327 lines
11 KiB
Plaintext
327 lines
11 KiB
Plaintext
import Parameters;
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import CBT;
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import Bisector;
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static const uint32_t WORKGROUP_SIZE = 64;
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// Resolution of the cache
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#define LEB_TABLE_DEPTH 5ULL
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// Cache in shared memory
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groupshared float3x3 g_MatrixCache[2ULL << LEB_TABLE_DEPTH];
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void load_leb_matrix_cache_to_shared_memory(uint groupIndex)
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{
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if (groupIndex < (2ULL << LEB_TABLE_DEPTH))
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g_MatrixCache[groupIndex] = pParams.lebMatrixCache[groupIndex];
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GroupMemoryBarrierWithGroupSync();
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}
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uint leb_depth(uint64_t heapID)
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{
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uint depth = 0;
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while (heapID > 0u)
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{
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++depth;
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heapID >>= 1u;
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}
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return depth - 1;
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}
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/*******************************************************************************
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* GetBitValue -- Returns the value of a bit stored in a 64-bit word
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*
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*/
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uint64_t leb__GetBitValue(uint64_t bitField, int64_t bitID)
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{
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return ((bitField >> bitID) & 1L);
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}
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/*******************************************************************************
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* IdentityMatrix3x3 -- Sets a 3x3 matrix to identity
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*
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*/
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void leb__IdentityMatrix3x3(out float3x3 m)
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{
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m[0][0] = 1.0f; m[0][1] = 0.0f; m[0][2] = 0.0f;
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m[1][0] = 0.0f; m[1][1] = 1.0f; m[1][2] = 0.0f;
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m[2][0] = 0.0f; m[2][1] = 0.0f; m[2][2] = 1.0f;
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}
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/*******************************************************************************
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* SplittingMatrix -- Computes a LEB splitting matrix from a split bit
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*
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*/
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void leb__SplittingMatrix(inout float3x3 mat, uint64_t bitValue)
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{
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float b = (float)bitValue;
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float c = 1.0f - b;
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const float3x3 splitMatrix = {
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{0.0f, b, c},
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{0.5f, 0.0f, 0.5f},
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{b, c, 0.0f}
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};
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mat = mul(splitMatrix, mat);
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}
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/*******************************************************************************
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* SplittingMatrix -- Computes a LEB splitting matrix from a split bit
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*
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*/
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float3x3 leb__SplittingMatrix_out(float3x3 mat, uint64_t bitValue)
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{
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float b = (float)bitValue;
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float c = 1.0 - b;
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float3x3 splitMatrix = {
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{0.0, b, c},
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{0.5, 0.0, 0.5},
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{b, c, 0.0}
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};
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return mul(splitMatrix, mat);
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}
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/*******************************************************************************
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* DecodeTransformationMatrix -- Computes the matrix associated to a LEB
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* node
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*
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*/
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void leb__DecodeTransformationMatrix(uint64_t heapID, out float3x3 mat)
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{
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int depth = leb_depth(heapID);
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leb__IdentityMatrix3x3(mat);
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for (int bitID = depth - 1; bitID >= 0; --bitID)
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leb__SplittingMatrix(mat, leb__GetBitValue(heapID, bitID));
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}
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#if defined(LEB_MATRIX_CACHE_BINDING_SLOT)
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void leb__DecodeTransformationMatrix_Tabulated(uint64_t heapID, out float3x3 mat)
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{
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leb__IdentityMatrix3x3(mat);
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const uint64_t msb = (1ULL << LEB_TABLE_DEPTH);
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const uint64_t mask = ~(~0ULL << LEB_TABLE_DEPTH);
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while (heapID > mask)
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{
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uint32_t index = uint32_t((heapID & mask) | msb);
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mat = mul(mat, g_MatrixCache[index]);
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heapID >>= LEB_TABLE_DEPTH;
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}
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mat = mul(mat, g_MatrixCache[uint32_t(heapID)]);
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}
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#endif
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/*******************************************************************************
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* DecodeTransformationMatrix -- Computes the matrix associated to a LEB
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* node
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*
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*/
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void leb__DecodeTransformationMatrix_parent_child(uint64_t heapID, out float3x3 parent, out float3x3 child)
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{
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int depth = leb_depth(heapID);
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leb__IdentityMatrix3x3(parent);
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// Evaluate the parent matrix
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int bitID;
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for (bitID = depth - 1; bitID > 0; --bitID)
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leb__SplittingMatrix(parent, leb__GetBitValue(heapID, bitID));
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// Evaluate the child
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if (depth > 0)
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child = leb__SplittingMatrix_out(parent, leb__GetBitValue(heapID, bitID));
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else
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child = parent;
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}
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#if defined(LEB_MATRIX_CACHE_BINDING_SLOT)
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void leb__DecodeTransformationMatrix_parent_child_Tabulated(uint64_t heapID, out float3x3 parent, out float3x3 child)
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{
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int depth = leb_depth(heapID);
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leb__IdentityMatrix3x3(parent);
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const uint64_t msb = (1ULL << LEB_TABLE_DEPTH);
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const uint64_t mask = ~(~0ULL << LEB_TABLE_DEPTH);
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uint64_t parentHeapID = heapID / 2;
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while (parentHeapID > mask)
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{
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uint32_t index = uint32_t((parentHeapID & mask) | msb);
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parent = mul(parent, g_MatrixCache[index]);
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parentHeapID >>= LEB_TABLE_DEPTH;
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}
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if (parentHeapID != 0)
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parent = mul(parent, g_MatrixCache[uint32_t(parentHeapID)]);
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// Evaluate the child
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if (depth > 0)
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child = leb__SplittingMatrix_out(parent, leb__GetBitValue(heapID, 0));
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else
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child = parent;
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}
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#endif
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/*******************************************************************************
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* DecodeNodeAttributeArray -- Compute the triangle attributes at the input node
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*
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*/
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void leb_DecodeNodeAttributeArray(uint64_t heapID, inout float3 attributeArray[2])
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{
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float3x3 m;
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leb__DecodeTransformationMatrix(heapID, m);
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for (int i = 0; i < 2; ++i)
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{
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float3 attributeVector = attributeArray[i];
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attributeArray[i][0] = dot(m[0], attributeVector);
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attributeArray[i][1] = dot(m[1], attributeVector);
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attributeArray[i][2] = dot(m[2], attributeVector);
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}
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}
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void leb_DecodeNodeAttributeArray(uint64_t heapID, inout float3 attributeArray[3])
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{
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float3x3 m;
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#if defined(LEB_MATRIX_CACHE_BINDING_SLOT)
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leb__DecodeTransformationMatrix_Tabulated(heapID, m);
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#else
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leb__DecodeTransformationMatrix(heapID, m);
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#endif
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for (int i = 0; i < 3; ++i)
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{
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float3 attributeVector = attributeArray[i];
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attributeArray[i][0] = dot(m[0], attributeVector);
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attributeArray[i][1] = dot(m[1], attributeVector);
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attributeArray[i][2] = dot(m[2], attributeVector);
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}
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}
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/*******************************************************************************
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* DecodeNodeAttributeArray -- Compute the triangle attributes at the input node
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*
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*/
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void leb_DecodeNodeAttributeArray_parent_child(uint64_t heapID, inout float3 childAttribute[3], out float3 parentAttribute[3])
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{
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float3x3 child, parent;
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#if defined(LEB_MATRIX_CACHE_BINDING_SLOT)
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leb__DecodeTransformationMatrix_parent_child_Tabulated(heapID, parent, child);
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#else
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leb__DecodeTransformationMatrix_parent_child(heapID, parent, child);
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#endif
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int i;
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for (i = 0; i < 3; ++i)
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{
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float3 attributeVector = childAttribute[i];
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parentAttribute[i][0] = dot(parent[0], attributeVector);
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parentAttribute[i][1] = dot(parent[1], attributeVector);
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parentAttribute[i][2] = dot(parent[2], attributeVector);
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}
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for (i = 0; i < 3; ++i)
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{
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float3 attributeVector = childAttribute[i];
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childAttribute[i][0] = dot(child[0], attributeVector);
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childAttribute[i][1] = dot(child[1], attributeVector);
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childAttribute[i][2] = dot(child[2], attributeVector);
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}
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}
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[numthreads(WORKGROUP_SIZE, 1, 1)]
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void ClearBuffer(uint currentID : SV_DispatchThreadID)
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{
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// This thread doesn't have any work to do, we're done
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if (currentID >= pParams.geometry.totalNumVertices)
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return;
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pParams.lebPositionBuffer[currentID] = float4(0.0, 0.0, 0.0, 1.0);
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}
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[[vk::push_constant]]
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ConstantBuffer<uint> preRendering;
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struct Triangle
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{
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float3 p[3];
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};
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void EvaluateElementPosition(uint64_t heapID, uint32_t vertexDataOffset, uint minDepth, RWStructuredBuffer<float4> vertexBuffer, out Triangle parentTri, out Triangle childTri)
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{
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// Get the depth of the element
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uint depth = HeapIDDepth(heapID);
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// Compute the required shift to find the original vertices
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uint64_t subTreeDepth = depth - minDepth;
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// Compute the base heapID
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uint64_t baseHeapID = 1u << (minDepth - 1);
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uint primitiveID = uint((heapID >> subTreeDepth) - baseHeapID);
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// Grab the base positions of the element
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float3 p0 = float3(vertexBuffer[3 * primitiveID + vertexDataOffset].xyz);
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float3 p1 = float3(vertexBuffer[3 * primitiveID + 1 + vertexDataOffset].xyz);
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float3 p2 = float3(vertexBuffer[3 * primitiveID + 2 + vertexDataOffset].xyz);
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// Heap ID in the sub triangle
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uint64_t mask = subTreeDepth != 0uL ? 0xFFFFFFFFFFFFFFFFull >> (64ull - subTreeDepth) : 0ull;
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uint64_t baseHeap = (1ull << subTreeDepth);
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uint64_t baseMask = (mask & heapID);
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uint64_t subHeapID = baseMask + baseHeap;
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// Generate the triangle positions
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float3 childArray[3] = {{p0.x, p1.x, p2.x}, {p0.y, p1.y, p2.y}, {p0.z, p1.z, p2.z}};
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float3 parentArray[3];
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// Decode
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leb_DecodeNodeAttributeArray_parent_child(subHeapID, childArray, parentArray);
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// Fill the parent triangle
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parentTri.p[0] = float3(parentArray[0][0], parentArray[1][0], parentArray[2][0]);
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parentTri.p[1] = float3(parentArray[0][1], parentArray[1][1], parentArray[2][1]);
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parentTri.p[2] = float3(parentArray[0][2], parentArray[1][2], parentArray[2][2]);
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// Fill the child triangle
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Triangle child;
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childTri.p[0] = float3(childArray[0][0], childArray[1][0], childArray[2][0]);
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childTri.p[1] = float3(childArray[0][1], childArray[1][1], childArray[2][1]);
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childTri.p[2] = float3(childArray[0][2], childArray[1][2], childArray[2][2]);
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}
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[numthreads(WORKGROUP_SIZE, 1, 1)]
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void EvaluateLEB(uint currentID : SV_DispatchThreadID, uint groupIndex: SV_GroupIndex)
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{
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#if defined(LEB_MATRIX_CACHE_BINDING_SLOT)
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// Make sure these are loaded to the shared memory
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load_leb_matrix_cache_to_shared_memory(groupIndex);
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#endif
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// This thread doesn't have any work to do, we're done
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uint32_t numBisectors = bool(preRendering) ? (pParams.indirectDrawBuffer[9]) : (pParams.indirectDrawBuffer[8] / 4);
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if (currentID >= numBisectors)
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return;
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// Load the bisector for this element
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currentID = pParams.indexedBisectorBuffer[currentID];
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// Evaluate the depth of the element
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uint64_t cHeapID = pParams.heapIDBuffer[currentID];
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uint depth = HeapIDDepth(cHeapID);
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// Evaluate the positions of the current element
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Triangle parentTri, childTri;
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EvaluateElementPosition(cHeapID, 0, pParams.geometry.baseDepth, pParams.currentVertexBuffer, parentTri, childTri);
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// Export the child
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pParams.lebPositionBuffer[3 * currentID + 0] = float4(normalize(childTri.p[0]), 1.0f);
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pParams.lebPositionBuffer[3 * currentID + 1] = float4(normalize(childTri.p[1]), 1.0f);
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pParams.lebPositionBuffer[3 * currentID + 2] = float4(normalize(childTri.p[2]), 1.0f);
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// Export the fourth element
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if (pParams.geometry.baseDepth < depth)
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{
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// Offset for the parent buffer
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const uint parentOffset = 3 * pParams.geometry.totalNumElements;
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// Transform the coordinate to planet space
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pParams.lebPositionBuffer[parentOffset + currentID] = float4(normalize(cHeapID % 2 == 0 ? parentTri.p[0] : parentTri.p[2]), 1.0f);
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}
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}
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