock = 0;
LP_nConstraint = NULL;
LP_constraint = NULL;
LP_blockIndex = NULL;
}
InputData::~InputData()
{
finalize();
}
void InputData::initialize(int m, BlockStruct& bs)
{
SDP_nBlock = bs.SDP_nBlock;
LP_nBlock = bs.LP_nBlock;
initialize_bVec(m);
C.initialize();
C.initializeInputVector();
NewArray(A, CompSpace, m);
for (int k=0; k<m; ++k) {
A[k].initialize();
A[k].initializeInputVector();
}
}
void InputData::initialize_bVec(int m)
{
b.initialize(m);
}
void InputData::finalize()
{
C.finalize();
if (A){
for (int k=0; k<b.nDim; ++k) {
A[k].finalize();
}
DeleteArray(A);
}
b.finalize();
DeleteArray(SDP_nConstraint);
if (SDP_constraint) {
for (int k=0; k<SDP_nBlock; ++k) {
DeleteArray(SDP_constraint[k]);
}
DeleteArray(SDP_constraint);
}
if (SDP_blockIndex) {
for (int k=0; k<SDP_nBlock; ++k) {
DeleteArray(SDP_blockIndex[k]);
}
DeleteArray(SDP_blockIndex);
}
if (LP_nConstraint && LP_constraint && LP_blockIndex){
for (int k=0; k<LP_nBlock; ++k) {
DeleteArray(LP_constraint[k]);
DeleteArray(LP_blockIndex[k]);
}
DeleteArray(LP_nConstraint);
DeleteArray(LP_constraint);
DeleteArray(LP_blockIndex);
}
}
void InputData::initialize_index_SDP()
{
int mDim = b.nDim;
int index;
int* SDP_count;
NewArray(SDP_nConstraint,int,SDP_nBlock);
// count non-zero block matrix of A
for (int l=0; l<SDP_nBlock; l++){
SDP_nConstraint[l] = 0;
}
for (int k=0; k<mDim; k++){
for (int l=0; l<A[k].SDP_sp_nBlock; l++){
index = A[k].SDP_sp_index[l];
SDP_nConstraint[index]++;
}
}
// malloc SDP_constraint, SDP_blockIndex
NewArray(SDP_constraint,int*,SDP_nBlock);
for (int l=0; l<SDP_nBlock; l++){
NewArray(SDP_constraint[l],int,SDP_nConstraint[l]);
}
NewArray(SDP_blockIndex,int*,SDP_nBlock);
for (int l=0; l<SDP_nBlock; l++){
NewArray(SDP_blockIndex[l],int,SDP_nConstraint[l]);
}
// input index of non-zero block matrix of A
NewArray(SDP_count,int,SDP_nBlock);
for (int l=0; l<SDP_nBlock; l++){
SDP_count[l] = 0;
}
for (int k=0; k<mDim; k++){
for (int l=0; l<A[k].SDP_sp_nBlock; l++){
index = A[k].SDP_sp_index[l];
SDP_constraint[index][SDP_count[index]] = k;
SDP_blockIndex[index][SDP_count[index]] = l;
SDP_count[index]++;
}
}
DeleteArray(SDP_count);
}
void InputData::initialize_index_LP()
{
int mDim = b.nDim;
int index;
int* LP_count;
NewArray(LP_nConstraint,int,LP_nBlock);
// count non-zero block matrix of A
for (int l=0; l<LP_nBlock; l++){
LP_nConstraint[l] = 0;
}
for (int k=0; k<mDim; k++){
for (int l=0; l<A[k].LP_sp_nBlock; l++){
index = A[k].LP_sp_index[l];
LP_nConstraint[index]++;
}
}
// malloc LP_constraint, LP_blockIndex
NewArray(LP_constraint,int*,LP_nBlock);
for (int l=0; l<LP_nBlock; l++){
NewArray(LP_constraint[l],int,LP_nConstraint[l]);
}
NewArray(LP_blockIndex,int*,LP_nBlock);
for (int l=0; l<LP_nBlock; l++){
NewArray(LP_blockIndex[l],int,LP_nConstraint[l]);
}
// input index of non-zero block matrix of A
NewArray(LP_count,int,LP_nBlock);
for (int l=0; l<LP_nBlock; l++){
LP_count[l] = 0;
}
for (int k=0; k<mDim; k++){
for (int l=0; l<A[k].LP_sp_nBlock; l++){
index = A[k].LP_sp_index[l];
LP_constraint[index][LP_count[index]] = k;
LP_blockIndex[index][LP_count[index]] = l;
LP_count[index]++;
}
}
DeleteArray(LP_count);
}
void InputData::initialize_index()
{
initialize_index_SDP();
// initialize_index_SOCP();
if (LP_nBlock > 0) {
initialize_index_LP();
}
}
void InputData::assignAgg(CholmodSpace& cholmodSpace)
{
for (int l_index = 0; l_index < C.SDP_sp_nBlock; ++l_index) {
const int l = C.SDP_sp_index[l_index];
CompMatrix& Cl = C.SDP_sp_block[l_index];
Cl.assignAgg(cholmodSpace.SDP_block[l]);
}
const int m = b.nDim;
for (int k=0; k<m; ++k) {
for (int l_index = 0; l_index < A[k].SDP_sp_nBlock; ++l_index) {
const int l = A[k].SDP_sp_index[l_index];
CompMatrix& Akl = A[k].SDP_sp_block[l_index];
Akl.assignAgg(cholmodSpace.SDP_block[l]);
}
}
}
void InputData::assignBlockIndex(OrderingSpace& order)
{
for (int l_index = 0; l_index < C.SDP_sp_nBlock; ++l_index) {
const int l = C.SDP_sp_index[l_index];
CompMatrix& Cl = C.SDP_sp_block[l_index];
Cl.assignBlockIndex(order.SDP_block[l]);
}
const int m = b.nDim;
for (int k=0; k<m; ++k) {
for (int l_index = 0; l_index < A[k].SDP_sp_nBlock; ++l_index) {
const int l = A[k].SDP_sp_index[l_index];
CompMatrix& Akl = A[k].SDP_sp_block[l_index];
Akl.assignBlockIndex(order.SDP_block[l]);
}
}
}
void InputData::display(FILE* fpout)
{
if (fpout == NULL) {
return;
}
fprintf(fpout,"b = \n");
b.display(fpout);
fprintf(fpout,"C = \n");
C.display(fpout);
for (int k=0; k<b.nDim; k++){
fprintf(fpout,"A[%d] = \n",k);
A[k].display(fpout);
}
}
void InputData::display_index(FILE* fpout)
{
if (fpout == NULL) {
return;
}
fprintf(fpout, "display_index: LP:%d SDP:%d\n", LP_nBlock, SDP_nBlock);
for (int l=0; l<LP_nBlock; l++){
fprintf(fpout, "LP:%dth block\n",l);
for (int k=0; k<LP_nConstraint[l]; k++){
fprintf(fpout, "A[k=%d][l=%d], that is, constraint:%d block:%d \n",
LP_constraint[l][k],LP_blockIndex[l][k],
LP_constraint[l][k],LP_blockIndex[l][k]);
}
}
for (int l=0; l<SDP_nBlock; l++){
fprintf(fpout, "SDP:%dth block\n",l);
for (int k=0; k<SDP_nConstraint[l]; k++){
fprintf(fpout, "A[k=%d][l=%d], that is, constraint:%d block:%d \n",
SDP_constraint[l][k],SDP_blockIndex[l][k],
SDP_constraint[l][k],SDP_blockIndex[l][k]);
}
}
}
Residuals::Residuals()
{
initialize();
}
Residuals::~Residuals()
{
finalize();
}
void Residuals::initialize()
{
initNormPrimal = 0.0;
initNormDual = 0.0;
normPrimal = 0.0;
normDual = 0.0;
centerNorm = 0.0;
}
void Residuals::finalize()
{
initialize();
}
double Residuals::computeMaxNorm(Vector& primalVec)
{
double ret = 0.0;
for (int k=0; k<primalVec.nDim; ++k) {
double tmp = fabs(primalVec.ele[k]);
if (tmp > ret) {
ret = tmp;
}
}
return ret;
}
double Residuals::computeMaxNorm(cholmod_sparse* rD)
{
double ret = 0.0;
for (int index1=0; index1<rD->nzmax; ++index1) {
const double tmp = fabs(((double*)rD->x)[index1]);
if (tmp > ret) {
ret = tmp;
}
}
return ret;
}
void Residuals::update(CholmodSpace& cholmodSpace)
{
// p[k] = b[k] - A[k].X;
normPrimal = computeMaxNorm(cholmodSpace.rp);
double tmpNorm = 0.0;
for (int l = 0; l < cholmodSpace.LP_nBlock; ++l) {
double tmp2 = fabs(cholmodSpace.LP_rD[l]);
if (tmp2 > tmpNorm) {
tmpNorm = tmp2;
}
}
for (int l = 0; l < cholmodSpace.SDP_nBlock; ++l) {
double tmp2 = computeMaxNorm(cholmodSpace.SDP_block[l].rD);
if (tmp2 > tmpNorm) {
tmpNorm = tmp2;
}
}
normDual = tmpNorm;
}
void Residuals::copyToInit()
{
initNormPrimal = normPrimal;
initNormDual = normDual;
centerNorm = 0.0;
}
void Residuals::display(FILE* fpout)
{
if (fpout == NULL) {
return;
}
fprintf(fpout," initial.normPrimal = %8.3e\n",
initNormPrimal);
fprintf(fpout," initial.normDual = %8.3e\n",
initNormDual);
fprintf(fpout," currentRes.normPrimal = %8.3e\n",
normPrimal);
fprintf(fpout," currentRes.normDual = %8.3e\n",
normDual);
}
} // end of namespace 'sdpa'
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#ifndef __sdpa_detaset_h__
#define __sdpa_detaset_h__
#include "sdpa_include.h"
#include "sdpa_struct.h"
namespace sdpa {
class Newton;
class Solutions;
class InputData;
class Residuals;
class ComputeTime;
class Parameter;
class StepLength;
class DirectionParameter;
class Switch;
class RatioInitResCurrentRes;
class SolveInfo;
class Phase;
class AverageComplementarity;
class Solutions
{
public:
int nDim;
int mDim;
CholmodSpace cholmodSpace;
OrderingSpace order;
DenseLinearSpace finalX;
DenseLinearSpace finalZ;
Solutions();
~Solutions();
void initialize();
void initialize(int m, BlockStruct& bs);
void finalize();
void makeCliques(BlockStruct& bs, InputData& inputData);
void setInitialPoint(BlockStruct&bs, double lambda);
bool update(StepLength& alpha, ComputeTime& com);
void display(FILE* fpout=stdout, char* printFormat = P_FORMAT);
void makeFinalSolution(bool Xmake, bool Zmake,
BlockStruct& bs);
};
class InputData
{
public:
Vector b;
CompSpace C;
CompSpace* A;
// nBLock : number of block
// nConstraint[k]: number of nonzero matrix in k-th block
// When A[i].block[k] is nonzero matrix, for t,
// i <-> constraint[k][t]
// A[i].block[k] <-> A[i].sp_block[blockIndex[k][t]]
int SDP_nBlock; int* SDP_nConstraint;
int** SDP_constraint; int** SDP_blockIndex;
int LP_nBlock; int* LP_nConstraint;
int** LP_constraint; int** LP_blockIndex;
InputData();
~InputData();
void initialize(int m, BlockStruct& bs);
void finalize();
void initialize_bVec(int m);
void initialize_index_SDP();
void initialize_index_LP();
void initialize_index();
void assignAgg(CholmodSpace& cholmodSpace);
void assignBlockIndex(OrderingSpace& order);
void display(FILE* fpout=stdout);
void display_index(FILE* fpout=stdout);
};
class Residuals
{
public:
double initNormPrimal;
double initNormDual;
double normPrimal;
double normDual;
double centerNorm;
Residuals();
~Residuals();
void initialize();
void finalize();
static double computeMaxNorm(Vector& primalVec);
static double computeMaxNorm(cholmod_sparse* rD);
void update(CholmodSpace& cholmodSpace);
void copyToInit();
void display(FILE* fpout = stdout);
};
} // end of namespace 'sdpa'
#endif // __sdpa_dataset_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*-----------------------------------------------
rsdpa_dpotrf.cpp
modification of ATL_dpotrfL
for dealing with numerical error
in diagonal elements.
int rATL_dpotrfL(int N, double *A,int lda)
modified by Makoto Yamshita 2002.07.11
-----------------------------------------------*/
#define POTRF_NONZERO (1.0e-14)
#define POTRF_ASSIGN (1.0e+100)
#define POTRF_LIMIT (-1.0e-6)
/*
* Automatically Tuned Linear Algebra Software v3.4.0
* (C) Copyright 1999 R. Clint Whaley
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions
* are met:
* 1. Redistributions of source code must retain the above copyright
* notice, this list of conditions and the following disclaimer.
* 2. Redistributions in binary form must reproduce the above copyright
* notice, this list of conditions, and the following disclaimer in the
* documentation and/or other materials provided with the distribution.
* 3. The name of the ATLAS group or the names of its contributers may
* not be used to endorse or promote products derived from this
* software without specific written permission.
*
* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
* ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
* TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
* PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE ATLAS GROUP OR ITS CONTRIBUTORS
* BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
* CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
* SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
* INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
* CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
* ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
* POSSIBILITY OF SUCH DAMAGE.
*
*/
#include "sdpa_include.h"
#include "sdpa_algebra.h"
#if 0
#define CHOLESKY_ADJUST(val) rMessage("Choleksy adjust from " << val << " to " << POTRF_NONZERO);
#else
#define CHOLESKY_ADJUST(val) ;
#endif
namespace sdpa {
extern "C" {
static int potrf4(double* A,const int n)
{
double* A1 = A+n+1;
double* A2 = A1+n+1;
double* A3 = A2+n+1;
double L11 = *A;
double L21 = A[1], L22 = *A1;
double L31 = A[2], L32 = A1[1], L33 = *A2;
double L41 = A[3], L42 = A1[2], L43 = A2[1], L44 = *A3;
if (L11 < POTRF_LIMIT) {
return 1;
}
if (L11 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L11);
L11 = POTRF_ASSIGN;
}
*A = L11 = sqrt(L11);
L11 = 1.0/L11;
L21 *= L11;
L31 *= L11;
L41 *= L11;
L22 -= L21*L21;
if (L22 < POTRF_LIMIT) {
return 2;
}
if (L22 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L22);
L22 = POTRF_ASSIGN;
}
*A1 = L22 = sqrt(L22);
L22 = 1.0/L22;
L32 = (L32 - L31*L21)*L22;
L42 = (L42 - L41*L21)*L22;
L33 -= L31*L31 + L32*L32;
if (L33 < POTRF_LIMIT) {
return 3;
}
if (L33 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L33);
L33 = POTRF_ASSIGN;
}
*A2 = L33 = sqrt(L33);
L43 = (L43-L41*L31-L42*L32)/L33;
L44 -= L41*L41 + L42*L42 + L43*L43;
if (L44 < POTRF_LIMIT) {
return 4;
}
if (L44 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L44);
L44 = POTRF_ASSIGN;
}
*A3 = sqrt(L44);
A[1] = L21;
A[2] = L31; A1[1] = L32;
A[3] = L41; A1[2] = L42; A2[1] = L43;
return 0;
}
static int potrf3(double* A,const int n)
{
double* A1 = A+n+1;
double* A2 = A1+n+1;
double L11 = *A;
double L21 = A[1], L22 = *A1;
double L31 = A[2], L32 = A1[1], L33 = *A2;
if (L11 < POTRF_LIMIT) {
return 1;
}
if (L11 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L11);
L11 = POTRF_ASSIGN;
}
*A = L11 = sqrt(L11);
L11 = 1.0/L11;
L21 *= L11;
L31 *= L11;
L22 -= L21*L21;
if (L22 < POTRF_LIMIT) {
return 2;
}
if (L22 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L22);
L22 = POTRF_ASSIGN;
}
L22 = sqrt(L22);
L32 = (L32 - L31*L21)/L22;
L33 -= L31*L31 + L32*L32;
if (L33 < POTRF_LIMIT) {
return 3;
}
if (L33 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L33);
L33 = POTRF_ASSIGN;
}
*A2 = sqrt(L33);
A[1] = L21; *A1 = L22;
A[2] = L31; A1[1] = L32;
return 0;
}
static int potrf2(double* A,const int n)
{
double* A1 = A+n+1;
double L11 = *A;
double L21 = A[1], L22 = *A1;
if (L11 < POTRF_LIMIT) {
return 1;
}
if (L11 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L11);
L11 = POTRF_ASSIGN;
}
*A = L11 = sqrt(L11);
L21 /= L11;
L22 -= L21*L21;
if (L22 < POTRF_LIMIT) {
return 2;
}
if (L22 < POTRF_NONZERO) {
CHOLESKY_ADJUST(L22);
L22 = POTRF_ASSIGN;
}
*A = L11;
A[1] = L21; *A1 = sqrt(L22);
return 0;
}
int rATL_dpotrfL(int N, double *A,int lda)
{
double *An, *Ar;
int Nleft, Nright, ierr;
if (N > 4) {
Nleft = N >> 1;
#if 0
int nb = ilaenv_fc(&IONE, "DPOTRF", "L", &N,
&IMONE,&IONE, &IMONE, strlen("DPOTRF"), strlen("L"));
if (Nleft > nb<<1) Nleft = (Nleft/nb)*nb;
#endif
#if 0
if (Nleft > 64) {
Nleft = 64;
}
#endif
Nright = N - Nleft;
ierr = rATL_dpotrfL(Nleft, A,lda);
if (!ierr) {
Ar = A + Nleft;
An = Ar + lda * Nleft;
dtrsm_fc ((char *)"R",(char *)"L",(char *)"T",(char *)"N",
&Nright,&Nleft,&DONE,A,&lda,
Ar, &lda, strlen("R"),strlen("L"),
strlen("T"),strlen("N"));
dsyrk_fc ((char *)"L",(char *)"N",&Nright,&Nleft,&DMONE,
Ar, &lda, &DONE,An,&lda,strlen("L"),strlen("N"));
ierr = rATL_dpotrfL(Nright, An,lda);
if (ierr) return(ierr+Nleft);
}
else return(ierr);
}
else if (N==4) return(potrf4(A,lda));
else if (N==3) return(potrf3(A,lda));
else if (N==2) return(potrf2(A,lda));
else if (N==1) {
if (*A < POTRF_LIMIT) {
return 1;
}
if (*A < POTRF_NONZERO) {
CHOLESKY_ADJUST(*A);
*A = POTRF_ASSIGN;
}
*A = sqrt(*A);
}
return(0);
}
void rdpotrfl_(int* N, double *A,int* lda,int* info)
{
*info = rATL_dpotrfL(*N,A,*lda);
}
}; // end of extern "C"
} // end of namespace 'sdpa'
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*-----------------------------------------------
rsdpa_dpotrf.cpp
modification of ATL_dpotrfL
int rATL_dpotrfL(int N, double *A,int lda)
$Id: rsdpa_dpotrf.h,v 1.2 2004/09/01 06:34:12 makoto Exp $
-----------------------------------------------*/
#ifndef __sdpa_dpotrf_h__
#define __sdpa_dpotrf_h__
namespace sdpa {
#ifdef __cplusplus
extern "C" int rATL_dpotrfL(int N, double *A,int lda);
#else
extern int rATL_dpotrfL(int N, double *A,int lda);
#endif
} // end of namespace 'sdpa'
#endif // __sdpa_dpotrf_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#include <cstdio>
#include <cstdlib>
#include <sdpa_call.h>
using namespace sdpa;
#define USER_PARAMETER_FILE ((char *)"./param.sdpaC")
#define DEFAULT_PARAMETER_FILE ((char *)"/usr/share/sdpa/param.sdpaC")
// PARAMETER_FILE is decided by the following priority
// 1: The file assigned by '-p' option of 'option type 2'.
// For 'option type1', this is skipped.
// 2: USER_PARAMETER_FILE
// For 'option type2', this is skipped.
// 3: DEFAULT_PARAMETER_FILE
// 4: Default parameter
static void message(char* argv0)
{
cout << endl;
cout << "*** Please assign data file and output file.***" << endl;
cout << endl;
cout << "---- option type 1 ------------" << endl;
cout << argv0 <<" SparseDataFile OutputFile"
" [-pt parameters] [-dimacs] [-numThreads numThreads]"<< endl;
cout << "parameters = 0 default, 1 fast (unstable),"
" 2 slow (stable)" << endl;
cout << " -dimacs : printout dimacs information incurring additional computation cost " << endl;
cout << " -numThreads: Number of pthreads for internal computation" << endl;
cout << "example1-1: " << argv0
<< " example1.dat-s example1.result" << endl;
cout << "example1-2: " << argv0
<< " example1.dat-s example1.result -pt 2" << endl;
cout << "example1-3: " << argv0
<< " example1.dat-s example1.result -dimacs" << endl;
cout << "example1-4: " << argv0
<< " example1.dat-s example1.result -numThreads 4" << endl;
cout << endl;
cout << "---- option type 2 ------------" << endl;
cout << argv0 << " [option filename]+ " << endl;
cout << " -ds : data sparse " << endl;
cout << " -o : output :: -p : parameter " << endl;
cout << " -pt : parameters , 0 default, 1 fast (unstable)" << endl;
cout << " 2 slow (stable) " << endl;
cout << " -dimacs : printout dimacs information incurring additional computation cost " << endl;
cout << " -numThreads: Number of pthreads for internal computation" << endl;
cout << "example2-1: " << argv0
<< " -ds example1.dat-s -o example1.result "
<< "-p param.sdpaC" << endl;
cout << "example2-2: " << argv0
<< " -ds example1.dat-s -o example1.result "
<< "-pt 2" << endl;
cout << "example2-3: " << argv0
<< " -ds example1.dat-s -o example1.result "
<< "-dimacs" << endl;
cout << "example2-4: " << argv0
<< " -ds example1.dat-s -o example1.result "
<< "-numThreads 4" << endl;
cout << endl;
cout << "---- option type 3 ------------" << endl;
cout << argv0 << " --version " << endl;
cout << " to print out version and exit." << endl;
cout << endl << endl;
cout << "PARAMETER_FILE is decided by the following priority" << endl;
cout << " 1: The file assigned by '-p' option of 'option type 2'." << endl;
cout << " For 'option type1', this is skipped." << endl;
cout << " 2: " << USER_PARAMETER_FILE << endl;
cout << " For 'option type2', this is skipped." << endl;
cout << " 3: " << DEFAULT_PARAMETER_FILE << endl;
cout << " 4: Default parameter" << endl;
exit(1);
}
static void argumentAnalysis(SDPA& Problem1,
int argc, char** argv,
char*& inputFileName,
char*& resultFileName,
char*& paramFileName,
SDPA::ParameterType& parameterType,
bool& isDimacs, int& numThreads)
{
if (argc == 1) {
message(argv[0]);
}
if (strcmp(argv[1],"--version") == 0) {
fprintf(stdout,"====\n");
fprintf(stdout,"SDPA-C (SemiDefinite Programming Algorithm with Completion) %s\n",sdpa_version);
fprintf(stdout," %s\n",sdpa_right);
fprintf(stdout,"====\n");
exit(0);
}
if (argv[1][0] == '-') {
// rsdpa argument
for (int index = 0; index < argc; ++index) {
char* target = argv[index];
if (strcmp(target,"-dd")==0 && index+1 < argc) {
fprintf(stdout,"*** Dense Data is NOT supported ***\n");
inputFileName = argv[index+1];
inputFileName = NULL;
// isInputSparse = SDPA::DENSE;
index++;
continue;
}
if (strcmp(target,"-ds")==0 && index+1 < argc) {
inputFileName = argv[index+1];
// isInputSparse = SDPA::SPARSE;
continue;
}
if (strcmp(target,"-o")==0 && index+1 < argc) {
resultFileName = argv[index+1];
index++;
continue;
}
if (strcmp(target,"-p")==0 && index+1 < argc) {
paramFileName = argv[index+1];
index++;
continue;
}
if (strcmp(target,"-dimacs")==0) {
isDimacs = true;
continue;
}
if (strcmp(target,"-pt")==0 && index+1 < argc) {
int tmp = atoi(argv[index+1]);
switch (tmp) {
case 0:
parameterType = SDPA::PARAMETER_DEFAULT;
break;
case 1:
parameterType = SDPA::PARAMETER_UNSTABLE_BUT_FAST;
break;
case 2:
parameterType = SDPA::PARAMETER_STABLE_BUT_SLOW;
break;
default:
parameterType = SDPA::PARAMETER_DEFAULT;
}
index++;
paramFileName = NULL;
continue;
}
if (strcmp(target,"-numThreads")==0 && index+1 < argc) {
numThreads = atoi(argv[index+1]);
index++;
continue;
}
}
}
else { // SDPA argument
inputFileName = argv[1];
int len = strlen(inputFileName);
if (inputFileName[len-1] == 's'
&& inputFileName[len-2] == '-') {
}
else {
fprintf(stdout, "File may not be Sparse SDPA format. \n");
fprintf(stdout, "The file extension must be 'dat-s'. \n");
inputFileName = NULL;
}
resultFileName = argv[2];
paramFileName = USER_PARAMETER_FILE;
for (int index=3; index<argc; ++index) {
if (strcmp(argv[index],"-dimacs")==0) {
isDimacs = true;
}
else if (strcmp(argv[index],"-numThreads")==0 && index+1 < argc) {
numThreads = atoi(argv[index+1]);
++index;
}
else if (strcmp(argv[index],"-pt")==0 && index+1 < argc) {
int tmp = atoi(argv[index+1]);
switch (tmp) {
case 0:
parameterType = SDPA::PARAMETER_DEFAULT;
break;
case 1:
parameterType = SDPA::PARAMETER_UNSTABLE_BUT_FAST;
break;
case 2:
parameterType = SDPA::PARAMETER_STABLE_BUT_SLOW;
break;
default:
parameterType = SDPA::PARAMETER_DEFAULT;
}
index++;
paramFileName = NULL;
} // end of "-pt"
else {
#if 0 // NO initial point file
initFileName = argv[index];
int len = strlen(initFileName);
if (initFileName[len-1] == 's'
&& initFileName[len-2] == '-') {
isInitSparse = SDPA::SPARSE;
}
#endif
}
} // end of 'for'
}
if (paramFileName != NULL) {
// check the availability for paramFileName,
// usually USER_PARAMETER_FILE
FILE* fptmp = NULL;
if ((fptmp=fopen(paramFileName,"r"))==NULL) {
// we try DEFAULT_PARAMETER_FILE
if ((fptmp=fopen(DEFAULT_PARAMETER_FILE,"r"))==NULL) {
rMessage("Cannot Open user parameter File " << paramFileName
<< " and default parameter file " << DEFAULT_PARAMETER_FILE);
rMessage("Default parameter will be used.");
paramFileName = NULL;
}
else {
paramFileName = DEFAULT_PARAMETER_FILE;
}
}
if (fptmp != NULL) {
fclose(fptmp);
}
} // end of 'if (paramFileName != NULL)'
if (inputFileName == NULL || resultFileName == NULL) {
message(argv[0]);
}
}
int main(int argc, char** argv)
{
TimeStart(ALL_START1);
SDPA Problem1;
time_t ltime;
time(&ltime);
char string_time[1024];
strcpy(string_time,ctime(&ltime));
string_time[strlen(string_time)-1]='\0';
fprintf(stdout,"SDPA-C (Version %s) start at [%s]\n", sdpa_version, string_time);
// cout << "let me see your ..." << endl;
if (argc == 1) {
message(argv[0]);
}
char* inputFileName = NULL;
char* resultFileName = NULL;
char* paramFileName = NULL;
SDPA::SparseType isInputSparse = SDPA::SPARSE;
SDPA::ParameterType parameterType = SDPA::PARAMETER_DEFAULT;
bool isDimacs = false;
int numThreads = 0; // 0 means automatic computation
argumentAnalysis(Problem1, argc, argv,
inputFileName, resultFileName,
paramFileName, parameterType, isDimacs, numThreads);
Problem1.setDisplay(stdout);
FILE* fpresult;
if ((fpresult = fopen(resultFileName,"w")) == NULL) {
rError("Cannot Open Result File : " << resultFileName);
}
fprintf(fpresult,"SDPA-C start at [%s]\n",string_time);
Problem1.setResultFile(fpresult);
if (paramFileName == NULL) {
if (parameterType == SDPA::PARAMETER_DEFAULT) {
fprintf(stdout ,"set is DEFAULT\n");
fprintf(fpresult,"set is DEFAULT\n");
}
else if (parameterType == SDPA::PARAMETER_UNSTABLE_BUT_FAST) {
fprintf(stdout ,"set is UNSTABLE_BUT_FAST\n");
fprintf(fpresult,"set is UNSTABLE_BUT_FAST\n");
}
else if (parameterType == SDPA::PARAMETER_STABLE_BUT_SLOW) {
fprintf(stdout ,"set is STABLE_BUT_SLOW\n");
fprintf(fpresult,"set is STABLE_BUT_SLOW\n");
}
Problem1.setParameterType(parameterType);
}
if (paramFileName) {
fprintf(stdout ,"param is %s\n", paramFileName);
fprintf(fpresult,"param is %s\n", paramFileName);
Problem1.readParameter(paramFileName,fpresult);
}
if (isDimacs == true && Problem1.judgeDimacsAvailability()==false) {
rError("When XPrint or YPrint are " << NO_P_FORMAT
<< ", Dimacs information is not available");
}
fprintf(stdout ,"data is %s", inputFileName);
fprintf(stdout ," : sparse\n");
fprintf(fpresult,"data is %s", inputFileName);
fprintf(fpresult," : sparse\n");
Problem1.readInput(inputFileName, fpresult);
fprintf(stdout ,"out is %s\n", resultFileName);
fprintf(fpresult,"out is %s\n", resultFileName);
if (isDimacs) {
fprintf(stdout ,"Dimacs information will be computed after the iteration.\n");
fprintf(fpresult,"Dimacs information will be computed after the iteration.\n");
}
Problem1.setNumThreads(numThreads);
Problem1.initializeSolve();
Problem1.solve();
if (isDimacs) {
double dimacs_error[7];
fprintf(stdout, "Dimacs is under computation now.\n");
Problem1.getDimacsError(dimacs_error);
Problem1.printDimacsError(dimacs_error,
Problem1.getParameterPrintInformation(),
stdout);
Problem1.printDimacsError(dimacs_error,
Problem1.getParameterPrintInformation(),
fpresult);
}
Problem1.finalize();
time(&ltime);
strcpy(string_time,ctime(&ltime));
string_time[strlen(string_time)-1]='\0';
fprintf(stdout ,"SDPA-C end at [%s]\n",string_time);
fprintf(fpresult,"SDPA-C end at [%s]\n",string_time);
TimeEnd(ALL_END1);
double all_time = TimeCal(ALL_START1,ALL_END1);
fprintf(stdout ,"ALL TIME = %.6lf\n", all_time);
fprintf(fpresult,"ALL TIME = %.6lf\n", all_time);
fclose(fpresult);
return 0;
}
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*--------------------------------------------------
sdpa_include.h
--------------------------------------------------*/
#ifndef __sdpa_include_h__
#define __sdpa_include_h__
#include "sdpa_right.h"
#include <iostream>
#include <fstream>
#include <cstdio>
#include <cstdlib>
#include <cmath>
#include <cstring>
using namespace std;
#define SDPA_SUCCESS true
#define SDPA_FAILURE false
// for CHOLMOD routine
#define TRUE 1
#define FALSE 0
#include "sdpa_tool.h"
// #include "sdpa_algebra.h"
#endif // __sdpa_include_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#ifndef __sdpa_io_h__
#define __sdpa_io_h__
#define lengthOfString 256
#include "sdpa_block.h"
#include "sdpa_parts.h"
namespace sdpa {
class IO
{
public:
static void read(FILE* fpData, FILE* fpout, int& m, char* str);
static void read(FILE* fpData, int& nBlock);
static void read(FILE* fpData, BlockStruct& bs);
static void read(FILE* fpData, Vector& b);
static void read(FILE* fpData, DenseLinearSpace& xMat,
Vector& yVec, DenseLinearSpace& zMat,
BlockStruct& bs, bool inputSparse);
static void read(FILE* fpData, int m,
BlockStruct& bs,
InputData& inputData, bool isDataSparse);
static void read(FILE* fpData, int m,
BlockStruct& bs, InputData& inputData);
// read data is first introduced into this class
class LIJV
{
public:
int SDPl,LPl,i,j;
double value;
};
// 2008/02/27 kazuhide nakata
// without LP_ANonZeroCount
static void setBlockStruct(FILE* fpData, InputData& inputData,
int m, BlockStruct& bs,
long position, bool isDataSparse);
// 2008/02/27 kazuhide nakata
// without LP_ANonZeroCount
static void setElement(FILE* fpData, InputData& inputData, int m,
BlockStruct& bs,
long position, bool isDataSparse);
static void printHeader(FILE* fpout, FILE* Display);
static void printOneIteration(int pIteration,
AverageComplementarity& mu,
RatioInitResCurrentRes& theta,
SolveInfo& solveInfo,
StepLength& alpha,
DirectionParameter& beta,
FILE* fpout,
FILE* Display);
static void printLastInfo(int pIteration,
AverageComplementarity& mu,
RatioInitResCurrentRes& theta,
SolveInfo& solveInfo,
StepLength& alpha,
DirectionParameter& beta,
Residuals& currentRes,
Phase & phase,
Solutions& currentPt,
InputData& inputData,
double cputime,
ComputeTime& com,
Parameter& param,
FILE* fpout,
FILE* Display,
bool printTime = true);
static void computeDimacs(double* dimacs_error,
SolveInfo& solveInfo,
Residuals& currentRes,
Solutions& currentPt,
InputData& inputData);
static void printDimacs(double* dimacs_error,
char* printFormat,
FILE* fpout);
static bool judgeXmake(Parameter& param);
static bool judgeZmake(Parameter& param);
static void printSolution(BlockStruct& bs, Solutions& currentPt,
Parameter& param, FILE* fpout,
bool Xmake, bool Zmake);
};
} // end of namespace 'sdpa'
#endif // __sdpa_io_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#ifndef __sdpa_linear_h__
#define __sdpa_linear_h__
#include "sdpa_struct.h"
namespace sdpa {
class Lal
{
public:
// calculate the minimum eigenvalue of lMat*xMat*(lMat^T)
// by Lanczos metnod
static double getMinEigen(DenseMatrix& lMat, DenseMatrix& xMat,
DenseMatrix& Q,
Vector& out, Vector& b, Vector& r,
Vector& q, Vector& qold,
Vector& w, Vector& tmp,
Vector& diagVec, Vector& diagVec2,
Vector& workVec, char charTranspose='N');
// caluculate all eigenvalues of aMat by QR method
static double getMinEigenValue(DenseMatrix& aMat,
Vector& eigenVec,
Vector& workVec);
// calculate Lanzcos for cholmod_sparse
static double getMinEigenValue(CholmodMatrix& cholmodMatrix);
static double getOneNorm(Vector& b);
static double getOneNorm(SparseMatrix& C);
static double getOneNorm(SparseLinearSpace& C);
static double getOneNorm(CompMatrix& C);
static double getOneNorm(CompSpace& C);
static double getTwoNorm(Vector& b);
static double getTwoNorm(DenseMatrix& X);
static double getTwoNorm(DenseLinearSpace& X);
static bool getInnerProduct(double& ret,
Vector& aVec, Vector& bVec);
static bool getInnerProduct(double& ret,
BlockVector& aVec,
BlockVector& bVec);
static bool getInnerProduct(double& ret,
DenseMatrix& aMat,
DenseMatrix& bMat);
static bool getInnerProduct(double& ret,
SparseMatrix& aMat,
DenseMatrix& bMat);
static bool getCholesky(DenseMatrix& retMat, DenseMatrix& aMat);
// nakata 2004/12/01
// diagonal part of Cholesky matrix is set these inverse.
static bool getCholesky(SparseMatrix& aMat, int* diagonalIndex);
static bool getInvLowTriangularMatrix(DenseMatrix& retMat,
DenseMatrix& aMat);
static bool getSymmetrize(DenseMatrix& aMat);
static bool getTranspose(DenseMatrix& retMat,
DenseMatrix& aMat);
static int rdpotf2_(char*uplo, int *n, double *a, int *lda, int *info);
static int rdpotrf_(char *uplo, int *n, double *a, int *lda, int *info);
static bool choleskyFactorWithAdjust(DenseMatrix& aMat);
static bool solveSystems(Vector& xVec,
DenseMatrix& aMat, Vector& bVec);
// solve aMat * xVec = bVec
// aMat must be Cholesky Factorized.
// nakata 2004/12/01
static bool solveSystems(Vector& xVec,
SparseMatrix& aMat, Vector& bVec);
// solve aMat * xVec = bVec
// aMat must be Cholesky Factorized.
static bool getSymmetrize(DenseLinearSpace& aMat);
static bool getTranspose(DenseLinearSpace& retMat,
DenseLinearSpace& aMat);
static bool multiply(DenseMatrix& retMat,
DenseMatrix& aMat, DenseMatrix& bMat,
double* scalar = NULL);
static bool multiply(DenseMatrix& retMat,
SparseMatrix& aMat, DenseMatrix& bMat,
double* scalar = NULL);
static bool multiply(DenseMatrix& retMat,
DenseMatrix& aMat, SparseMatrix& bMat,
double* scalar = NULL);
static bool multiply(DenseMatrix& retMat,
DenseMatrix& aMat, double* scalar = NULL);
static bool multiply(Vector& retVec,
Vector& aVec, double* scalar = NULL);
static bool multiply(BlockVector& retVec,
BlockVector& aVec,
double* scalar = NULL);
static bool multiply(Vector& retVec,
DenseMatrix& aMat, Vector& bVec,
double* scalar = NULL);
// ret = aMat**T * bMat
static bool tran_multiply(DenseMatrix& retMat,
DenseMatrix& aMat, DenseMatrix& bMat,
double* scalar = NULL);
// ret = aMat * bMat**T
static bool multiply_tran(DenseMatrix& retMat,
DenseMatrix& aMat, DenseMatrix& bMat,
double* scalar = NULL);
// ret = a + (*scalar)*b
static bool plus(Vector& retVec, Vector& aVec,
Vector& bVec, double* scalar = NULL);
static bool plus(DenseMatrix& retMat,
DenseMatrix& aMat, DenseMatrix& bMat,
double* scalar = NULL);
static bool plus(DenseMatrix& retMat,
SparseMatrix& aMat, DenseMatrix& bMat,
double* scalar = NULL);
static bool plus(DenseMatrix& retMat,
DenseMatrix& aMat, SparseMatrix& bMat,
double* scalar = NULL);
static bool plus(BlockVector& retVec,
BlockVector& aVec,
BlockVector& bVec, double* scalar = NULL);
// ret = a '*' (*scalar)
static bool let(Vector& retVec, const char eq,
Vector& aVec, const char op,
double* scalar = NULL);
// ret = a '*' (*scalar)
static bool let(BlockVector& retVec, const char eq,
BlockVector& aVec, const char op,
double* scalar = NULL);
// ret = a '*' (*scalar)
static bool let(DenseMatrix& retMat, const char eq,
DenseMatrix& aMat, const char op,
double* scalar = NULL);
// ret = a '+' '-' b*(*scalar)
static bool let(Vector& retVec, const char eq,
Vector& aVec, const char op,
Vector& bVec, double* scalar = NULL);
// ret = a '+' '-' '*' 't' 'T' b*(*scalar)
static bool let(DenseMatrix& retMat, const char eq,
DenseMatrix& aMat, const char op,
DenseMatrix& bMat, double* scalar = NULL);
// ret = a '+' '-' '*' b*(*scalar)
static bool let(DenseMatrix& retMat, const char eq,
SparseMatrix& aMat, const char op,
DenseMatrix& bMat, double* scalar = NULL);
// ret = a '+' '-' '*' b*(*scalar)
static bool let(DenseMatrix& retMat, const char eq,
DenseMatrix& aMat, const char op,
SparseMatrix& bMat, double* scalar = NULL);
// ret = aMat '*' '/' bVec
static bool let(Vector& rVec, const char eq,
DenseMatrix& aMat, const char op,
Vector& bVec);
// nakata 2004/12/01
// ret = aMat '/' bVec
static bool let(Vector& rVec, const char eq,
SparseMatrix& aMat, const char op,
Vector& bVec);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
Vector& aVec, const char op,
Vector& bVec);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
DenseMatrix& aMat, const char op,
DenseMatrix& bMat);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
DenseMatrix& aMat, const char op,
SparseMatrix& bMat);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
SparseMatrix& aMat, const char op,
DenseMatrix& bMat);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
BlockVector& aVec, const char op,
BlockVector& bVec);
/////////////////////////////////////////////////////////////////////
static bool getInnerProduct(double& ret,
DenseLinearSpace& aMat,
DenseLinearSpace& bMat);
static bool getInnerProduct(double& ret,
SparseLinearSpace& aMat,
DenseLinearSpace& bMat);
// ret = a (*scalar)*b
static bool multiply(DenseLinearSpace& retMat,
DenseLinearSpace& aMat,
double* scalar = NULL);
// ret = a + (*scalar)*b
static bool plus(DenseLinearSpace& retMat,
DenseLinearSpace& aMat,
DenseLinearSpace& bMat,
double* scalar = NULL);
// CAUTION!!! We don't initialize retMat to zero matrix for efficiently.
static bool plus(DenseLinearSpace& retMat,
SparseLinearSpace& aMat,
DenseLinearSpace& bMat,
double* scalar = NULL);
// CAUTION!!! We don't initialize retMat to zero matrix for efficiently.
static bool plus(DenseLinearSpace& retMat,
DenseLinearSpace& aMat,
SparseLinearSpace& bMat,
double* scalar = NULL);
// retMat(Cholmod->A) = retMat(Cholmod->A) + aMat*(*scalar);
static void plus(CholmodMatrix& retMat,
CompMatrix& aMat,
double* scalar = NULL);
// retMat(Cholmod->A) = retMat(Cholmod->A) + aMat*(*scalar);
static void plus(CholmodSpace& retMat,
CompSpace& aMat,
double* scalar = NULL);
// ret = a '*' (*scalar)
static bool let(DenseLinearSpace& retMat, const char eq,
DenseLinearSpace& aMat, const char op,
double* scalar = NULL);
// ret = a '+' '-' b*(*scalar)
static bool let(DenseLinearSpace& retMat, const char eq,
DenseLinearSpace& aMat, const char op,
DenseLinearSpace& bMat, double* scalar = NULL);
// ret = a '+' '-' b*(*scalar)
static bool let(DenseLinearSpace& retMat, const char eq,
SparseLinearSpace& aMat, const char op,
DenseLinearSpace& bMat, double* scalar = NULL);
// ret = a '+' '-' '*' b*(*scalar)
static bool let(DenseLinearSpace& retMat, const char eq,
DenseLinearSpace& aMat, const char op,
SparseLinearSpace& bMat, double* scalar = NULL);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
DenseLinearSpace& aMat, const char op,
DenseLinearSpace& bMat);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
SparseLinearSpace& aMat, const char op,
DenseLinearSpace& bMat);
// ret = inner_product(a,b) // op = '.'
static bool let(double& ret, const char eq,
DenseLinearSpace& aMat, const char op,
SparseLinearSpace& bMat);
//=======================================================================
// for SDPA-C
//=======================================================================
static void getInnerProduct(double& ret,
CompMatrix& A,
CliqueMatrix& X,
OrderingMatrix& order);
static void getInnerProduct(double& ret,
cholmod_sparse* Z,
CliqueMatrix& X,
OrderingMatrix& order,
int* Z_blockNumber, int* Z_blockIndex);
static void getInnerProduct(double& ret,
CompSpace& A,
CliqueSpace& X,
OrderingSpace& order);
static void getInnerProduct(double& ret,
CompMatrix& A,
double* aVec,
double* bVec);
static void getInnerProduct(double& ret,
cholmod_sparse* A,
double* aVec,
double* bVec);
};
} // end of namespace 'sdpa'
#endif // __sdpa_linear_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#ifndef __sdpa_newton_h__
#define __sdpa_newton_h__
#include "sdpa_chordal.h"
// #include <pthread.h>
#define SparseCholesky 1
namespace sdpa {
class Newton;
class Solutions;
class InputData;
class Residuals;
class ComputeTime;
class Parameter;
class StepLength;
class DirectionParameter;
class Switch;
class RatioInitResCurrentRes;
class SolveInfo;
class Phase;
class AverageComplementarity;
class Newton
{
public:
enum bMat_Sp_De {SPARSE, DENSE};
bMat_Sp_De bMat_type;
SparseMatrix sparse_bMat;
DenseMatrix bMat; // the coefficent of Schur complement
Vector gVec; // the right hand side of Schur complement
// Caution:
// if SDPA doesn't use sparse bMat, following variables are indefinite.
//
// nBlock : number of block
// nConstraint[k]: number of combination of nonzero matrices in k-th block
// when A[k].block[i] and A[k].block[j] are nonzero matrices,
// i <-> constraint1[k][t]
// j <-> constraint2[k][t]
// A[k].block[i] <-> A[k].sp_block[blockIndex1[k][t]]
// A[k].block[j] <-> A[k].sp_block[blockIndex2[k][t]]
// B_{ij} <-> sparse_bMat.sp_ele[location_sparse_bMat[k][t]]
int SDP_nBlock; int* SDP_number;
int** SDP_constraint1; int** SDP_constraint2;
int** SDP_blockIndex1; int** SDP_blockIndex2;
int** SDP_location_sparse_bMat;
int* SDP_nStartIndex2; // start new j&jb from this index
int** SDP_startIndex2; // start new j&jb from this index
int LP_nBlock; int* LP_number;
int** LP_constraint1; int** LP_constraint2;
int** LP_blockIndex1; int** LP_blockIndex2;
int** LP_location_sparse_bMat;
int* LP_nStartIndex2; // start new j&jb from this index
int** LP_startIndex2; // start new j&jb from this index
// from index of aggrigate sparsity pattern to index of sparse_bMat
// B_{ii} <-> sparse_bMat[diagonalIndex[i]]
int* diagonalIndex;
// B_{ij} for all i is between diagonalIndex[j] and rowStartIndex[j+1]
Newton();
Newton(int m, BlockStruct& bs);
~Newton();
void initialize(int m, BlockStruct& bs);
void finalize();
void initialize_dense_bMat(int m);
// 2008/03/12 kazuhide nakata
void initialize_sparse_bMat(int m);
// 2008/03/12 kazuhide nakata
void initialize_bMat(int m, Chordal& chordal, InputData& inputData,
FILE* Display, FILE* fpOut);
int binarySearchIndex(int i, int j);
void make_aggrigateIndex_SDP(InputData& inputData);
void make_aggrigateIndex_LP(InputData& inputData);
void make_aggrigateIndex(InputData& inputData);
enum WHICH_DIRECTION {PREDICTOR, CORRECTOR};
void compute_bMatgVec_dense(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Phase& phase,
ComputeTime& com);
static pthread_mutex_t job_mutex;
static int Column_Number;
static int Column_NumberDx;
void compute_bMatgVec_dense_threads(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Phase& phase,
ComputeTime& com);
static void* compute_bMatgVec_dense_threads_SDP(void* arg);
void compute_bMatgVec_sparse(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Phase& phase,
ComputeTime& com);
void compute_bMatgVec_sparse_threads(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Phase& phase,
ComputeTime& com);
static void* compute_bMatgVec_sparse_threads_SDP(void* arg);
void Make_bMatgVec(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Phase& phase,
ComputeTime& com);
bool compute_DyVec(Newton::WHICH_DIRECTION direction,
int m,
InputData& inputData,
Chordal& chordal,
Solutions& currentPt,
ComputeTime& com,
FILE* Display, FILE* fpOut);
void compute_DzMat(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
Phase& phase,
ComputeTime& com);
void compute_DxMat(Solutions& currentPt,
AverageComplementarity& mu,
DirectionParameter& beta,
ComputeTime& com);
void compute_DxMat_threads(Solutions& currentPt,
AverageComplementarity& mu,
DirectionParameter& beta,
ComputeTime& com);
static void* compute_DxMat_threads_SDP(void* arg);
bool Mehrotra(WHICH_DIRECTION direction,
int m,
InputData& inputData,
Chordal& chordal,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Switch& reduction,
Phase& phase,
ComputeTime& com,
FILE* Display, FILE* fpOut);
void checkDirection(int m, InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
DirectionParameter& beta,
Switch& reduction,
Phase& phase,
ComputeTime& com,
FILE* Display, FILE* fpOut);
void display(FILE* fpout=stdout);
void display_index(FILE* fpout=stdout);
void display_sparse_bMat(FILE* fpout=stdout);
int NUM_THREADS;
void setNumThreads(FILE* Display, FILE* fpOut, int NumThreads=0);
};
typedef struct _thread_arg {
int l;
int m;
double target_mu;
int thread_num;
InputData* addr_inputData;
CholmodMatrix* addr_cholmodMatrix;
DenseMatrix* addr_bMat;
Vector* addr_gVec;
Phase* addr_phase;
} thread_arg_t;
typedef struct _thread_arg_s {
int l;
int m;
double target_mu;
int thread_num;
InputData* addr_inputData;
CholmodMatrix* addr_cholmodMatrix;
SparseMatrix* addr_sparse_bMat;
Vector* addr_gVec;
Phase* addr_phase;
Newton* addr_newton;
} thread_arg_s;
typedef struct _thread_DX {
int l;
int thread_num;
double target_mu;
CholmodMatrix* addr_cholmodMatrix;
OrderingMatrix* addr_order;
} thread_DX_t;
} // end of namespace 'sdpa'
#endif // __sdpa_newton_h__
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+269
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
#ifndef __sdpa_parts_h__
#define __sdpa_parts_h__
#include "sdpa_include.h"
#include "sdpa_dataset.h"
namespace sdpa {
class Newton;
class Solutions;
class InputData;
class Residuals;
class ComputeTime;
class Parameter;
class StepLength;
class DirectionParameter;
class Switch;
class RatioInitResCurrentRes;
class SolveInfo;
class Phase;
class AverageComplementarity;
class ComputeTime
{
public:
double Predictor;
double Corrector;
double StepPredictor;
double StepCorrector;
double xMatTime;
double zMatTime;
double invzMatTime;
double xMatzMatTime;
double EigxMatTime;
double EigzMatTime;
double EigxMatzMatTime;
double makerMat;
double makebMat;
double B_DIAG;
double B_F1;
double B_F2;
double B_F3;
double B_PRE;
double makebMatgVec;
double choleskybMat;
double solve;
double sumDz;
double makedX;
double symmetriseDx;
double makedXdZ;
double updateRes;
double MainLoop;
double FileRead;
double FileCheck;
double FileChange;
double TotalTime;
ComputeTime();
~ComputeTime();
void display(FILE* fpout=stdout);
};
class Parameter
{
public:
enum parameterType {PARAMETER_DEFAULT,
PARAMETER_UNSTABLE_BUT_FAST,
PARAMETER_STABLE_BUT_SLOW};
int maxIteration;
double epsilonStar;
double lambdaStar;
double omegaStar;
double lowerBound;
double upperBound;
double betaStar;
double betaBar;
double gammaStar;
double epsilonDash;
#define PRINT_DEFAULT_LENGTH 30
static char xPRINT_DEFAULT[PRINT_DEFAULT_LENGTH];
static char XPRINT_DEFAULT[PRINT_DEFAULT_LENGTH];
static char YPRINT_DEFAULT[PRINT_DEFAULT_LENGTH];
static char infPRINT_DEFAULT[PRINT_DEFAULT_LENGTH];
char xPrint[PRINT_DEFAULT_LENGTH];
char XPrint[PRINT_DEFAULT_LENGTH];
char YPrint[PRINT_DEFAULT_LENGTH];
char infPrint[PRINT_DEFAULT_LENGTH];
Parameter();
Parameter(FILE* parameterFile);
~Parameter();
void setDefaultParameter(parameterType type
= PARAMETER_DEFAULT);
void readFile(FILE* parameterFile);
void display(FILE* fpout=stdout, char* printFormat=infPRINT_DEFAULT);
};
class StepLength
{
public:
double primal;
double dual;
StepLength();
StepLength(double alphaP, double alphaD, int nBlock,
int* blockStruct);
~StepLength();
void initialize(double alphaP, double alphaD);
void finalize();
static double minBlockVector(BlockVector& aVec);
void computeStepLength(Solutions& currentPt,
ComputeTime& com);
void MehrotraPredictor(InputData& inputData,
Solutions& currentPt,
Phase& phase,
Switch& reduction,
AverageComplementarity& mu,
RatioInitResCurrentRes& theta,
Parameter& param,
ComputeTime& com);
void Centering(Solutions& currentPt,
Parameter& param,
ComputeTime& com);
void display(FILE* fpout = stdout);
};
class DirectionParameter
{
public:
double value;
DirectionParameter(double betaStar=0.0);
~DirectionParameter();
void initialize(double betaStar=0.0);
void Predictor(Phase& phase, Switch& reduction,
Parameter& param);
void Centering();
void MehrotraCorrector(Phase& phase, StepLength& alpha,
Solutions& currentPt,
AverageComplementarity& mu,
Parameter& param);
void display(FILE* fpout = stdout);
};
class Switch
{
public:
enum SwitchType {CENTERING,AFFINE}; // {ON,OFF}
SwitchType switchType;
Switch(SwitchType switchType=CENTERING);
~Switch();
void initialize(SwitchType switchType=CENTERING);
void MehrotraPredictor(Phase& phase);
void display(FILE* fpout = stdout);
};
class AverageComplementarity
{
public:
double initial;
double current;
AverageComplementarity(double lambdaStar = 0.0);
~AverageComplementarity();
void initialize(double lambdaStar = 0.0);
void update(Solutions& currentPt);
void display(FILE* fpout = stdout);
};
class RatioInitResCurrentRes
{
public:
double primal;
double dual;
RatioInitResCurrentRes();
~RatioInitResCurrentRes();
void initialize(Parameter& param, Residuals& currentRes);
void update(Switch& reduction, StepLength& alpha);
void update_exact(Residuals& currentRes, Parameter& param);
void display(FILE* fpout = stdout);
};
class SolveInfo
{
public:
enum phaseType { noINFO,pFEAS,dFEAS,pdFEAS,pdINF,pFEAS_dINF,
pINF_dFEAS,pdOPT,pUNBD,dUNBD};
double rho;
double etaPrimal;
double etaDual;
double objValPrimal;
double objValDual;
SolveInfo();
SolveInfo(InputData& inputData, Solutions& currentPt,
double mu0, double omegaStar);
~SolveInfo();
void initialize(InputData& inputData, Solutions& currentPt,
double mu0, double omegaStar);
void update(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
RatioInitResCurrentRes& theta,
Parameter& param);
// check mu, gap, feasibility 2007/09/13
void check(InputData& inputData,
Solutions& currentPt,
Residuals& currentRes,
AverageComplementarity& mu,
RatioInitResCurrentRes& theta,
Parameter& param);
void display(FILE* fpout = stdout);
};
class Phase
{
public:
int nDim;
SolveInfo::phaseType value;
Phase();
~Phase();
bool initialize(Residuals& currentRes,
SolveInfo& solveInfo,
Parameter& param, int nDim);
bool updateCheck(Residuals& currentRes,
SolveInfo& solveInfo,
Parameter& param);
void reverse();
void display(FILE* fpout = stdout);
};
} // end of namespace 'sdpa'
#endif // __sdpa_parts_h__
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*--------------------------------------------------
sdpa_right.h
--------------------------------------------------*/
#ifndef __sdpa_right_h__
#define __sdpa_right_h__
/*------------------------------------------
Version Code Name
SDPA 6 : Rosemary/2003Aug
SDPA 7 : Margaret/2008Feb
------------------------------------------*/
static const char sdpa_right[] =
"SDPA7 (Margaret/since 2008Feb) has been developed by SDPA Project.";
#ifdef VERSION
// VERSION is set by configure script
static const char sdpa_version[] = VERSION;
#else
// static const char sdpa_version[] = "7";
#endif
#endif // __sdpa_right_h__
+259
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*--------------------------------------------------
sdpa_solve.cpp
--------------------------------------------------*/
#include "sdpa_call.h"
#include "sdpa_linear.h"
#include "sdpa_io.h"
using namespace sdpa;
void SDPA::initializeSolve()
{
TimeStart(FILE_CHANGE_START1);
TimeEnd(FILE_CHANGE_END1);
com.FileChange += TimeCal(FILE_CHANGE_START1,
FILE_CHANGE_END1);
com.TotalTime += TimeCal(FILE_CHANGE_START1,
FILE_CHANGE_END1);
inputData.initialize_index();
// rMessage("inputData = "); inputData.display();
currentPt.initialize(m, bs);
currentPt.makeCliques(bs, inputData);
// rMessage("order = "); currentPt.order.display();
currentPt.order.displayStatistics(Display, currentPt.cholmodSpace);
currentPt.order.displayStatistics(fpout, currentPt.cholmodSpace);
currentPt.setInitialPoint(bs, param.lambdaStar);
inputData.assignAgg(currentPt.cholmodSpace);
inputData.assignBlockIndex(currentPt.order);
currentPt.cholmodSpace.assignBlockIndex(currentPt.order);
// rMessage("currentPt.initial = "); currentPt.display();
newton.initialize(m,bs);
int nBlock2 = bs.SDP_nBlock + bs.LP_nBlock;
chordal.initialize(&newton.sparse_bMat);
chordal.ordering_bMat(m, nBlock2, inputData, Display, fpout);
newton.initialize_bMat(m, chordal, inputData, Display, fpout);
mu.initialize(param.lambdaStar);
TimeStart(UPDATE_START);
currentPt.cholmodSpace.computeResiduals(inputData, currentPt.order);
TimeEnd(UPDATE_END);
com.updateRes += TimeCal(UPDATE_START,UPDATE_END);
// currentPt.cholmodSpace.display();
// inputData.display();
currentRes.initialize();
currentRes.update(currentPt.cholmodSpace);
currentRes.copyToInit();
// rMessage("currentRes = "); currentRes.display();
beta.initialize(param.betaStar);
theta.initialize(param, currentRes);
solveInfo.initialize(inputData, currentPt, mu.initial,
param.omegaStar);
phase.initialize(currentRes, solveInfo, param, currentPt.nDim);
// writeInputSparse((char*)"tmp.dat-s",(char*)"%+8.3e");
}
void SDPA::solve()
{
pIteration = 0;
TimeStart(MAIN_LOOP_START1);
IO::printHeader(fpout,Display);
while (phase.updateCheck(currentRes, solveInfo, param)
&& pIteration < param.maxIteration) {
// Mehrotra's Predictor
TimeEnd(THIS_ITERATION_TIME);
#if 0
rMessage("++ " << pIteration << " turn ++ with "
<< TimeCal(MAIN_LOOP_START1, THIS_ITERATION_TIME)
<< " seconds in main loop");
#endif
TimeStart(MEHROTRA_PREDICTOR_START1);
// set variable of Mehrotra
reduction.MehrotraPredictor(phase);
beta.Predictor(phase, reduction, param);
// rMessage("reduction = "); reduction.display();
// rMessage("phase = "); phase.display();
// rMessage("beta.predictor.value = " << beta.value);
// rMessage(" mu = " << mu.current);
// rMessage("currentPt = "); currentPt.display();
// rMessage("currentRes = "); currentRes.display();
// inputData.display();
bool isSuccessCholesky;
isSuccessCholesky = newton.Mehrotra(Newton::PREDICTOR,
m, inputData, chordal,
currentPt, currentRes,
mu, beta, reduction,
phase, com,
Display, fpout);
if (isSuccessCholesky == false) {
break;
}
#if 0
newton.checkDirection(m, inputData, currentPt, currentRes,
mu, beta, reduction, phase, com, Display, fpout);
#endif
// rMessage("order = "); currentPt.order.display();
// rMessage("currentPt.cholmodSpace = "); currentPt.cholmodSpace.display();
TimeEnd(MEHROTRA_PREDICTOR_END1);
com.Predictor += TimeCal(MEHROTRA_PREDICTOR_START1,
MEHROTRA_PREDICTOR_END1);
TimeStart(STEP_PRE_START1);
alpha.MehrotraPredictor(inputData, currentPt, phase, reduction,
mu, theta, param, com);
// rMessage("alpha predictor = "); alpha.display();
TimeStart(STEP_PRE_END1);
com.StepPredictor += TimeCal(STEP_PRE_START1,STEP_PRE_END1);
// rMessage("alphaStar = " << param.alphaStar);
IO::printOneIteration(pIteration, mu, theta, solveInfo,
alpha, beta, fpout, Display);
if (currentPt.update(alpha,com)==false) {
// if step length is too short,
// we finish algorithm
rMessage("cannot move");
pIteration++;
break;
}
// rMessage("currentPt = ");
// currentPt.display();
// rMessage("updated");
const double old_mu = mu.current;
theta.update(reduction,alpha);
// rMessage("theta = "); theta.display();
// rMessage("Before mu update");
mu.update(currentPt);
// rMessage("mu = "); mu.display();
currentPt.cholmodSpace.computeResiduals(inputData, currentPt.order);
currentRes.update(currentPt.cholmodSpace);
// rMessage("currentPt = "); currentPt.display();
theta.update_exact(currentRes, param);
// rMessage("theta.exact = "); theta.display();
solveInfo.update(inputData, currentPt, currentRes, mu, theta, param);
// printDimacsEasy();
pIteration++;
// rMessage("currentPt = "); currentPt.display();
// rMessage("No Centering"); continue;
// Centering
if ((alpha.primal < 0.3)
||(alpha.dual < 0.3)
||((phase.value == SolveInfo::pdFEAS)
&&(old_mu * 0.5 < mu.current))) {
TimeStart(CORRECTOR_START1);
reduction.MehrotraPredictor(phase);
#if 1
beta.Centering();
#else
beta.MehrotraCorrector(phase, alpha, currentPt, mu, param);
rMessage("beta = "); beta.display();
#endif
isSuccessCholesky = newton.Mehrotra(Newton::PREDICTOR,
m, inputData, chordal,
currentPt, currentRes,
mu, beta, reduction,
phase, com,
Display, fpout);
if (isSuccessCholesky == false) {
break;
}
TimeEnd(CORRECTOR_END1);
com.Corrector += TimeCal(CORRECTOR_START1, CORRECTOR_END1);
TimeStart(CORRECTOR_STEP_START1);
#if 0
newton.checkDirection(m, inputData, currentPt, currentRes,
mu, beta, reduction, phase, com, Display, fpout);
#endif
alpha.Centering(currentPt, param, com);
TimeEnd(CORRECTOR_STEP_END1);
com.StepCorrector += TimeCal(CORRECTOR_STEP_START1,
CORRECTOR_STEP_END1);
IO::printOneIteration(pIteration, mu, theta, solveInfo,
alpha, beta, fpout, Display);
if (currentPt.update(alpha,com)==false) {
// if step length is too short,
// we finish algorithm
rMessage("cannot move");
pIteration++;
break;
}
theta.update(reduction,alpha);
mu.update(currentPt);
currentPt.cholmodSpace.computeResiduals(inputData, currentPt.order);
currentRes.update(currentPt.cholmodSpace);
theta.update_exact(currentRes, param);
solveInfo.update(inputData, currentPt, currentRes, mu, theta, param);
// printDimacsEasy();
pIteration++;
}
} // end of MAIN_LOOP
if (pIteration == param.maxIteration) {
rMessage("maxIteration is reached");
}
TimeEnd(MAIN_LOOP_END1);
com.MainLoop = TimeCal(MAIN_LOOP_START1,
MAIN_LOOP_END1);
com.TotalTime += com.MainLoop;
currentRes.update(currentPt.cholmodSpace);
#if REVERSE_PRIMAL_DUAL
Lal::let(currentPt.cholmodSpace.yVec,
'=',currentPt.cholmodSpace.yVec,'*',&DMONE);
phase.reverse();
#endif
IO::printLastInfo(pIteration, mu, theta, solveInfo, alpha, beta,
currentRes, phase, currentPt,
inputData, com.TotalTime, com,
param, fpout, Display);
bool Xmake = IO::judgeXmake(param);
bool Zmake = IO::judgeZmake(param);
currentPt.makeFinalSolution(Xmake, Zmake, bs);
IO::printSolution(bs, currentPt, param, fpout, Xmake, Zmake);
// com.display(fpout);
if (Display) {
fprintf(Display, " main loop time = %.6f\n",com.MainLoop);
fprintf(Display, " total time = %.6f\n",com.TotalTime);
fprintf(Display, "file check time = %.6f\n",com.FileCheck);
fprintf(Display, "file change time = %.6f\n",com.FileChange);
fprintf(Display, "file read time = %.6f\n",com.FileRead);
}
if (fpout) {
fprintf(fpout, " main loop time = %.6f\n",com.MainLoop);
fprintf(fpout, " total time = %.6f\n",com.TotalTime);
fprintf(fpout, " file check time = %.6f\n",com.FileCheck);
fprintf(fpout, " file change time = %.6f\n",com.FileChange);
fprintf(fpout, " file read time = %.6f\n",com.FileRead);
}
}
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+574
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/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
// printing presicion of vectors and matrices
#define P_FORMAT ((char*)"%+8.3e")
#define NO_P_FORMAT "NOPRINT"
#ifndef __sdpa_struct_h__
#define __sdpa_struct_h__
#include "sdpa_include.h"
#include "sdpa_block.h"
#include <cholmod.h>
#define DATA_CAPSULE 1
// DATA_CAPSULE 0 : Three Arrays (row,column,sp_ele)
// DATA_CAPSULE 1 : Capsuled data storage
namespace sdpa {
class CholmodMatrix;
class CholmodSpace;
class OrderingMatrix;
class OrderingSpace;
class Vector
{
public:
int nDim;
double* ele;
Vector();
Vector(int nDim, double value = 0.0);
~Vector();
void initialize();
void initialize(int nDim, double value = 0.0);
void initialize(double value);
void finalize();
void setZero();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void display(FILE* fpout,double scalar, char* printFormat = P_FORMAT);
bool copyFrom(Vector& other);
};
class BlockVector
{
public:
int nBlock;
int* blockStruct;
Vector* ele;
BlockVector();
BlockVector(BlockStruct& bs, double value = 0.0);
BlockVector(int nBlock, int* blockStruct, double value = 0.0);
~BlockVector();
void initialize(BlockStruct& bs, double value = 0.0);
void initialize(int nBlock, int* blockStruct, double value = 0.0);
void initialize(double value);
void finalize();
void setZero();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
bool copyFrom(BlockVector& other);
};
class SparseMatrix
{
public:
int nRow, nCol;
enum Type { SPARSE, DENSE};
Type type;
int NonZeroNumber;
// for memory
int NonZeroCount;
// currentry stored
int NonZeroEffect;
// use for calculation of F1,F2,F3
// for Dense
double* de_ele;
// for Sparse ; 0:sparse 1:dense
enum dsType {DSarrays, DScapsule};
dsType DataStruct;
// for Sparse Data1 // dsArrays
int* row_index;
int* column_index;
double* sp_ele;
// for Sparse Data2 // dsCapsule
typedef struct{
int vRow;
int vCol;
double vEle;
} SparseElement __attribute__( (aligned (16)));
SparseElement* DataS;
SparseMatrix();
SparseMatrix(int nRow,int nCol, Type type, int NonZeroNumber);
~SparseMatrix();
#if DATA_CAPSULE
void initialize(int nRow,int nCol, Type type, int NonZeroNumber,
dsType DataStruct = DScapsule);
#else
void initialize(int nRow,int nCol, Type type, int NonZeroNumber,
dsType DataStruct = DSarrays);
#endif
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
bool copyFrom(SparseMatrix& other);
void changeToDense(bool forceChange = false);
void setZero();
void setIdentity(double scalar = 1.0);
bool sortSparseIndex(int&i, int& j);
};
class DenseMatrix
{
public:
int nRow, nCol;
double* de_ele;
DenseMatrix();
~DenseMatrix();
void initialize();
void initialize(int nRow,int nCol);
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
bool copyFrom(DenseMatrix& other);
bool copyFrom(SparseMatrix& other);
void setZero();
void setIdentity(double scalar = 1.0);
};
class SparseLinearSpace
{
public:
int SDP_sp_nBlock;
int SOCP_sp_nBlock;
int LP_sp_nBlock;
int* SDP_sp_index;
int* SOCP_sp_index;
int* LP_sp_index;
SparseMatrix* SDP_sp_block;
SparseMatrix* SOCP_sp_block;
double* LP_sp_block;
SparseLinearSpace();
SparseLinearSpace(int SDP_nBlock, int* SDP_blockStruct,
int* SDP_NonZeroNumber,
int SOCP_nBlock, int* SOCP_blockStruct,
int* SOCP_NonZeroNumber,
int LP_nBlock, bool* LP_NonZeroNumber);
SparseLinearSpace(int SDP_sp_nBlock,
int* SDP_sp_index,
int* SDP_sp_blockStruct,
int* SDP_sp_NonZeroNumber,
int SOCP_sp_nBlock,
int* SOCP_sp_index,
int* SOCP_sp_blockStruct,
int* SOCP_sp_NonZeroNumber,
int LP_sp_nBlock,
int* LP_sp_index);
~SparseLinearSpace();
// dense form of block index
void initialize(int SDP_nBlock, int* SDP_blockStruct,
int* SDP_NonZeroNumber,
int SOCP_nBlock, int* SOCP_blockStruct,
int* SOCP_NonZeroNumber,
int LP_nBlock, bool* LP_NonZeroNumber);
// sparse form of block index 2008/02/27 kazuhide nakata
void initialize(int SDP_sp_nBlock,
int* SDP_sp_index,
int* SDP_sp_blockStruct,
int* SDP_sp_NonZeroNumber,
int SOCP_sp_nBlock,
int* SOCP_sp_index,
int* SOCP_sp_blockStruct,
int* SOCP_sp_NonZeroNumber,
int LP_sp_nBlock,
int* LP_sp_index);
void finalize();
void changeToDense(bool forceChange=false);
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
bool copyFrom(SparseLinearSpace& other);
void setElement_SDP(int block, int nCol, int nRow, double ele);
void setElement_SOCP(int block, int nCol, int nRow, double ele);
void setElement_LP(int block, double ele);
void setZero();
void setIdentity(double scalar = 1.0);
// no check
bool sortSparseIndex(int&l , int& i, int& j);
};
class DenseLinearSpace
{
public:
int SDP_nBlock;
int LP_nBlock;
DenseMatrix* SDP_block;
double* LP_block;
DenseLinearSpace();
DenseLinearSpace(BlockStruct& bs);
~DenseLinearSpace();
void initialize(BlockStruct& bs);
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void displaySolution(BlockStruct& bs, FILE* fpout = stdout,
char* printFormat = P_FORMAT);
bool copyFrom(DenseLinearSpace& other);
void setElement_SDP(int block, int nCol, int nRow, double ele);
void setElement_SOCP(int block, int nCol, int nRow, double ele);
void setElement_LP(int block, double ele);
void setZero();
void setIdentity(double scalar = 1.0);
};
// Input Matrix A_k for Compleition
// Column-Compressed structure
class CompMatrix
{
public:
int nRow;
int nCol;
int nzColumn; // nunmber of non-zero columns
int effectiveNzColumn; // nunmber of non-zero LOWER columns
int* column_index; // index of non-zero columns [length:nzColumn]
int NNZ; // number of non-zero
int lowerNNZ; // number of non-zero in lower triangular matrix
int* column_start; // starting point of each non-zero columns
// [length:nzColumn+1]
// the last one should be NNZ
int* row_index; // row-index of each element [length:NNZ]
double* ele; // value of each element [length:NNZ]
int* diag_index; // diagonal point of each non-zero columns
// [length:nzColumn]
// if diagonal is empty, diag_index[j] = -1;
int* agg_index; // aggregate index [length: NNZ]
// This element corresponds to X.ele[blockNumber].de_ele[blockIndex]
int* blockNumber;
int* blockIndex;
int nzColumn_diag; // number of LOWER non-zero columns with diagonal elements
int* column_diag_index;
int nzColumn_nondiag; // number of LOWER non-zero columns WITHOUT diagonal elements
int* column_nondiag_index;
class inputIJV
{
public:
int i;
int j;
double v;
};
vector<CompMatrix::inputIJV*>* inputVector;
// inputVector is the vector
// After makeInternalStructure(), this vector will be released
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void initialize();
CompMatrix();
void finalize();
~CompMatrix();
void initializeInputVector();
void setElement(int i, int j, double v);
static bool compareIJV(inputIJV* a, inputIJV* b);
void sortInputVector();
void makeInternalStructure();
void checkInputDataStructure(int& i, int& j, double& v1, double& v2);
void assignAgg(CholmodMatrix& cholmodMatrix);
// Aggregate contains only lower triangular
void assignBlockIndex(OrderingMatrix& order);
};
// diagonal block structure of CompMatrix
class CompSpace
{
public:
int LP_sp_nBlock;
int SDP_sp_nBlock;
int* LP_sp_index;
int* SDP_sp_index;
double* LP_sp_block;
CompMatrix* SDP_sp_block;
int NNZ;
int lowerNNZ;
// LP_agg_index is not neccesarry, because LP_sp_index does the same thing
CompSpace();
~CompSpace();
void initialize();
void initialize(int LP_sp_nBlock, int SDP_sp_nBlock);
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void initializeInputVector();
void setElement_LP(int i, double v);
void setElement_SDP(int l, int i, int j, double v);
void sortInputVector();
void makeInternalStructure();
void checkInputDataStructure(int& l, int& i, int& j, double& v1, double& v2);
void assignAgg(CholmodSpace& cholModSpace);
void assignBlockIndex(OrderingSpace& order);
};
// CliqueMatrix should be diagonal block of fully-dense matrix
// LP block is handled separately by CliqueSpace
class CliqueMatrix
{
public:
int nBlock;
int* blockStruct;
DenseMatrix* ele;
CliqueMatrix();
~CliqueMatrix();
void initialize();
void initialize(int nBlock, int* blockStruct);
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void setZero();
void setIdentity(double scalar = 1.0);
};
// diagonal block structure of CliqueMatrix
class CliqueSpace
{
public:
int LP_nBlock;
double* LP_block;
int SDP_nBlock;
CliqueMatrix* SDP_block; // each block is decomposed into multiple matrices
CliqueSpace();
~CliqueSpace();
void initialize();
void initialize(BlockStruct& bs, OrderingSpace& order);
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void setZero();
void setIdentity(double scalar = 1.0);
};
class OrderingMatrix
{
public:
int nClique;
int* cliqueSize; //length nCliques
// arrays of nCliques, i-th array has cliqueSize[i] length
int** cliqueIndex;
int nDim;
int* Perm;
int* ReversePerm;
// dXt means dX~tilde
// This matrix is nonsymemetric and [dX~]_{*k}
// is usually computed.
// By copying nonzero elements of [dX~]_{*k} to a clique structure,
// its efficiency will be enhanced.
// Details::
// The dXtildeIndex-th element of [dX~]_{*k} will be mapped to
// cliqueMatrix{dXtilde[k][dXtClique]}(dXtBlock);
// dXtBlock is the index of the corresponding block inside.
int* dXtNonzeros; // size of nDim
int** dXtIndex; // size of nDim*dXtNonzeros
int** dXtClique; // size of nDim*dXtNonzeros
int** dXtBlock; // size of nDim*dXtNonzeros
// tmporary class for making dXtNonzers, etc.
class ISB {
public:
int i;
int s;
int b; // blockIndex
};
static bool compareISB(ISB* a, ISB* b);
OrderingMatrix();
~OrderingMatrix();
void initialize();
void initialize(int nDim);
void finalize();
// A[i,j] * X[i,j] means A[i,j] * X.ele[blockNumber].ele[blockIndex]
void getIndex(int i, int j, int& blockNumber, int& blockIndex);
void extractCliques(CholmodMatrix& C);
void displayDxIndex(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void displayStatistics(FILE* fpout, CholmodMatrix& cholmodMatrix);
};
class OrderingSpace
{
public:
int SDP_nBlock;
OrderingMatrix* SDP_block;
OrderingSpace();
~OrderingSpace();
void initialize();
void initialize(int SDP_nBlock, int* SDP_blockStruct);
void finalize();
void displayDxIndex(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void displayStatistics(FILE* fpout, CholmodSpace& cholmodSpace);
void extractCliques(CholmodSpace& C);
};
class CholmodMatrix
{
public:
int nDim;
cholmod_sparse* Z;
cholmod_factor* Lz;
cholmod_factor* Lx;
cholmod_sparse* dZ;
cholmod_sparse* rD;
CliqueMatrix clique_xMat;
CliqueMatrix clique_dX;
CliqueMatrix clique_choleskyX;
CliqueMatrix clique_invCholeskyX;
cholmod_dense* x_x; // solution of cholmod_solve
cholmod_dense* x_z; // solution of cholmod_solve
cholmod_dense* b_x; // right-hand-side of cholmod_solve
cholmod_dense* b_z; // right-hand-side of cholmod_solve
cholmod_common common;
int NNZ_Z;
int NNZ_L;
int* Z_blockNumber;
int* Z_blockIndex;
CholmodMatrix();
~CholmodMatrix();
void initialize();
void finalize();
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
static void display_sparse(cholmod_sparse* A, FILE* fpout = stdout,
char* printFormat = P_FORMAT);
static void display_factor(cholmod_factor* L, FILE* fpout = stdout,
char* printFormat = P_FORMAT);
static void display_dense(cholmod_dense* X, FILE* fpout = stdout,
char* printFormat = P_FORMAT);
void analyze();
void solveByZ(); // b should be set properly before solve.
void solveByX(); // b should be set properly before solve.
void assignBlockIndex(OrderingMatrix& order);
static void setZero_sparse(cholmod_sparse* A);
void setZzero();
void setZIdentity(double scalar = 1.0);
void setXIdentity(double scalar = 1.0);
void setB_Zzero();
void setB_Xzero();
void setDxZero();
void initializeClique(OrderingMatrix& order);
bool getCholesky(OrderingMatrix& order);
};
class InputData;
// diagonal block structure of cholmod_sparse & cholmod_factor
// for Aggregate Matrix & Factorized Matrix
class CholmodSpace
{
public:
int LP_nBlock;
double* LP_Z;
double* LP_invZ;
double* LP_dZ;
double* LP_X;
double* LP_invX;
double* LP_dX;
int SDP_nBlock;
CholmodMatrix* SDP_block;
Vector yVec;
Vector dyVec;
Vector rp; // primal residual vector
double* LP_rD; // dual residual vector
CholmodSpace();
~CholmodSpace();
void initialize();
void initialize(int LP_nBlock, int SDP_nBlock);
void finalize();
void makeAggregate(int m, int SDP_nBlock, int* SDP_blockStruct,
CompSpace& C, CompSpace* A);
void assignBlockIndex(OrderingSpace& order);
void setZzero();
void setZIdentity(double scalar = 1.0);
void setXIdentity(double scalar = 1.0);
void display(FILE* fpout = stdout, char* printFormat = P_FORMAT);
void analyze();
void initializeClique(int m, OrderingSpace& order);
void getInnerProductAX(double& ret,
CompSpace& A, OrderingSpace& order);
void getInnerProductAdX(double& ret,
CompSpace& A, OrderingSpace& order);
void computeResiduals(InputData& inputData, OrderingSpace& order);
bool getCholesky(OrderingSpace& order);
};
} // end of namespace 'sdpa'
#endif // __sdpa_struct_h__
+71
View File
@@ -0,0 +1,71 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*-----------------------------------------
sdpa_tool.cpp
-----------------------------------------*/
#include "sdpa_tool.h"
#include <sys/time.h>
#include <time.h>
#include <unistd.h>
#ifndef CLK_TCK
#define CLK_TCK sysconf(_SC_CLK_TCK)
#endif
namespace sdpa {
// These are constant.
// Do Not Change .
int IZERO = 0;
int IONE = 1;
int IMONE = -1;
double DZERO = 0.0;
double DONE = 1.0;
double DMONE = -1.0;
double Time::rGetUseTime()
{
#if PROCESS_TIME
struct tms TIME;
times(&TIME);
return (double)TIME.tms_utime/(double)CLK_TCK;
#else
return 0.0;
#endif
}
void Time::rSetTimeVal(struct timeval& targetVal)
{
static struct timezone tz;
gettimeofday(&targetVal,&tz);
}
double Time::rGetRealTime(const struct timeval& start,
const struct timeval& end)
{
const long int second = end.tv_sec - start.tv_sec;
const long int usecond = end.tv_usec - start.tv_usec;
return ((double)second) + ((double)usecond)*(1.0e-6);
}
} // end of namespace 'sdpa'
+147
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@@ -0,0 +1,147 @@
/* -------------------------------------------------------------
This file is a component of SDPA
Copyright (C) 2004-2013 SDPA Project
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
------------------------------------------------------------- */
/*--------------------------------------------------
sdpa_tool.h
--------------------------------------------------*/
#ifndef __sdpa_tool_h__
#define __sdpa_tool_h__
#include "sdpa_right.h"
#include <iostream>
#include <vector>
#include <sys/time.h>
#include <string>
#include <cstring>
namespace sdpa {
// Note : only GNU has the macro __PRETTY_FUNCTION__
#define USE_PRETTY_FUNCTION 0
#if USE_PRETTY_FUNCTION
#define rMessage(message) \
{ cout << message << " :: line " << __LINE__ \
<< " in " << __FILE__ \
<< " [ " << __PRETTY_FUNCTION__ << " ] " << endl; }
#elif 1
#define rMessage(message) \
{cout << message << " :: line " << __LINE__ \
<< " in " << __FILE__ << endl; }
#else
#define rMessage(message) ;
#endif
#if USE_PRETTY_FUNCTION
#define rError(message) \
{ cout << message << " :: line " << __LINE__ \
<< " in " << __FILE__ \
<< " [ " << __PRETTY_FUNCTION__ << " ] " << endl; \
exit(false);}
#else
#define rError(message) \
{cout << message << " :: line " << __LINE__ \
<< " in " << __FILE__ << endl; \
exit(false);}
#endif
#if 1
#define NewArray(val,type,number) \
{val = NULL; \
try{ val = new type[number]; } \
catch(bad_alloc){ \
rMessage("Memory Exhausted (bad_alloc)"); abort(); } \
catch(...){ \
rMessage("Fatal Error (related memory allocation"); abort(); } \
}
#else
#define NewArray(val,type,number) \
{rMessage("New Invoked"); \
val = NULL; val = new type[number]; \
if (val==NULL) {rError("Over Memory");} \
}
#endif
#define DeleteArray(val) \
{ if (val!=NULL) { \
delete[] val; \
val = NULL; \
} \
}
#define REVERSE_PRIMAL_DUAL 1
// These are constant. Do NOT change
extern int IZERO ; // = 0;
extern int IONE ; // = 1;
extern int IMONE ; // = -1;
extern double DZERO; // = 0.0;
extern double DONE ; // = 1.0;
extern double DMONE; // = -1.0;
class Time
{
public:
static double rGetUseTime();
static void rSetTimeVal(struct timeval & targetVal);
static double rGetRealTime(const struct timeval & start,
const struct timeval & end);
};
#define PROCESS_TIME 0
#if PROCESS_TIME // count time with process time
#include <sys/times.h>
#define TimeStart(START__) \
static double START__; START__ = Time::rGetUseTime()
#define TimeEnd(END__) \
static double END__; END__ = Time::rGetUseTime()
#define TimeCal(START__,END__) (END__ - START__)
#else // count time with real time
#define TimeStart(START__) \
static struct timeval START__; Time::rSetTimeVal(START__)
#define TimeEnd(END__) \
static struct timeval END__; Time::rSetTimeVal(END__)
#define TimeCal(START__,END__) Time::rGetRealTime(START__,END__)
#endif
#define sdpa_dset(dset_length,dset_value,dset_pointer,dset_step) \
for (int dset_i=0,dset_index = 0; dset_i<dset_length; ++dset_i) { \
dset_pointer[dset_index] = dset_value; \
dset_index += dset_step; \
}
#ifdef OPENBLAS
extern "C" void openblas_set_num_threads(int num_threads);
#define blas_set_num_threads(num_threads) \
openblas_set_num_threads(num_threads);
#else
// nothing is used
#define blas_set_num_threads(num_threads) {};
#endif
} // end of namespace 'sdpa'
#endif // __sdpa_tool_h__
+34
View File
@@ -0,0 +1,34 @@
import Common;
struct DebugVertex
{
float3 position;
float3 color;
};
struct VertexStageOutput
{
float3 color : VERTEX_COLOR;
float4 position : SV_Position;
};
[shader("vertex")]
VertexStageOutput vertexMain(
DebugVertex input)
{
VertexStageOutput output;
float4 viewpos = mul(gViewParams.viewMatrix, float4(input.position, 1.0f));
output.position = mul(gViewParams.projectionMatrix, viewpos);
output.color = input.color;
return output;
}
[shader("fragment")]
float4 fragmentMain(
float3 color : VERTEX_COLOR,
float4 position : SV_Position
) : SV_Target
{
return float4(color, 1.0f);
}
+9 -1
View File
@@ -6,4 +6,12 @@ struct PrimitiveSceneData
};
layout(set = INDEX_SCENE_DATA, binding = 0, std430)
ConstantBuffer<PrimitiveSceneData> gSceneData;
StructuredBuffer<PrimitiveSceneData> gSceneData;
[[vk::push_constant]]
ConstantBuffer<uint> gSceneDataIndex;
PrimitiveSceneData getSceneData()
{
return gSceneData[gSceneDataIndex];
}
+12 -10
View File
@@ -131,9 +131,10 @@ struct VertexShaderInput
float3 getWorldPosition()
{
float4x4 localToWorld = gSceneData.localToWorld;
float4x4 localToWorld = getSceneData().localToWorld;
float3 rotatedPosition = localToWorld[0].xyz * position.xxx + localToWorld[1].xyz * position.yyy + localToWorld[2].xyz * position.zzz;
return rotatedPosition + localToWorld[3].xyz;
return mul(getSceneData().localToWorld, position).xyz;
//rotatedPosition + float3(localToWorld[0].w, localToWorld[1].w, localToWorld[2].w);
}
VertexValueCache getVertexCache()
@@ -152,9 +153,9 @@ struct VertexShaderInput
cache.tangentToLocal[1] = tangentToLocal[1];
cache.tangentToLocal[2] = tangentToLocal[2];
cache.tangentToWorld[0] = mul(gSceneData.localToWorld, float4(tangentToLocal[0], 0.0f)).xyz;
cache.tangentToWorld[1] = mul(gSceneData.localToWorld, float4(tangentToLocal[1], 0.0f)).xyz;
cache.tangentToWorld[2] = mul(gSceneData.localToWorld, float4(tangentToLocal[2], 0.0f)).xyz;
cache.tangentToWorld[0] = mul(getSceneData().localToWorld, float4(tangentToLocal[0], 0.0f)).xyz;
cache.tangentToWorld[1] = mul(getSceneData().localToWorld, float4(tangentToLocal[1], 0.0f)).xyz;
cache.tangentToWorld[2] = mul(getSceneData().localToWorld, float4(tangentToLocal[2], 0.0f)).xyz;
return cache;
}
@@ -183,9 +184,9 @@ struct VertexShaderInput
{
ShaderAttributeInterpolation result = (ShaderAttributeInterpolation)0;
float3x3 tangentToWorld = cache.getTangentToWorld();
result.normal = mul(gSceneData.localToWorld, float4(normal, 0.0f)).xyz;
result.tangent = mul(gSceneData.localToWorld, float4(tangent, 0.0f)).xyz;
result.biTangent = mul(gSceneData.localToWorld, float4(biTangent, 0.0f)).xyz;
result.normal = mul(getSceneData().localToWorld, float4(normal, 0.0f)).xyz;
result.tangent = mul(getSceneData().localToWorld, float4(tangent, 0.0f)).xyz;
result.biTangent = mul(getSceneData().localToWorld, float4(biTangent, 0.0f)).xyz;
result.color = color;
result.worldPosition = vertexParams.worldPosition;
result.viewPosition = vertexParams.viewPosition;
@@ -215,8 +216,9 @@ struct PositionOnlyVertexShaderInput
#endif // USE_INSTANCING
float3 getWorldPosition()
{
float4x4 localToWorld = gSceneData.localToWorld;
float4x4 localToWorld = getSceneData().localToWorld;
float3 rotatedPosition = localToWorld[0].xyz * position.xxx + localToWorld[1].xyz * position.yyy + localToWorld[2].xyz * position.zzz;
return rotatedPosition + localToWorld[3].xyz;
return mul(getSceneData().localToWorld, position).xyz;
//rotatedPosition + float3(localToWorld[0].w, localToWorld[1].w, localToWorld[2].w);
}
};
+1 -1
View File
@@ -20,7 +20,7 @@ SceneView::SceneView(Gfx::PGraphics graphics, PWindow owner, const ViewportCreat
LightCullingPass(graphics),
BasePass(graphics)
))
, cameraSystem(createInfo.dimensions, Math::Vector(0, 0, 10))
, cameraSystem(createInfo.dimensions, Vector(0, 0, 10))
{
AssetRegistry::importFile("C:\\Users\\Dynamitos\\TestSeeleProject\\Assets\\Ayaka\\Avatar_Girl_Sword_Ayaka_Tex_Body_Diffuse.png");
AssetRegistry::importFile("C:\\Users\\Dynamitos\\TestSeeleProject\\Assets\\Ayaka\\Avatar_Girl_Sword_Ayaka_Tex_Body_Lightmap.png");
+7 -7
View File
@@ -3,7 +3,7 @@
using namespace Seele;
ViewportControl::ViewportControl(const Math::URect& viewportDimensions, Math::Vector initialPos)
ViewportControl::ViewportControl(const URect& viewportDimensions, Vector initialPos)
: position(initialPos)
, fieldOfView(glm::radians(70.f))
, aspectRatio(static_cast<float>(viewportDimensions.size.x) / viewportDimensions.size.y)
@@ -25,9 +25,9 @@ void ViewportControl::update(Component::Camera& camera, float deltaTime)
{
cameraMove *= 4;
}
Math::Vector moveVector = Math::Vector();
Math::Vector forward = glm::normalize(springArm);
Math::Vector side = glm::cross(Math::Vector(0, 1, 0), forward);
Vector moveVector = Vector();
Vector forward = glm::normalize(springArm);
Vector side = glm::cross(Vector(0, 1, 0), forward);
if(keys[KeyCode::KEY_W])
{
moveVector += forward * cameraMove;
@@ -64,11 +64,11 @@ void ViewportControl::update(Component::Camera& camera, float deltaTime)
lastX = mouseX;
lastY = mouseY;
springArm = glm::normalize(
Math::Vector(
Vector(
cos(yaw) * cos(pitch),
sin(pitch),
sin(yaw) * cos(pitch)));
camera.viewMatrix = glm::lookAt(position, position + springArm, Math::Vector(0, 1, 0));
camera.viewMatrix = glm::lookAt(position, position + springArm, Vector(0, 1, 0));
camera.projectionMatrix = glm::perspective(fieldOfView, aspectRatio, 0.1f, 1000.0f);
std::cout << yaw << " " << pitch << std::endl;
}
@@ -96,7 +96,7 @@ void ViewportControl::mouseButtonCallback(MouseButton button, InputAction action
}
}
void ViewportControl::viewportResize(Math::URect dimensions)
void ViewportControl::viewportResize(URect dimensions)
{
aspectRatio = static_cast<float>(dimensions.size.x) / dimensions.size.y;
}
+4 -4
View File
@@ -8,16 +8,16 @@ namespace Seele
class ViewportControl
{
public:
ViewportControl(const Math::URect& viewportDimensions, Math::Vector initialPos /*TODO: configurable initial rotations*/);
ViewportControl(const URect& viewportDimensions, Vector initialPos /*TODO: configurable initial rotations*/);
~ViewportControl();
void update(Component::Camera& camera, float deltaTime);
void keyCallback(KeyCode key, InputAction action);
void mouseMoveCallback(double xPos, double yPos);
void mouseButtonCallback(MouseButton button, InputAction action);
void viewportResize(Math::URect dimensions);
void viewportResize(URect dimensions);
private:
Math::Vector position;
Math::Vector springArm;
Vector position;
Vector springArm;
float fieldOfView;
float aspectRatio;
StaticArray<bool, static_cast<size_t>(KeyCode::KEY_LAST)> keys;
+4 -8
View File
@@ -6,7 +6,7 @@ using namespace Seele;
Actor::Actor(PScene scene)
: Entity(scene)
{
scene->attachComponent<Component::Transform>(identifier);
attachComponent<Component::Transform>();
}
Actor::~Actor()
@@ -32,13 +32,9 @@ void Actor::removeChild(PActor child)
children.remove(children.find(child), false);
child->setParent(nullptr);
}
const Component::Transform& Actor::getTransform() const
Component::Transform& Actor::getTransform()
{
return scene->accessComponent<Component::Transform>(identifier);
return accessComponent<Component::Transform>();
}
//Component::Transform& Actor::getTransform()
//{
// return scene->accessComponent<Component::Transform>(identifier);
//}
+1 -2
View File
@@ -18,8 +18,7 @@ public:
void removeChild(PActor child);
Array<PActor> getChildren();
// Returns a read-only copy of the actors transform
const Component::Transform& getTransform() const;
Component::Transform& getTransform();
protected:
//Component::Transform& getTransform();
+4 -4
View File
@@ -6,8 +6,8 @@ using namespace Seele;
CameraActor::CameraActor(PScene scene)
: Actor(scene)
{
scene->attachComponent<Component::Camera>(identifier);
scene->accessComponent<Component::Transform>(identifier).setRelativeLocation(Math::Vector(10, 5, 14));
attachComponent<Component::Camera>();
attachComponent<Component::Transform>().setRelativeLocation(Vector(10, 5, 14));
}
CameraActor::~CameraActor()
@@ -16,10 +16,10 @@ CameraActor::~CameraActor()
Component::Camera& CameraActor::getCameraComponent()
{
return scene->accessComponent<Component::Camera>(identifier);
return accessComponent<Component::Camera>();
}
const Component::Camera& CameraActor::getCameraComponent() const
{
return scene->accessComponent<Component::Camera>(identifier);
return accessComponent<Component::Camera>();
}
+1 -1
View File
@@ -11,5 +11,5 @@ Entity::Entity(PScene scene)
Entity::~Entity()
{
scene->destroyEntity(identifier);
}
+12 -2
View File
@@ -13,9 +13,19 @@ public:
virtual ~Entity();
template<typename Component, typename... Args>
Component& attachComponent(Args... args)
Component& attachComponent(Args&&... args)
{
return scene->attachComponent<Component>(identifier, args...);
return scene->attachComponent<Component>(identifier, std::forward<Args>(args)...);
}
template<typename Component>
Component& accessComponent()
{
return scene->accessComponent<Component>(identifier);
}
template<typename Component>
const Component& accessComponent() const
{
return scene->accessComponent<Component>(identifier);
}
protected:
PScene scene;
+95 -44
View File
@@ -2,18 +2,20 @@
#include "MeshAsset.h"
#include "FontAsset.h"
#include "TextureAsset.h"
#include "MaterialAsset.h"
#include "FontLoader.h"
#include "TextureLoader.h"
#include "MaterialLoader.h"
#include "MeshLoader.h"
#include "Material/MaterialAsset.h"
#include "Graphics/Mesh.h"
#include "Graphics/Graphics.h"
#include "Window/WindowManager.h"
#include "MeshAsset.h"
#include <nlohmann/json.hpp>
#include <iostream>
using namespace Seele;
using json = nlohmann::json;
AssetRegistry::~AssetRegistry()
{
@@ -25,6 +27,11 @@ void AssetRegistry::init(const std::string& rootFolder)
}
void AssetRegistry::importFile(const std::string &filePath)
{
importFile(filePath, "");
}
void AssetRegistry::importFile(const std::string &filePath, const std::string& importPath)
{
std::filesystem::path fsPath = std::filesystem::path(filePath);
std::string extension = fsPath.extension().string();
@@ -32,43 +39,78 @@ void AssetRegistry::importFile(const std::string &filePath)
|| extension.compare(".obj") == 0
|| extension.compare(".blend") == 0)
{
get().importMesh(fsPath);
get().importMesh(fsPath, importPath);
}
if (extension.compare(".png") == 0
|| extension.compare(".jpg") == 0)
{
get().importTexture(fsPath);
get().importTexture(fsPath, importPath);
}
if(extension.compare(".ttf") == 0)
{
get().importFont(fsPath);
get().importFont(fsPath, importPath);
}
if (extension.compare(".asset") == 0)
{
get().importMaterial(fsPath);
get().importMaterial(fsPath, importPath);
}
}
PMeshAsset AssetRegistry::findMesh(const std::string &filePath)
{
auto it = get().meshes.find(filePath);
assert(it != get().meshes.end());
AssetFolder& folder = get().assetRoot;
std::string fileName = filePath;
size_t slashLoc = filePath.rfind("/");
if(slashLoc != -1)
{
folder = get().getOrCreateFolder(filePath.substr(0, slashLoc));
fileName = filePath.substr(slashLoc+1, filePath.size());
}
auto it = folder.meshes.find(fileName);
assert(it != folder.meshes.end());
return it->second;
}
PTextureAsset AssetRegistry::findTexture(const std::string &filePath)
{
return get().textures[filePath];
std::string fileName = filePath;
size_t slashLoc = filePath.rfind("/");
if(slashLoc != -1)
{
AssetFolder& folder = get().getOrCreateFolder(filePath.substr(0, slashLoc));
fileName = filePath.substr(slashLoc+1, filePath.size());
return folder.textures[fileName];
}
else
{
return get().assetRoot.textures[fileName];
}
}
PFontAsset AssetRegistry::findFont(const std::string& name)
PFontAsset AssetRegistry::findFont(const std::string& filePath)
{
return get().fonts[name];
AssetFolder& folder = get().assetRoot;
std::string fileName = filePath;
size_t slashLoc = filePath.rfind("/");
if(slashLoc != -1)
{
folder = get().getOrCreateFolder(filePath.substr(0, slashLoc));
fileName = filePath.substr(slashLoc+1, filePath.size());
}
return folder.fonts[fileName];
}
PMaterialAsset AssetRegistry::findMaterial(const std::string &filePath)
{
return get().materials[filePath];
AssetFolder& folder = get().assetRoot;
std::string fileName = filePath;
size_t slashLoc = filePath.rfind("/");
if(slashLoc != -1)
{
folder = get().getOrCreateFolder(filePath.substr(0, slashLoc));
fileName = filePath.substr(slashLoc+1, filePath.size());
}
return folder.materials[fileName];
}
std::ofstream AssetRegistry::createWriteStream(const std::string& relativePath, std::ios_base::openmode openmode)
@@ -106,56 +148,65 @@ std::string AssetRegistry::getRootFolder()
return get().rootFolder.generic_string();
}
void AssetRegistry::importMesh(const std::filesystem::path &filePath)
void AssetRegistry::importMesh(const std::filesystem::path &filePath, const std::string& importPath)
{
meshLoader->importAsset(filePath);
meshLoader->importAsset(filePath, importPath);
}
void AssetRegistry::importTexture(const std::filesystem::path &filePath)
void AssetRegistry::importTexture(const std::filesystem::path &filePath, const std::string& importPath)
{
textureLoader->importAsset(filePath);
textureLoader->importAsset(filePath, importPath);
}
void AssetRegistry::importFont(const std::filesystem::path& filePath)
void AssetRegistry::importFont(const std::filesystem::path& filePath, const std::string& importPath)
{
fontLoader->importAsset(filePath);
fontLoader->importAsset(filePath, importPath);
}
void AssetRegistry::importMaterial(const std::filesystem::path &filePath)
void AssetRegistry::importMaterial(const std::filesystem::path &filePath, const std::string& importPath)
{
materialLoader->importAsset(filePath);
materialLoader->importAsset(filePath, importPath);
}
void AssetRegistry::registerMesh(PMeshAsset mesh)
void AssetRegistry::registerMesh(PMeshAsset mesh, const std::string& importPath)
{
PMeshAsset existingMesh = meshes[mesh->getFileName()];
if(existingMesh != nullptr)
AssetFolder& folder = getOrCreateFolder(importPath);
folder.meshes[mesh->getFileName()] = mesh;
}
void AssetRegistry::registerTexture(PTextureAsset texture, const std::string& importPath)
{
AssetFolder& folder = getOrCreateFolder(importPath);
folder.textures[texture->getFileName()] = texture;
}
void AssetRegistry::registerFont(PFontAsset font, const std::string& importPath)
{
AssetFolder& folder = getOrCreateFolder(importPath);
folder.fonts[font->getFileName()] = font;
}
void AssetRegistry::registerMaterial(PMaterialAsset material, const std::string& importPath)
{
AssetFolder& folder = getOrCreateFolder(importPath);
folder.materials[material->getFileName()] = material;
}
AssetRegistry::AssetFolder& AssetRegistry::getOrCreateFolder(std::string fullPath)
{
AssetFolder& result = assetRoot;
while(!fullPath.empty())
{
auto newMeshes = mesh->getMeshes();
for(uint32 i = 0; i < newMeshes.size(); ++i)
size_t slashLoc = fullPath.find("/");
if(slashLoc == -1)
{
existingMesh->addMesh(newMeshes[i]);
return result.children[fullPath];
}
std::string folderName = fullPath.substr(0, slashLoc);
result = result.children[folderName];
fullPath = fullPath.substr(slashLoc+1, fullPath.size());
}
else
{
meshes[mesh->getFileName()] = mesh;
}
}
void AssetRegistry::registerTexture(PTextureAsset texture)
{
textures[texture->getFileName()] = texture;
}
void AssetRegistry::registerFont(PFontAsset font)
{
fonts[font->getFileName()] = font;
}
void AssetRegistry::registerMaterial(PMaterialAsset material)
{
materials[material->getFileName()] = material;
return result;
}
std::ofstream AssetRegistry::internalCreateWriteStream(const std::string& relativePath, std::ios_base::openmode openmode)
+28 -20
View File
@@ -1,7 +1,6 @@
#pragma once
#include "MinimalEngine.h"
#include "Asset.h"
#include "Material/MaterialAsset.h"
#include <string>
#include <map>
@@ -25,6 +24,7 @@ public:
static std::string getRootFolder();
static void importFile(const std::string& filePath);
static void importFile(const std::string& filePath, const std::string& importPath);
static PMeshAsset findMesh(const std::string& filePath);
static PTextureAsset findTexture(const std::string& filePath);
@@ -34,30 +34,38 @@ public:
static std::ofstream createWriteStream(const std::string& relativePath, std::ios_base::openmode openmode = std::ios::out);
static std::ifstream createReadStream(const std::string& relativePath, std::ios_base::openmode openmode = std::ios::in);
private:
static AssetRegistry& get();
AssetRegistry();
void init(const std::filesystem::path& rootFolder, Gfx::PGraphics graphics);
void importMesh(const std::filesystem::path& filePath);
void importTexture(const std::filesystem::path& filePath);
void importFont(const std::filesystem::path& filePath);
void importMaterial(const std::filesystem::path& filePath);
void registerMesh(PMeshAsset mesh);
void registerTexture(PTextureAsset texture);
void registerFont(PFontAsset font);
void registerMaterial(PMaterialAsset material);
std::ofstream internalCreateWriteStream(const std::string& relativePath, std::ios_base::openmode openmode = std::ios::out);
std::ifstream internalCreateReadStream(const std::string& relaitvePath, std::ios_base::openmode openmode = std::ios::in);
std::filesystem::path rootFolder;
struct AssetFolder
{
std::map<std::string, AssetFolder> children;
//Todo: Seele::Map doesn't really work with strings for some reason, so just use std::map for now
std::map<std::string, PTextureAsset> textures;
std::map<std::string, PFontAsset> fonts;
std::map<std::string, PMeshAsset> meshes;
std::map<std::string, PMaterialAsset> materials;
};
static AssetRegistry& get();
AssetRegistry();
void init(const std::filesystem::path& rootFolder, Gfx::PGraphics graphics);
void importMesh(const std::filesystem::path& filePath, const std::string& importPath);
void importTexture(const std::filesystem::path& filePath, const std::string& importPath);
void importFont(const std::filesystem::path& filePath, const std::string& importPath);
void importMaterial(const std::filesystem::path& filePath, const std::string& importPath);
void registerMesh(PMeshAsset mesh, const std::string& importPath);
void registerTexture(PTextureAsset texture, const std::string& importPath);
void registerFont(PFontAsset font, const std::string& importPath);
void registerMaterial(PMaterialAsset material, const std::string& importPath);
AssetFolder& getOrCreateFolder(std::string foldername);
std::ofstream internalCreateWriteStream(const std::string& relativePath, std::ios_base::openmode openmode = std::ios::out);
std::ifstream internalCreateReadStream(const std::string& relaitvePath, std::ios_base::openmode openmode = std::ios::in);
std::filesystem::path rootFolder;
AssetFolder assetRoot;
UPTextureLoader textureLoader;
UPFontLoader fontLoader;
UPMeshLoader meshLoader;
+6
View File
@@ -8,6 +8,10 @@ target_sources(Engine
FontAsset.cpp
FontLoader.h
FontLoader.cpp
MaterialAsset.h
MaterialAsset.cpp
MaterialInstanceAsset.h
MaterialInstanceAsset.cpp
MaterialLoader.h
MaterialLoader.cpp
MeshAsset.h
@@ -26,6 +30,8 @@ target_sources(Engine
AssetRegistry.h
FontAsset.h
FontLoader.h
MaterialAsset.h
MaterialInstanceAsset.h
MaterialLoader.h
MeshAsset.h
MeshLoader.h
+2 -2
View File
@@ -52,8 +52,8 @@ void FontAsset::load()
continue;
}
Glyph& glyph = glyphs[c];
glyph.size = Math::IVector2(face->glyph->bitmap.width, face->glyph->bitmap.rows);
glyph.bearing = Math::IVector2(face->glyph->bitmap_left, face->glyph->bitmap_top);
glyph.size = IVector2(face->glyph->bitmap.width, face->glyph->bitmap.rows);
glyph.bearing = IVector2(face->glyph->bitmap_left, face->glyph->bitmap_top);
glyph.advance = face->glyph->advance.x;
TextureCreateInfo imageData;
imageData.format = Gfx::SE_FORMAT_R8_UINT;
+2 -2
View File
@@ -17,8 +17,8 @@ public:
struct Glyph
{
Gfx::PTexture2D texture;
Math::IVector2 size;
Math::IVector2 bearing;
IVector2 size;
IVector2 bearing;
uint32 advance;
};
const std::map<uint32, Glyph> getGlyphData() const { return glyphs; }
+2 -3
View File
@@ -15,7 +15,7 @@ FontLoader::~FontLoader()
{
}
void FontLoader::importAsset(const std::filesystem::path& filePath)
void FontLoader::importAsset(const std::filesystem::path& filePath, const std::string& importPath)
{
std::filesystem::path assetPath = filePath.filename();
assetPath.replace_extension("asset");
@@ -23,12 +23,11 @@ void FontLoader::importAsset(const std::filesystem::path& filePath)
std::error_code code;
std::filesystem::copy_file(filePath, asset->getFullPath(), code);
asset->setStatus(Asset::Status::Loading);
AssetRegistry::get().registerFont(asset);
AssetRegistry::get().registerFont(asset, importPath);
import(filePath, asset);
}
void FontLoader::import(std::filesystem::path path, PFontAsset asset)
{
asset->load();
AssetRegistry::get().registerFont(asset);
}
+1 -1
View File
@@ -12,7 +12,7 @@ class FontLoader
public:
FontLoader(Gfx::PGraphics graphic);
~FontLoader();
void importAsset(const std::filesystem::path& filePath);
void importAsset(const std::filesystem::path& filePath, const std::string& importPath);
private:
void import(std::filesystem::path path, PFontAsset asset);
Gfx::PGraphics graphics;
+41
View File
@@ -0,0 +1,41 @@
#include "MaterialAsset.h"
#include "Material/Material.h"
using namespace Seele;
MaterialAsset::MaterialAsset()
{
}
MaterialAsset::MaterialAsset(const std::string& directory, const std::string& name)
: Asset(directory, name)
{
}
MaterialAsset::MaterialAsset(const std::filesystem::path& fullPath)
: Asset(fullPath)
{
}
MaterialAsset::~MaterialAsset()
{
}
void MaterialAsset::save()
{
}
void MaterialAsset::load()
{
}
void MaterialAsset::beginFrame()
{
}
void MaterialAsset::endFrame()
{
}
+24
View File
@@ -0,0 +1,24 @@
#pragma once
#include "Asset.h"
namespace Seele
{
DECLARE_REF(Material)
class MaterialAsset : public Asset
{
public:
MaterialAsset();
MaterialAsset(const std::string &directory, const std::string &name);
MaterialAsset(const std::filesystem::path &fullPath);
virtual ~MaterialAsset();
virtual void beginFrame();
virtual void endFrame();
virtual void save() override;
virtual void load() override;
PMaterial getMaterial() const { return material; }
private:
PMaterial material;
friend class MaterialLoader;
};
DEFINE_REF(MaterialAsset)
} // namespace Seele
@@ -0,0 +1,32 @@
#include "MaterialInstanceAsset.h"
#include "Material/MaterialInstance.h"
#include "Material/Material.h"
using namespace Seele;
MaterialInstanceAsset::MaterialInstanceAsset()
{
}
MaterialInstanceAsset::MaterialInstanceAsset(const std::string& directory, const std::string& name)
: Asset(directory, name)
{
}
MaterialInstanceAsset::MaterialInstanceAsset(const std::filesystem::path& fullPath)
: Asset(fullPath)
{
}
MaterialInstanceAsset::~MaterialInstanceAsset()
{
}
void MaterialInstanceAsset::save()
{
}
void MaterialInstanceAsset::load()
{
}
+22
View File
@@ -0,0 +1,22 @@
#pragma once
#include "Asset.h"
#include "Material/MaterialInstance.h"
namespace Seele
{
class MaterialInstanceAsset : public Asset
{
public:
MaterialInstanceAsset();
MaterialInstanceAsset(const std::string &directory, const std::string &name);
MaterialInstanceAsset(const std::filesystem::path &fullPath);
virtual ~MaterialInstanceAsset();
virtual void beginFrame();
virtual void endFrame();
virtual void save() override;
virtual void load() override;
private:
PMaterialInstance material;
};
DEFINE_REF(MaterialInstanceAsset)
} // namespace Seele
+114 -10
View File
@@ -1,37 +1,141 @@
#include "MaterialLoader.h"
#include "Graphics/Graphics.h"
#include "Material/MaterialAsset.h"
#include "MaterialAsset.h"
#include "AssetRegistry.h"
#include "Material/Material.h"
#include "Material/BRDF.h"
#include "Window/WindowManager.h"
#include "Material/ShaderExpression.h"
#include "TextureAsset.h"
#include <nlohmann/json.hpp>
using namespace Seele;
using json = nlohmann::json;
MaterialLoader::MaterialLoader(Gfx::PGraphics graphics)
: graphics(graphics)
{
placeholderMaterial = new MaterialAsset(std::filesystem::absolute("./shaders/Placeholder.asset"));
placeholderMaterial->load();
graphics->getShaderCompiler()->registerMaterial(placeholderMaterial);
importAsset(std::filesystem::absolute("./shaders/Placeholder.asset"), "");
}
MaterialLoader::~MaterialLoader()
{
}
void MaterialLoader::importAsset(const std::filesystem::path& name)
void MaterialLoader::importAsset(const std::filesystem::path& name, const std::string& importPath)
{
std::filesystem::path assetPath = name.filename();
assetPath.replace_extension("asset");
PMaterialAsset asset = new MaterialAsset(assetPath.generic_string());
asset->setStatus(Asset::Status::Loading);
AssetRegistry::get().registerMaterial(asset);
AssetRegistry::get().registerMaterial(asset, importPath);
import(name, asset);
}
void MaterialLoader::import(std::filesystem::path, PMaterialAsset asset)
void MaterialLoader::import(std::filesystem::path name, PMaterialAsset asset)
{
asset->load();
graphics->getShaderCompiler()->registerMaterial(asset);
AssetRegistry::get().registerMaterial(asset);
auto stream = std::ifstream(name.c_str());
json j;
stream >> j;
std::string materialName = j["name"].get<std::string>() + "Material";
Gfx::PDescriptorLayout layout = WindowManager::getGraphics()->createDescriptorLayout(materialName + "Layout");
//Shader file needs to conform to the slang standard, which prohibits _
materialName.erase(std::remove(materialName.begin(), materialName.end(), '_'), materialName.end());
materialName.erase(std::remove(materialName.begin(), materialName.end(), '.'), materialName.end());
std::ofstream codeStream("./shaders/generated/"+materialName+".slang");
std::string profile = j["profile"].get<std::string>();
codeStream << "import Material;" << std::endl;
codeStream << "import BRDF;" << std::endl;
codeStream << "import MaterialParameter;" << std::endl << std::endl;
codeStream << "struct " << materialName << " : IMaterial {" << std::endl;
uint32 uniformBufferOffset = 0;
uint32 bindingCounter = 0; // Uniform buffers are always binding 0
uint32 uniformBinding = -1;
Array<PShaderParameter> parameters;
for(auto param : j["params"].items())
{
std::string type = param.value()["type"].get<std::string>();
auto defaultValue = param.value().find("default");
// TODO: ALIGNMENT RULES
if(type.compare("float") == 0)
{
PFloatParameter p = new FloatParameter(param.key(), uniformBufferOffset, 0);
codeStream << "\tlayout(offset = " << uniformBufferOffset << ")";
if(uniformBinding == -1)
{
layout->addDescriptorBinding(bindingCounter, Gfx::SE_DESCRIPTOR_TYPE_UNIFORM_BUFFER);
uniformBinding = bindingCounter++;
}
uniformBufferOffset += 4;
if(defaultValue != param.value().end())
{
p->data = std::stof(defaultValue.value().get<std::string>());
}
parameters.add(p);
}
// TODO: ALIGNMENT RULES
else if(type.compare("float3") == 0)
{
PVectorParameter p = new VectorParameter(param.key(), uniformBufferOffset, 0);
codeStream << "\tlayout(offset = " << uniformBufferOffset << ")";
if(uniformBinding == -1)
{
layout->addDescriptorBinding(bindingCounter, Gfx::SE_DESCRIPTOR_TYPE_UNIFORM_BUFFER);
uniformBinding = bindingCounter++;
}
uniformBufferOffset += 12;
if(defaultValue != param.value().end())
{
p->data = parseVector(defaultValue.value().get<std::string>().c_str());
}
parameters.add(p);
}
else if(type.compare("Texture2D") == 0)
{
PTextureParameter p = new TextureParameter(param.key(), 0, bindingCounter);
layout->addDescriptorBinding(bindingCounter++, Gfx::SE_DESCRIPTOR_TYPE_SAMPLED_IMAGE);
if(defaultValue != param.value().end())
{
std::string defaultString = defaultValue.value().get<std::string>();
p->data = AssetRegistry::findTexture(defaultString);
}
if(p->data == nullptr)
{
p->data = AssetRegistry::findTexture(""); // this will return placeholder texture
}
parameters.add(p);
}
else if(type.compare("SamplerState") == 0)
{
PSamplerParameter p = new SamplerParameter(param.key(), 0, bindingCounter);
layout->addDescriptorBinding(bindingCounter++, Gfx::SE_DESCRIPTOR_TYPE_SAMPLER);
p->data = WindowManager::getGraphics()->createSamplerState({});
parameters.add(p);
}
else
{
std::cout << "Error unsupported parameter type" << std::endl;
}
codeStream << "\t" << type << " " << param.key() << ";\n";
}
uint32 uniformDataSize = uniformBufferOffset;
BRDF* brdf = BRDF::getBRDFByName(profile);
brdf->generateMaterialCode(codeStream, j["code"]);
codeStream << "};";
codeStream.close();
layout->create();
asset->material = new Material(
std::move(parameters),
std::move(layout),
uniformDataSize,
uniformBinding,
materialName
);
graphics->getShaderCompiler()->registerMaterial(asset->material);
asset->setStatus(Asset::Status::Ready);
////co_return;
}
+1 -1
View File
@@ -12,7 +12,7 @@ class MaterialLoader
public:
MaterialLoader(Gfx::PGraphics graphic);
~MaterialLoader();
void importAsset(const std::filesystem::path& name);
void importAsset(const std::filesystem::path& name, const std::string& importPath);
PMaterialAsset getPlaceHolderMaterial();
private:
void import(std::filesystem::path filePath, PMaterialAsset asset);
+1
View File
@@ -1,6 +1,7 @@
#include "MeshAsset.h"
#include "Graphics/Mesh.h"
#include "Graphics/VertexShaderInput.h"
#include "Material/MaterialInterface.h"
using namespace Seele;
+4 -2
View File
@@ -1,10 +1,11 @@
#pragma once
#include "Asset.h"
#include "Component/Collider.h"
namespace Seele
{
DECLARE_REF(Mesh)
DECLARE_REF(MaterialAsset)
DECLARE_REF(MaterialInterface)
class MeshAsset : public Asset
{
public:
@@ -17,8 +18,9 @@ public:
void addMesh(PMesh mesh);
const Array<PMesh> getMeshes();
//Workaround while no editor
Array<PMaterialAsset> referencedMaterials;
Array<PMaterialInterface> referencedMaterials;
Array<PMesh> meshes;
Component::Collider physicsMesh;
};
DEFINE_REF(MeshAsset)
} // namespace Seele
+42 -29
View File
@@ -5,6 +5,7 @@
#include "Graphics/Mesh.h"
#include "Graphics/StaticMeshVertexInput.h"
#include "AssetRegistry.h"
#include "MaterialAsset.h"
#include <fstream>
#include <iostream>
#include <nlohmann/json.hpp>
@@ -26,17 +27,17 @@ MeshLoader::~MeshLoader()
{
}
void MeshLoader::importAsset(const std::filesystem::path &path)
void MeshLoader::importAsset(const std::filesystem::path &path, const std::string& importPath)
{
std::filesystem::path assetPath = path.filename();
assetPath.replace_extension("asset");
PMeshAsset asset = new MeshAsset(assetPath.generic_string());
asset->setStatus(Asset::Status::Loading);
AssetRegistry::get().registerMesh(asset);
AssetRegistry::get().registerMesh(asset, importPath);
import(path, asset);
}
void MeshLoader::loadMaterials(const aiScene* scene, Array<PMaterialAsset>& globalMaterials)
void MeshLoader::loadMaterials(const aiScene* scene, Array<PMaterial>& globalMaterials)
{
using json = nlohmann::json;
for(uint32 i = 0; i < scene->mNumMaterials; ++i)
@@ -92,15 +93,13 @@ void MeshLoader::loadMaterials(const aiScene* scene, Array<PMaterialAsset>& glob
outMatFile.close();
std::cout << "writing json to " << outMatFilename << std::endl;
PMaterialAsset result = new MaterialAsset(outMatFilename);
result->load();
graphics->getShaderCompiler()->registerMaterial(result);
AssetRegistry::get().registerMaterial(result);
PMaterialAsset asset = AssetRegistry::findMaterial(result->getFileName());
globalMaterials[i] = asset;
AssetRegistry::importFile(AssetRegistry::getRootFolder() + "/" + outMatFilename);
PMaterialAsset asset = AssetRegistry::findMaterial(matCode["name"].get<std::string>());
globalMaterials[i] = asset->getMaterial();
}
}
void findMeshRoots(aiNode *node, List<aiNode *> &meshNodes)
{
if (node->mNumMeshes > 0)
@@ -115,61 +114,70 @@ void findMeshRoots(aiNode *node, List<aiNode *> &meshNodes)
}
VertexStreamComponent createVertexStream(uint32 size, aiVector3D* sourceData, Gfx::PGraphics graphics)
{
Array<Math::Vector> buffer(size);
Array<Vector> buffer(size);
for(uint32 i = 0; i < size; ++i)
{
buffer[i] = Math::Vector(sourceData[i].x, sourceData[i].y, sourceData[i].z);
buffer[i] = Vector(sourceData[i].x, sourceData[i].y, sourceData[i].z);
}
VertexBufferCreateInfo vbInfo;
vbInfo.numVertices = size;
vbInfo.vertexSize = sizeof(Math::Vector);
vbInfo.vertexSize = sizeof(Vector);
vbInfo.resourceData.data = (uint8 *)buffer.data();
vbInfo.resourceData.owner = Gfx::QueueType::DEDICATED_TRANSFER;
vbInfo.resourceData.size = sizeof(Math::Vector) * buffer.size();
vbInfo.resourceData.size = sizeof(Vector) * buffer.size();
Gfx::PVertexBuffer vertexBuffer = graphics->createVertexBuffer(vbInfo);
vertexBuffer->transferOwnership(Gfx::QueueType::GRAPHICS);
return VertexStreamComponent(vertexBuffer, 0, vbInfo.vertexSize, Gfx::SE_FORMAT_R32G32B32_SFLOAT);
}
VertexStreamComponent createVertexStream(uint32 size, aiVector2D* sourceData, Gfx::PGraphics graphics)
{
Array<Math::Vector2> buffer(size);
Array<Vector2> buffer(size);
for(uint32 i = 0; i < size; ++i)
{
buffer[i] = Math::Vector2(sourceData[i].x, sourceData[i].y);
buffer[i] = Vector2(sourceData[i].x, sourceData[i].y);
}
VertexBufferCreateInfo vbInfo;
vbInfo.numVertices = size;
vbInfo.vertexSize = sizeof(Math::Vector2);
vbInfo.vertexSize = sizeof(Vector2);
vbInfo.resourceData.data = (uint8 *)buffer.data();
vbInfo.resourceData.owner = Gfx::QueueType::DEDICATED_TRANSFER;
vbInfo.resourceData.size = sizeof(Math::Vector2) * buffer.size();
vbInfo.resourceData.size = sizeof(Vector2) * buffer.size();
Gfx::PVertexBuffer vertexBuffer = graphics->createVertexBuffer(vbInfo);
vertexBuffer->transferOwnership(Gfx::QueueType::GRAPHICS);
return VertexStreamComponent(vertexBuffer, 0, vbInfo.vertexSize, Gfx::SE_FORMAT_R32G32_SFLOAT);
}
VertexStreamComponent createVertexStream(uint32 size, aiColor4D* sourceData, Gfx::PGraphics graphics)
{
Array<Math::Vector4> buffer(size);
Array<Vector4> buffer(size);
for(uint32 i = 0; i < size; ++i)
{
buffer[i] = Math::Vector4(sourceData[i].r, sourceData[i].g, sourceData[i].b, sourceData[i].a);
buffer[i] = Vector4(sourceData[i].r, sourceData[i].g, sourceData[i].b, sourceData[i].a);
}
VertexBufferCreateInfo vbInfo;
vbInfo.numVertices = size;
vbInfo.vertexSize = sizeof(Math::Vector4);
vbInfo.vertexSize = sizeof(Vector4);
vbInfo.resourceData.data = (uint8 *)buffer.data();
vbInfo.resourceData.owner = Gfx::QueueType::DEDICATED_TRANSFER;
vbInfo.resourceData.size = sizeof(Math::Vector4) * buffer.size();
vbInfo.resourceData.size = sizeof(Vector4) * buffer.size();
Gfx::PVertexBuffer vertexBuffer = graphics->createVertexBuffer(vbInfo);
vertexBuffer->transferOwnership(Gfx::QueueType::GRAPHICS);
return VertexStreamComponent(vertexBuffer, 0, vbInfo.vertexSize, Gfx::SE_FORMAT_R32G32_SFLOAT);
return VertexStreamComponent(vertexBuffer, 0, vbInfo.vertexSize, Gfx::SE_FORMAT_R32G32B32A32_SFLOAT);
}
void MeshLoader::loadGlobalMeshes(const aiScene* scene, Array<PMesh>& globalMeshes, const Array<PMaterialAsset>& materials)
void MeshLoader::loadGlobalMeshes(const aiScene* scene, const Array<PMaterial>& materials, Array<PMesh>& globalMeshes, Component::Collider& collider)
{
for (uint32 meshIndex = 0; meshIndex < scene->mNumMeshes; ++meshIndex)
{
aiMesh *mesh = scene->mMeshes[meshIndex];
PMaterialAsset material = materials[mesh->mMaterialIndex];
collider.boundingbox.adjust(Vector(mesh->mAABB.mMin.x, mesh->mAABB.mMin.y, mesh->mAABB.mMin.z));
collider.boundingbox.adjust(Vector(mesh->mAABB.mMax.x, mesh->mAABB.mMax.y, mesh->mAABB.mMax.z));
//! \todo duplicate from createVertexStream, clean up
Array<Vector> vertices(mesh->mNumVertices);
for(uint32 i = 0; i < mesh->mNumVertices; ++i)
{
vertices[i] = Vector(mesh->mVertices[i].x, mesh->mVertices[i].y, mesh->mVertices[i].z);
}
PStaticMeshVertexInput vertexShaderInput = new StaticMeshVertexInput(std::string(mesh->mName.C_Str()));
StaticMeshDataType data;
data.positionStream = createVertexStream(mesh->mNumVertices, mesh->mVertices, graphics);
@@ -205,6 +213,9 @@ void MeshLoader::loadGlobalMeshes(const aiScene* scene, Array<PMesh>& globalMesh
indices[faceIndex * 3 + 1] = mesh->mFaces[faceIndex].mIndices[1];
indices[faceIndex * 3 + 2] = mesh->mFaces[faceIndex].mIndices[2];
}
collider.physicsMesh.addCollider(vertices, indices, Matrix4(1.0f));
IndexBufferCreateInfo idxInfo;
idxInfo.indexType = Gfx::SE_INDEX_TYPE_UINT32;
idxInfo.resourceData.data = (uint8 *)indices.data();
@@ -259,22 +270,23 @@ void MeshLoader::import(std::filesystem::path path, PMeshAsset meshAsset)
std::cout << "Starting to import "<<path << std::endl;
meshAsset->setStatus(Asset::Status::Loading);
Assimp::Importer importer;
importer.ReadFile(path.string().c_str(),
importer.ReadFile(path.string().c_str(), (uint32)(
aiProcess_FlipUVs |
aiProcess_Triangulate |
aiProcess_SortByPType |
aiProcess_GenBoundingBoxes |
aiProcess_GenSmoothNormals |
aiProcess_GenUVCoords |
aiProcess_FindDegenerates);
aiProcess_FindDegenerates));
const aiScene *scene = importer.ApplyPostProcessing(aiProcess_CalcTangentSpace);
Array<PMaterialAsset> globalMaterials(scene->mNumMaterials);
Array<PMaterial> globalMaterials(scene->mNumMaterials);
loadTextures(scene, path.parent_path());
loadMaterials(scene, globalMaterials);
Array<PMesh> globalMeshes(scene->mNumMeshes);
loadGlobalMeshes(scene, globalMeshes, globalMaterials);
Component::Collider collider;
loadGlobalMeshes(scene, globalMaterials, globalMeshes, collider);
List<aiNode *> meshNodes;
findMeshRoots(scene->mRootNode, meshNodes);
@@ -286,6 +298,7 @@ void MeshLoader::import(std::filesystem::path path, PMeshAsset meshAsset)
meshAsset->addMesh(globalMeshes[meshNode->mMeshes[i]]);
}
}
meshAsset->physicsMesh = std::move(collider);
meshAsset->setStatus(Asset::Status::Ready);
meshAsset->save();
std::cout << "Finished loading " << path << std::endl;
+5 -4
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@@ -1,6 +1,7 @@
#pragma once
#include "MinimalEngine.h"
#include "Containers/List.h"
#include "Component/Collider.h"
#include <filesystem>
struct aiScene;
@@ -9,18 +10,18 @@ namespace Seele
{
DECLARE_REF(Mesh)
DECLARE_REF(MeshAsset)
DECLARE_REF(MaterialAsset)
DECLARE_REF(Material)
DECLARE_NAME_REF(Gfx, Graphics)
class MeshLoader
{
public:
MeshLoader(Gfx::PGraphics graphic);
~MeshLoader();
void importAsset(const std::filesystem::path& filePath);
void importAsset(const std::filesystem::path& filePath, const std::string& importPath);
private:
void loadMaterials(const aiScene* scene, Array<PMaterialAsset>& globalMaterials);
void loadMaterials(const aiScene* scene, Array<PMaterial>& globalMaterials);
void loadTextures(const aiScene* scene, const std::filesystem::path& meshPath);
void loadGlobalMeshes(const aiScene* scene, Array<PMesh>& globalMeshes, const Array<PMaterialAsset>& materials);
void loadGlobalMeshes(const aiScene* scene, const Array<PMaterial>& materials, Array<PMesh>& globalMeshes, Component::Collider& collider);
void convertAssimpARGB(unsigned char* dst, aiTexel* src, uint32 numPixels);
void import(std::filesystem::path path, PMeshAsset meshAsset);
+1
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@@ -1,3 +1,4 @@
#pragma once
#include "Asset.h"
namespace Seele
+3 -3
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@@ -16,21 +16,21 @@ TextureLoader::TextureLoader(Gfx::PGraphics graphics)
{
placeholderAsset = new TextureAsset(std::filesystem::absolute("./textures/placeholder.ktx"));
placeholderAsset->load();
AssetRegistry::get().textures[""] = placeholderAsset;
AssetRegistry::get().assetRoot.textures[""] = placeholderAsset;
}
TextureLoader::~TextureLoader()
{
}
void TextureLoader::importAsset(const std::filesystem::path& path)
void TextureLoader::importAsset(const std::filesystem::path& path, const std::string& importPath)
{
std::filesystem::path assetPath = path.filename();
assetPath.replace_extension("asset");
PTextureAsset asset = new TextureAsset(assetPath.generic_string());
asset->setStatus(Asset::Status::Loading);
asset->setTexture(placeholderAsset->getTexture());
AssetRegistry::get().registerTexture(asset);
AssetRegistry::get().registerTexture(asset, importPath);
import(path, asset);
}
+1 -1
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@@ -13,7 +13,7 @@ class TextureLoader
public:
TextureLoader(Gfx::PGraphics graphic);
~TextureLoader();
void importAsset(const std::filesystem::path& filePath);
void importAsset(const std::filesystem::path& filePath, const std::string& importPath);
PTextureAsset getPlaceholderTexture();
private:
void import(std::filesystem::path path, PTextureAsset asset);
+70 -22
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@@ -2,16 +2,64 @@
#include "Math/Vector.h"
#include "Math/Matrix.h"
#include "Containers/Array.h"
#include "Graphics/DebugVertex.h"
namespace Seele
{
struct AABB
{
Math::Vector min = Math::Vector(std::numeric_limits<float>::max());
Math::Vector max = Math::Vector(std::numeric_limits<float>::min());
Vector min = Vector(std::numeric_limits<float>::max());
Vector max = Vector(std::numeric_limits<float>::lowest());// cause of reasons
void visualize(Array<DebugVertex>& vertices) const
{
StaticArray<DebugVertex, 8> corners;
corners[0] = DebugVertex { .position = Vector(min.x, min.y, min.z), .color = Vector(0, 1, 0) };
corners[1] = DebugVertex { .position = Vector(min.x, min.y, max.z), .color = Vector(0, 1, 0) };
corners[2] = DebugVertex { .position = Vector(min.x, max.y, min.z), .color = Vector(0, 1, 0) };
corners[3] = DebugVertex { .position = Vector(min.x, max.y, max.z), .color = Vector(0, 1, 0) };
corners[4] = DebugVertex { .position = Vector(max.x, min.y, min.z), .color = Vector(0, 1, 0) };
corners[5] = DebugVertex { .position = Vector(max.x, min.y, max.z), .color = Vector(0, 1, 0) };
corners[6] = DebugVertex { .position = Vector(max.x, max.y, min.z), .color = Vector(0, 1, 0) };
corners[7] = DebugVertex { .position = Vector(max.x, max.y, max.z), .color = Vector(0, 1, 0) };
vertices.add(corners[0]);
vertices.add(corners[1]);
vertices.add(corners[1]);
vertices.add(corners[3]);
vertices.add(corners[2]);
vertices.add(corners[3]);
vertices.add(corners[0]);
vertices.add(corners[2]);
vertices.add(corners[0]);
vertices.add(corners[4]);
vertices.add(corners[1]);
vertices.add(corners[5]);
vertices.add(corners[2]);
vertices.add(corners[6]);
vertices.add(corners[3]);
vertices.add(corners[7]);
vertices.add(corners[4]);
vertices.add(corners[5]);
vertices.add(corners[5]);
vertices.add(corners[7]);
vertices.add(corners[6]);
vertices.add(corners[7]);
vertices.add(corners[4]);
vertices.add(corners[6]);
}
float surfaceArea() const
{
Math::Vector d = max - min;
Vector d = max - min;
return 2.0f * (d.x * d.y + d.y * d.z + d.z * d.x);
}
bool intersects(const AABB& other) const
@@ -52,31 +100,31 @@ struct AABB
}
return true;
}
AABB getTransformedBox(const Math::Matrix4& matrix) const
AABB getTransformedBox(const Matrix4& matrix) const
{
StaticArray<Math::Vector, 8> corners;
corners[0] = Math::Vector(min.x, min.y, min.z);
corners[1] = Math::Vector(min.x, min.y, max.z);
corners[2] = Math::Vector(min.x, max.y, min.z);
corners[3] = Math::Vector(min.x, max.y, max.z);
corners[4] = Math::Vector(max.x, min.y, min.z);
corners[5] = Math::Vector(max.x, min.y, max.z);
corners[6] = Math::Vector(max.x, max.y, min.z);
corners[7] = Math::Vector(max.x, max.y, max.z);
Math::Vector tmin = Math::Vector(1, 1, 1) * std::numeric_limits<float>::max();
Math::Vector tmax = Math::Vector(1, 1, 1) * std::numeric_limits<float>::min();
StaticArray<Vector, 8> corners;
corners[0] = Vector(min.x, min.y, min.z);
corners[1] = Vector(min.x, min.y, max.z);
corners[2] = Vector(min.x, max.y, min.z);
corners[3] = Vector(min.x, max.y, max.z);
corners[4] = Vector(max.x, min.y, min.z);
corners[5] = Vector(max.x, min.y, max.z);
corners[6] = Vector(max.x, max.y, min.z);
corners[7] = Vector(max.x, max.y, max.z);
Vector tmin = Vector(1, 1, 1) * std::numeric_limits<float>::max();
Vector tmax = Vector(1, 1, 1) * std::numeric_limits<float>::lowest();
for(int i = 0; i < 8; ++i)
{
Math::Vector transformed = matrix * Math::Vector4(corners[i], 1.0f);
tmin = Math::Vector(std::min(tmin.x, transformed.x), std::min(tmin.y, transformed.y), std::min(tmin.z, transformed.z));
tmax = Math::Vector(std::max(tmax.x, transformed.x), std::max(tmax.y, transformed.y), std::max(tmax.z, transformed.z));
Vector transformed = matrix * Vector4(corners[i], 1.0f);
tmin = Vector(std::min(tmin.x, transformed.x), std::min(tmin.y, transformed.y), std::min(tmin.z, transformed.z));
tmax = Vector(std::max(tmax.x, transformed.x), std::max(tmax.y, transformed.y), std::max(tmax.z, transformed.z));
}
return AABB {
.min = tmin,
.max = tmax,
};
}
void adjust(const Math::Vector vertex)
void adjust(const Vector vertex)
{
min.x = std::min(min.x, vertex.x);
min.y = std::min(min.y, vertex.y);
@@ -89,12 +137,12 @@ struct AABB
AABB combine(const AABB& other) const
{
return AABB {
.min = Math::Vector(
.min = Vector(
std::min(min.x, other.min.x),
std::min(min.y, other.min.y),
std::min(min.z, other.min.z)
),
.max = Math::Vector (
.max = Vector (
std::max(max.x, other.max.x),
std::max(max.y, other.max.y),
std::max(max.z, other.max.z)
+4 -4
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@@ -15,14 +15,14 @@ struct Camera
Camera();
~Camera();
Math::Matrix4 getViewMatrix() const
Matrix4 getViewMatrix() const
{
assert (!bNeedsViewBuild);
return viewMatrix;
}
Math::Vector getCameraPosition() const
Vector getCameraPosition() const
{
return Math::Vector(viewMatrix[3]);
return Vector(viewMatrix[3]);
}
void setViewport(Gfx::PViewport viewport);
void mouseMove(float deltaX, float deltaY);
@@ -30,7 +30,7 @@ struct Camera
void moveX(float amount);
void moveY(float amount);
void buildViewMatrix();
Math::Matrix4 viewMatrix;
Matrix4 viewMatrix;
//Transforms relative to actor
float yaw;
float pitch;
+1 -1
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@@ -13,7 +13,7 @@ enum class ColliderType
};
struct Collider
{
ColliderType type;
ColliderType type = ColliderType::STATIC;
AABB boundingbox;
ShapeBase physicsMesh;
Collider transform(const Transform& transform) const;
+4 -4
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@@ -8,10 +8,10 @@ namespace Component
struct RigidBody
{
float mass = 1.0f;
Math::Vector force;
Math::Vector torque;
Math::Vector linearMomentum;
Math::Vector angularMomentum;
Vector force;
Vector torque;
Vector linearMomentum;
Vector angularMomentum;
};
} // namespace Component
} // namespace Seele
+54 -12
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@@ -1,4 +1,5 @@
#include "ShapeBase.h"
#include "AABB.h"
using namespace Seele;
using namespace Seele::Component;
@@ -20,13 +21,13 @@ struct ComputationState
/* volume integrals */
float T0;
Math::Vector T1, T2, TP;
Vector T1, T2, TP;
};
struct Face
{
StaticArray<Math::Vector, 3> vertices;
Math::Vector normal;
StaticArray<Vector, 3> vertices;
Vector normal;
float w;
};
@@ -126,7 +127,7 @@ void computeFaceIntegrals(Face& f, ComputationState& state)
+ w * (2 * (n[state.A] * state.Paa + n[state.B] * state.Pab) + w * state.Pa));
}
void computeVolumeIntegrals(const Array<Math::Vector> vertices, const Array<uint32>& indices, ComputationState& state)
void computeVolumeIntegrals(const Array<Vector> vertices, const Array<uint32>& indices, ComputationState& state)
{
std::memset(&state, 0, sizeof(ComputationState));
for (size_t i = 0; i < indices.size(); i+=3)
@@ -138,8 +139,8 @@ void computeVolumeIntegrals(const Array<Math::Vector> vertices, const Array<uint
vertices[indices[i+2]],
};
Math::Vector e1 = f.vertices[2] - f.vertices[0];
Math::Vector e2 = f.vertices[1] - f.vertices[0];
Vector e1 = f.vertices[2] - f.vertices[0];
Vector e2 = f.vertices[1] - f.vertices[0];
f.normal = glm::normalize(glm::cross(e1, e2));
f.w = - f.normal.x * f.vertices[0].x
- f.normal.y * f.vertices[0].y
@@ -171,13 +172,13 @@ void computeVolumeIntegrals(const Array<Math::Vector> vertices, const Array<uint
state.TP /= 2.0f;
}
void computePhysicsParamsForMesh(Array<Math::Vector>& vertices, const Array<uint32_t>& indices, Math::Matrix3& bodyInertia, Math::Vector& centerOfMass, float& mass)
void computePhysicsParamsForMesh(Array<Vector>& vertices, const Array<uint32_t>& indices, Matrix3& bodyInertia, Vector& centerOfMass, float& mass)
{
ComputationState state;
computeVolumeIntegrals(vertices, indices, state);
float density = 1;
mass = density * state.T0;
Math::Vector r = state.T1 / state.T0;
Vector r = state.T1 / state.T0;
centerOfMass = r;
bodyInertia[0][0] = density * (state.T2.y + state.T2.z);
bodyInertia[1][1] = density * (state.T2.z + state.T2.x);
@@ -194,7 +195,12 @@ void computePhysicsParamsForMesh(Array<Math::Vector>& vertices, const Array<uint
bodyInertia[2][1] = bodyInertia[1][2] += mass * r.z * r.x;
}
ShapeBase::ShapeBase(Array<Math::Vector> vertices, Array<uint32> indices)
ShapeBase::ShapeBase()
{
}
ShapeBase::ShapeBase(Array<Vector> vertices, Array<uint32> indices)
: vertices(vertices)
, indices(indices)
{
@@ -206,17 +212,17 @@ ShapeBase ShapeBase::transform(const Component::Transform& transform) const
ShapeBase result = *this;
for(auto& vert : result.vertices)
{
vert = transform.toMatrix() * Math::Vector4(vert, 1.0f);
vert = transform.toMatrix() * Vector4(vert, 1.0f);
}
return result;
}
void ShapeBase::addCollider(Array<Math::Vector> verts, Array<uint32> inds, Math::Matrix4 matrix)
void ShapeBase::addCollider(Array<Vector> verts, Array<uint32> inds, Matrix4 matrix)
{
size_t indOffset = vertices.size();
for(auto vert : verts)
{
vertices.add(Math::Vector(matrix * Math::Vector4(vert, 1.0f)));
vertices.add(Vector(matrix * Vector4(vert, 1.0f)));
}
for(auto ind : inds)
{
@@ -224,3 +230,39 @@ void ShapeBase::addCollider(Array<Math::Vector> verts, Array<uint32> inds, Math:
}
computePhysicsParamsForMesh(vertices, indices, bodyInertia, centerOfMass, mass);
}
void ShapeBase::visualize() const
{
for(uint32 i = 0; i < indices.size(); i+=3)
{
gDebugVertices.add(DebugVertex{
.position = Vector(vertices[indices[i+0]]),
.color = Vector(1, 0, 0),
});
gDebugVertices.add(DebugVertex{
.position = Vector(vertices[indices[i+1]]),
.color = Vector(1, 0, 0),
});
gDebugVertices.add(DebugVertex{
.position = Vector(vertices[indices[i+1]]),
.color = Vector(1, 0, 0),
});
gDebugVertices.add(DebugVertex{
.position = Vector(vertices[indices[i+2]]),
.color = Vector(1, 0, 0),
});
gDebugVertices.add(DebugVertex{
.position = Vector(vertices[indices[i+2]]),
.color = Vector(1, 0, 0),
});
gDebugVertices.add(DebugVertex{
.position = Vector(vertices[indices[i+0]]),
.color = Vector(1, 0, 0),
});
}
}
+8 -5
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@@ -1,6 +1,7 @@
#pragma once
#include "Containers/Array.h"
#include "Transform.h"
#include "Graphics/DebugVertex.h"
namespace Seele
{
@@ -8,13 +9,15 @@ namespace Component
{
struct ShapeBase
{
ShapeBase(Array<Math::Vector> vertices, Array<uint32> indices);
ShapeBase();
ShapeBase(Array<Vector> vertices, Array<uint32> indices);
ShapeBase transform(const Component::Transform& transform) const;
void addCollider(Array<Math::Vector> vertices, Array<uint32> indices, Math::Matrix4 matrix);
Math::Vector centerOfMass;
void addCollider(Array<Vector> vertices, Array<uint32> indices, Matrix4 matrix);
void visualize() const;
Vector centerOfMass;
float mass;
Math::Matrix3 bodyInertia;
Array<Math::Vector> vertices;
Matrix3 bodyInertia;
Array<Vector> vertices;
Array<uint32> indices;
};
} // namespace Component
+2
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@@ -7,6 +7,8 @@ namespace Component
{
struct StaticMesh
{
StaticMesh() {}
StaticMesh(PMeshAsset mesh) : mesh(mesh) {}
PMeshAsset mesh;
};
} // namespace Component
+12 -12
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@@ -5,55 +5,55 @@ using namespace Seele::Component;
DEFINE_COMPONENT(Transform)
void Transform::setPosition(Math::Vector pos)
void Transform::setPosition(Vector pos)
{
transform.setPosition(pos);
dirty = true;
}
void Transform::setRotation(Math::Quaternion quat)
void Transform::setRotation(Quaternion quat)
{
transform.setRotation(quat);
dirty = true;
}
void Transform::setScale(Math::Vector scale)
void Transform::setScale(Vector scale)
{
transform.setScale(scale);
dirty = true;
}
void Transform::setRelativeLocation(Math::Vector location)
void Transform::setRelativeLocation(Vector location)
{
transform = Math::Transform(location, transform.getRotation(), transform.getScale());
dirty = true;
}
void Transform::setRelativeRotation(Math::Vector rotation)
void Transform::setRelativeRotation(Vector rotation)
{
transform = Math::Transform(transform.getPosition(), Math::Quaternion(rotation), transform.getScale());
transform = Math::Transform(transform.getPosition(), Quaternion(rotation), transform.getScale());
dirty = true;
}
void Transform::setRelativeRotation(Math::Quaternion rotation)
void Transform::setRelativeRotation(Quaternion rotation)
{
transform = Math::Transform(transform.getPosition(), rotation, transform.getScale());
dirty = true;
}
void Transform::setRelativeScale(Math::Vector scale)
void Transform::setRelativeScale(Vector scale)
{
transform = Math::Transform(transform.getPosition(), transform.getRotation(), scale);
dirty = true;
}
void Transform::addRelativeLocation(Math::Vector translation)
void Transform::addRelativeLocation(Vector translation)
{
transform = Math::Transform(transform.getPosition() + translation, transform.getRotation(), transform.getScale());
dirty = true;
}
void Transform::addRelativeRotation(Math::Vector rotation)
void Transform::addRelativeRotation(Vector rotation)
{
transform = Math::Transform(transform.getPosition(), transform.getRotation() * Math::Quaternion(rotation), transform.getScale());
transform = Math::Transform(transform.getPosition(), transform.getRotation() * Quaternion(rotation), transform.getScale());
dirty = true;
}
void Transform::addRelativeRotation(Math::Quaternion rotation)
void Transform::addRelativeRotation(Quaternion rotation)
{
transform = Math::Transform(transform.getPosition(), transform.getRotation() * rotation, transform.getScale());
dirty = true;
+17 -17
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@@ -8,31 +8,31 @@ namespace Component
{
struct Transform
{
Math::Vector getPosition() const { return transform.getPosition(); }
Math::Quaternion getRotation() const { return transform.getRotation(); }
Math::Vector getScale() const { return transform.getScale(); }
Vector getPosition() const { return transform.getPosition(); }
Quaternion getRotation() const { return transform.getRotation(); }
Vector getScale() const { return transform.getScale(); }
Math::Vector getForward() const { return transform.getForward(); }
Math::Vector getUp() const { return transform.getUp(); }
Math::Vector getRight() const { return transform.getRight(); }
Vector getForward() const { return transform.getForward(); }
Vector getUp() const { return transform.getUp(); }
Vector getRight() const { return transform.getRight(); }
Math::Matrix4 toMatrix() const { return transform.toMatrix(); }
Matrix4 toMatrix() const { return transform.toMatrix(); }
bool isDirty() const { return dirty; }
void clean() { dirty = false; }
void setPosition(Math::Vector pos);
void setRotation(Math::Quaternion quat);
void setScale(Math::Vector scale);
void setPosition(Vector pos);
void setRotation(Quaternion quat);
void setScale(Vector scale);
void setRelativeLocation(Math::Vector location);
void setRelativeRotation(Math::Quaternion rotation);
void setRelativeRotation(Math::Vector rotation);
void setRelativeScale(Math::Vector scale);
void setRelativeLocation(Vector location);
void setRelativeRotation(Quaternion rotation);
void setRelativeRotation(Vector rotation);
void setRelativeScale(Vector scale);
void addRelativeLocation(Math::Vector translation);
void addRelativeRotation(Math::Quaternion rotation);
void addRelativeRotation(Math::Vector rotation);
void addRelativeLocation(Vector translation);
void addRelativeRotation(Quaternion rotation);
void addRelativeRotation(Vector rotation);
private:
bool dirty = true;
Math::Transform transform;
+36 -14
View File
@@ -156,7 +156,8 @@ public:
assert(_data != nullptr);
std::uninitialized_copy(init.begin(), init.end(), begin());
}
Array(const Array &other)
constexpr Array(const Array &other)
: arraySize(other.arraySize)
, allocated(other.allocated)
, allocator(std::allocator_traits<allocator_type>::select_on_container_copy_construction(other.allocator))
@@ -165,7 +166,16 @@ public:
assert(_data != nullptr);
std::uninitialized_copy(other.begin(), other.end(), begin());
}
Array(Array &&other) noexcept
constexpr Array(const Array& other, const Allocator& alloc)
: arraySize(other.arraySize)
, allocated(other.allocated)
, allocator(alloc)
{
_data = allocateArray(other.allocated);
assert(_data != nullptr);
std::uninitialized_copy(other.begin(), other.end(), begin());
}
constexpr Array(Array &&other) noexcept
: arraySize(std::move(other.arraySize))
, allocated(std::move(other.allocated))
, allocator(std::move(other.allocator))
@@ -175,10 +185,26 @@ public:
other.allocated = 0;
other.arraySize = 0;
}
constexpr Array(Array &&other, const Allocator& alloc) noexcept
: arraySize(std::move(other.arraySize))
, allocated(std::move(other.allocated))
, allocator(alloc)
{
_data = allocateArray(other.allocated);
std::uninitialized_move(other.begin(), other.end(), begin());
other.deallocateArray(other._data, other.allocated);
other._data = nullptr;
other.allocated = 0;
other.arraySize = 0;
}
Array &operator=(const Array &other)
{
if (this != &other)
{
if (other.arraySize > allocated)
{
clear();
}
if constexpr (std::allocator_traits<allocator_type>::propagate_on_container_copy_assignment::value )
{
if (!std::allocator_traits<allocator_type>::is_always_equal::value
@@ -188,10 +214,6 @@ public:
}
allocator = other.allocator;
}
if (other.arraySize > allocated)
{
clear();
}
if(_data == nullptr)
{
_data = allocateArray(other.allocated);
@@ -207,14 +229,14 @@ public:
{
if (this != &other)
{
if constexpr (std::allocator_traits<allocator_type>::propagate_on_container_move_assignment::value)
{
allocator = std::move(other.allocator);
}
if (_data != nullptr)
{
clear();
}
if constexpr (std::allocator_traits<allocator_type>::propagate_on_container_move_assignment::value)
{
allocator = std::move(other.allocator);
}
allocated = std::move(other.allocated);
arraySize = std::move(other.arraySize);
_data = other._data;
@@ -395,7 +417,7 @@ public:
}
constexpr void resize(size_type newSize)
{
resizeInternal(newSize, std::move(T()));
resizeInternal(newSize, T());
}
constexpr void resize(size_type newSize, const value_type& value)
{
@@ -532,7 +554,7 @@ private:
return _data[arraySize - 1];
}
template<typename Type>
void resizeInternal(size_type newSize, Type&& value) noexcept
void resizeInternal(size_type newSize, const Type& value) noexcept
{
if (newSize <= allocated)
{
@@ -550,7 +572,7 @@ private:
// Or construct the new elements by default
for(size_type i = arraySize; i < newSize; ++i)
{
std::allocator_traits<allocator_type>::construct(allocator, &_data[i], std::move(value));
std::allocator_traits<allocator_type>::construct(allocator, &_data[i], value);
}
}
arraySize = newSize;
@@ -568,7 +590,7 @@ private:
// As well as default initialize the others
for(size_type i = arraySize; i < newSize; ++i)
{
std::allocator_traits<allocator_type>::construct(allocator, &newData[i], std::move(value));
std::allocator_traits<allocator_type>::construct(allocator, &newData[i], value);
}
deallocateArray(_data, allocated);
arraySize = newSize;
+63 -3
View File
@@ -124,10 +124,46 @@ public:
, beginIt(Iterator(root))
, endIt(Iterator(tail))
, _size(0)
, allocator(NodeAllocator())
, allocator(Allocator())
{
}
explicit List(const Allocator& alloc)
: root(nullptr)
, tail(nullptr)
, beginIt(Iterator(root))
, endIt(Iterator(tail))
, _size(0)
, allocator(alloc)
{
}
List(size_type count, const T& value = T(), const Allocator& alloc = Allocator())
: List(alloc)
{
for(size_type i = 0; i < count; ++i)
{
add(value);
}
}
List(size_type count, const Allocator& alloc = Allocator())
: List(alloc)
{
for(size_type i = 0; i < count; ++i)
{
add(T());
}
}
List(const List& other)
: List(std::allocator_traits<allocator_type>::select_on_container_copy_construction(other.allocator))
{
//TODO: improve
for(const auto& it : other)
{
add(it);
}
}
List(const List& other, const Allocator& alloc)
: List(alloc)
{
//TODO: improve
for(const auto& it : other)
@@ -141,8 +177,19 @@ public:
, beginIt(std::move(other.beginIt))
, endIt(std::move(other.endIt))
, _size(std::move(other._size))
, allocator(std::move(other.allocator))
{
other._size = 0;
other.clear();
}
List(List&& other, const Allocator& alloc)
: root(std::move(other.root))
, tail(std::move(other.tail))
, beginIt(std::move(other.beginIt))
, endIt(std::move(other.endIt))
, _size(std::move(other._size))
, allocator(allocator)
{
other.clear();
}
~List()
{
@@ -153,6 +200,15 @@ public:
if(this != &other)
{
clear();
if constexpr (std::allocator_traits<allocator_type>::propagate_on_container_copy_assignment::value )
{
if (!std::allocator_traits<allocator_type>::is_always_equal::value
&& allocator != other.allocator)
{
clear();
}
allocator = other.allocator;
}
for(const auto& it : other)
{
add(it);
@@ -166,6 +222,10 @@ public:
if(this != &other)
{
clear();
if constexpr (std::allocator_traits<allocator_type>::propagate_on_container_move_assignment::value)
{
allocator = std::move(other.allocator);
}
root = other.root;
tail = other.tail;
beginIt = other.beginIt;
@@ -214,7 +274,7 @@ public:
}
// takes all elements from other and move-inserts them into
// this, clearing other in the process
void moveElements(List& other)
void moveElements(List&& other)
{
tail->prev->next = other.root;
other.root->prev = tail->prev;

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