OClCollMeshEngn,PcloudStimProd: Produce into intensity stimbuff
PcloudStimulusBuffer::produceFrameReq(): Now correctly produces into the stim frames for the PcloudIntensityStimulusBuffer object that's attached to the PcloudStimulusProducer. If there's no attached I stimbuff, then the OpenCL kernel will simply not write out the intensity data. This is the first moment when we actually use the SP-MC ringbuffer properly and actually cycle through the frames, producing into them one by one.
This commit is contained in:
@@ -24,6 +24,7 @@ inline int readInt32LE(__global uchar* ptr)
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__kernel void collate(
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__global uchar* assembly,
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__global float* collation,
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__global float* intensityBuffer,
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uint slotStride,
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uint nPointsPerSlot,
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uint nDgramsPerFrame)
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@@ -44,9 +45,12 @@ __kernel void collate(
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__global uchar* pointsArray = slotStart + 18;
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// Base offset in collation buffer for this slot (in floats)
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// Each PointXYZI is 4 floats (x, y, z, intensity)
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#define FLOATS_PER_POINT 4
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// Each PointXYZ is 3 floats (x, y, z)
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#define FLOATS_PER_POINT 3
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uint collationBaseOffset = slotIndex * nPointsPerSlot * FLOATS_PER_POINT;
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// Base offset in intensity buffer for this slot (in floats)
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// Each intensity is 1 float
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uint intensityBaseOffset = slotIndex * nPointsPerSlot;
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DBG_PRINTF("Running kernel: about to process points in slot.\n");
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// Process based on data type using nested ifs (outer) with loops (inner)
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@@ -79,12 +83,16 @@ __kernel void collate(
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slotIndex, i, intensity);
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}
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// Write to collation buffer
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// Write XYZ to collation buffer
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uint offset = collationBaseOffset + (i * FLOATS_PER_POINT);
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collation[offset + 0] = x;
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collation[offset + 1] = y;
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collation[offset + 2] = z;
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collation[offset + 3] = intensity;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + i] = intensity;
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}
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// Don't write intensity to collation buffer
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}
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}
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else if (dataType == 2)
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@@ -117,12 +125,16 @@ __kernel void collate(
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slotIndex, i, intensity);
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}
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// Write to collation buffer
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// Write XYZ to collation buffer
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uint offset = collationBaseOffset + (i * FLOATS_PER_POINT);
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collation[offset + 0] = x;
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collation[offset + 1] = y;
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collation[offset + 2] = z;
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collation[offset + 3] = intensity;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + i] = intensity;
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}
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// Don't write intensity to collation buffer
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}
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}
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else if (dataType == 4)
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@@ -161,7 +173,11 @@ __kernel void collate(
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collation[offset1 + 0] = x1;
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collation[offset1 + 1] = y1;
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collation[offset1 + 2] = z1;
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collation[offset1 + 3] = intensity1;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + pointIndex] = intensity1;
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}
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// Don't write intensity to collation buffer
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++pointIndex;
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// Process second point
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@@ -188,7 +204,11 @@ __kernel void collate(
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collation[offset2 + 0] = x2;
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collation[offset2 + 1] = y2;
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collation[offset2 + 2] = z2;
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collation[offset2 + 3] = intensity2;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + pointIndex] = intensity2;
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}
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// Don't write intensity to collation buffer
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++pointIndex;
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}
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}
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@@ -228,7 +248,11 @@ __kernel void collate(
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collation[offset1 + 0] = x1;
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collation[offset1 + 1] = y1;
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collation[offset1 + 2] = z1;
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collation[offset1 + 3] = intensity1;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + pointIndex] = intensity1;
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}
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// Don't write intensity to collation buffer
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++pointIndex;
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// Process second point
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@@ -255,7 +279,11 @@ __kernel void collate(
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collation[offset2 + 0] = x2;
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collation[offset2 + 1] = y2;
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collation[offset2 + 2] = z2;
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collation[offset2 + 3] = intensity2;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + pointIndex] = intensity2;
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}
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// Don't write intensity to collation buffer
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++pointIndex;
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// Process third point
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@@ -282,7 +310,11 @@ __kernel void collate(
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collation[offset3 + 0] = x3;
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collation[offset3 + 1] = y3;
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collation[offset3 + 2] = z3;
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collation[offset3 + 3] = intensity3;
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// Write intensity conditionally - divert to intensity buffer if attached, else discard
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if (intensityBuffer != NULL) {
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intensityBuffer[intensityBaseOffset + pointIndex] = intensity3;
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}
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// Don't write intensity to collation buffer
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++pointIndex;
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}
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}
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@@ -165,7 +165,7 @@ void OpenClCollatingAndMeshingEngine::finalize()
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// Complete any running kernels
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if (compactIsRunning) { compactKernelComplete(true); }
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if (collateIsRunning) { collateKernelComplete(true); }
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if (collateIsRunning) { collateKernelComplete(std::nullopt, true); }
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// Release OpenCL buffers via smo hooks
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if (smoHooksPtr && smoHooksPtr->ComputeManager_releaseUseHostPtrBuffer)
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@@ -325,6 +325,7 @@ bool OpenClCollatingAndMeshingEngine::startCompactKernel(
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bool OpenClCollatingAndMeshingEngine::startCollateKernel(
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StagingBuffer& assemblyBuff, StagingBuffer& collationBuff,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame,
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collateKernelCbFn callback)
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{
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// Store the caller's callback
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@@ -345,8 +346,8 @@ bool OpenClCollatingAndMeshingEngine::startCollateKernel(
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};
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// Setup args callable
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auto setupArgs = [this, &assemblyBuff]() {
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return setupCollateDgramsArgs(assemblyBuff);
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auto setupArgs = [this, &assemblyBuff, intensityStimFrame]() {
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return setupCollateDgramsArgs(assemblyBuff, intensityStimFrame);
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};
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/** EXPLANATION:
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@@ -374,6 +375,28 @@ bool OpenClCollatingAndMeshingEngine::startCollateKernel(
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unmapCollationBuffer();
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// Map/unmap intensity buffer if it exists
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if (intensityStimFrame.has_value())
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{
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StimulusFrame& intensityFrame = intensityStimFrame->get();
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cl_mem intensityClBuffer = intensityFrame.clBuffer
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->getAssociatedBufferHandleForDevice(computeDevice);
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if (intensityClBuffer)
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{
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void* mappedIntensityBuffer = nullptr;
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if (!mapBuffer(intensityClBuffer, intensityFrame.slotDesc.nBytes,
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CL_MAP_WRITE_INVALIDATE_REGION, mappedIntensityBuffer))
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{
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std::cerr << __func__ << ": failed to map intensity buffer"
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<< std::endl;
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return false;
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}
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unmapBuffer(intensityClBuffer, mappedIntensityBuffer);
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}
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}
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// Calculate global work size (just num slots in the frame)
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size_t globalWorkSize = static_cast<uint32_t>(frameAssemblyDesc->numSlots);
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@@ -528,7 +551,8 @@ bool OpenClCollatingAndMeshingEngine::setupSlotCompactorsArgs(
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}
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bool OpenClCollatingAndMeshingEngine::setupCollateDgramsArgs(
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StagingBuffer& assemblyBuff)
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StagingBuffer& assemblyBuff,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame)
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{
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// Extract parameters for collateDgrams kernel
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uint32_t slotStride = static_cast<uint32_t>(assemblyBuff.slotStrideNBytes);
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@@ -563,7 +587,14 @@ bool OpenClCollatingAndMeshingEngine::setupCollateDgramsArgs(
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return false;
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}
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err = clSetKernelArg(collateKernel, 2, sizeof(uint32_t), &slotStride);
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// Set intensity buffer argument (arg 2)
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cl_mem intensityClBuffer = nullptr;
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if (intensityStimFrame.has_value())
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{
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intensityClBuffer = intensityStimFrame->get().clBuffer
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->getAssociatedBufferHandleForDevice(computeDevice);
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}
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err = clSetKernelArg(collateKernel, 2, sizeof(cl_mem), &intensityClBuffer);
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if (err != CL_SUCCESS)
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{
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std::cerr << __func__ << ": failed to set kernel arg 2: " << err
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@@ -571,7 +602,7 @@ bool OpenClCollatingAndMeshingEngine::setupCollateDgramsArgs(
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return false;
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}
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err = clSetKernelArg(collateKernel, 3, sizeof(uint32_t), &nPointsPerSlot);
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err = clSetKernelArg(collateKernel, 3, sizeof(uint32_t), &slotStride);
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if (err != CL_SUCCESS)
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{
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std::cerr << __func__ << ": failed to set kernel arg 3: " << err
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@@ -579,7 +610,7 @@ bool OpenClCollatingAndMeshingEngine::setupCollateDgramsArgs(
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return false;
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}
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err = clSetKernelArg(collateKernel, 4, sizeof(uint32_t), &nDgramsPerFrame);
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err = clSetKernelArg(collateKernel, 4, sizeof(uint32_t), &nPointsPerSlot);
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if (err != CL_SUCCESS)
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{
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std::cerr << __func__ << ": failed to set kernel arg 4: " << err
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@@ -587,6 +618,14 @@ bool OpenClCollatingAndMeshingEngine::setupCollateDgramsArgs(
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return false;
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}
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err = clSetKernelArg(collateKernel, 5, sizeof(uint32_t), &nDgramsPerFrame);
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if (err != CL_SUCCESS)
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{
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std::cerr << __func__ << ": failed to set kernel arg 5: " << err
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<< std::endl;
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return false;
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}
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return true;
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}
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@@ -611,8 +650,9 @@ void OpenClCollatingAndMeshingEngine::compactKernelComplete(bool isFinalizing)
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if (isFinalizing) { mapFlags = CL_MAP_WRITE_INVALIDATE_REGION; }
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else { mapFlags = CL_MAP_READ; }
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mapAssemblyBuffer(mapFlags);
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if (mapAssemblyBuffer(mapFlags)) {
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unmapAssemblyBuffer();
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}
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clFlush(computeDevice->commandQueue);
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// Stop only compact kernel
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@@ -628,7 +668,9 @@ void OpenClCollatingAndMeshingEngine::compactKernelComplete(bool isFinalizing)
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compactIsRunning = false;
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}
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void OpenClCollatingAndMeshingEngine::collateKernelComplete(bool isFinalizing)
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void OpenClCollatingAndMeshingEngine::collateKernelComplete(
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame,
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bool isFinalizing)
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{
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cl_map_flags mapFlags;
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/** EXPLANATION:
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@@ -638,8 +680,28 @@ void OpenClCollatingAndMeshingEngine::collateKernelComplete(bool isFinalizing)
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if (isFinalizing) { mapFlags = CL_MAP_WRITE_INVALIDATE_REGION; }
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else { mapFlags = CL_MAP_READ; }
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mapCollationBuffer(mapFlags);
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if (mapCollationBuffer(mapFlags)) {
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unmapCollationBuffer();
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}
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// Map/unmap intensity buffer if it exists
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if (intensityStimFrame.has_value())
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{
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StimulusFrame& intensityFrame = intensityStimFrame->get();
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cl_mem intensityClBuffer = intensityFrame.clBuffer
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->getAssociatedBufferHandleForDevice(computeDevice);
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if (intensityClBuffer)
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{
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void* mappedIntensityBuffer = nullptr;
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if (mapBuffer(intensityClBuffer, intensityFrame.slotDesc.nBytes,
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CL_MAP_READ, mappedIntensityBuffer))
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{
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unmapBuffer(intensityClBuffer, mappedIntensityBuffer);
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}
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}
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}
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clFlush(computeDevice->commandQueue);
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// Stop only collate kernel
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@@ -770,18 +832,21 @@ private:
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OpenClCollatingAndMeshingEngine& engine;
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AsynchronousLoop frameAssemblyResult;
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StimulusFrame& stimulusFrame;
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame;
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public:
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CompactCollateAndMeshFrameReq(
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OpenClCollatingAndMeshingEngine& engine_,
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AsynchronousLoop& asyncLoop,
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StimulusFrame& stimulusFrame_,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame_,
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const std::shared_ptr<ComponentThread>& caller,
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Callback<compactCollateAndMeshFrameReqCbFn> cb)
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: PostedAsynchronousContinuation<compactCollateAndMeshFrameReqCbFn>(
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caller, cb),
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engine(engine_),
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frameAssemblyResult(asyncLoop), stimulusFrame(stimulusFrame_)
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frameAssemblyResult(asyncLoop), stimulusFrame(stimulusFrame_),
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intensityStimFrame(intensityStimFrame_)
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{}
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public:
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@@ -876,6 +941,7 @@ public:
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bool success = engine.startCollateKernel(
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engine.parent.assemblyBuffer, engine.parent.collationBuffer,
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context->intensityStimFrame,
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std::bind(
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&CompactCollateAndMeshFrameReq
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::compactCollateAndMeshFrameReq4_collateDone_maybePosted,
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@@ -884,7 +950,7 @@ public:
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if (!success)
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{
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engine.collateKernelComplete();
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engine.collateKernelComplete(context->intensityStimFrame);
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callOriginalCallback(false);
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return;
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}
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@@ -904,7 +970,16 @@ public:
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return;
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}
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engine.collateKernelComplete();
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/** EXPLANATION:
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* The reason we don't call collateKernelComplete before checking
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* shouldAcceptRequests is because if shouldAcceptRequests is false, then
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* we shouldn't touch any of the collate cycle state...or any state within
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* the engine at all, since finalize() may well have been called.
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*
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* Therefore it's finalize()'s responsibility to ensure that it properly
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* completes/cleans up any in-flight operations.
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*/
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engine.collateKernelComplete(context->intensityStimFrame);
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// Record collate kernel end time
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engine.collateKernelEndTime = std::chrono::high_resolution_clock::now();
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@@ -947,6 +1022,7 @@ public:
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void OpenClCollatingAndMeshingEngine::compactCollateAndMeshFrameReq(
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AsynchronousLoop& asyncLoop, StimulusFrame& stimulusFrame,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame,
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Callback<compactCollateAndMeshFrameReqCbFn> callback)
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{
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{
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@@ -960,7 +1036,7 @@ void OpenClCollatingAndMeshingEngine::compactCollateAndMeshFrameReq(
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auto caller = smoHooksPtr->ComponentThread_getSelf();
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auto request = std::make_shared<CompactCollateAndMeshFrameReq>(
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*this, asyncLoop, stimulusFrame,
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*this, asyncLoop, stimulusFrame, intensityStimFrame,
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caller,
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std::move(callback));
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@@ -6,6 +6,7 @@
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#include <cstddef>
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#include <memory>
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#include <functional>
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#include <optional>
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#include <iostream>
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#include <stdexcept>
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#include <chrono>
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@@ -48,6 +49,7 @@ public:
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compactCollateAndMeshFrameReqCbFn;
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void compactCollateAndMeshFrameReq(
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AsynchronousLoop& asyncLoop, StimulusFrame& stimulusFrame,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame,
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Callback<compactCollateAndMeshFrameReqCbFn> callback);
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private:
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@@ -60,10 +62,13 @@ private:
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compactKernelCbFn callback);
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bool startCollateKernel(
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StagingBuffer& assemblyBuff, StagingBuffer& collationBuff,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame,
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collateKernelCbFn callback);
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void compactKernelComplete(bool isFinalizing=false);
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void collateKernelComplete(bool isFinalizing=false);
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void collateKernelComplete(
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame,
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bool isFinalizing=false);
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bool stop();
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public:
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@@ -131,7 +136,9 @@ private:
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bool compileAndPrepareKernels();
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bool setupSlotCompactorsArgs(
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StagingBuffer& assemblyBuff, uint32_t nSucceeded);
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bool setupCollateDgramsArgs(StagingBuffer& assemblyBuff);
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bool setupCollateDgramsArgs(
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StagingBuffer& assemblyBuff,
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std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame);
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// Generic buffer mapping/unmapping for zero-copy synchronization
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bool mapBuffer(
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@@ -22,9 +22,9 @@ static StagingBuffer::IOEngineConstraints openClInputConstraints(
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* This should eventually be aligned to 4B and padded to 12B.
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*/
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// slotStartAlignmentByteVal (page alignment)
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sizeof(float) * 4,
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// slotPadToNBytes (pointer size)
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sizeof(float) * 4,
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sizeof(float),
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// slotPadToNBytes (XYZ = 3 floats per point)
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sizeof(float) * 3,
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// frameStartAlignmentByteVal (page alignment)
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static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
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// framePadToNBytes (pointer size)
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@@ -34,7 +34,7 @@ static StagingBuffer::IOEngineConstraints openClInputConstraints(
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static StagingBuffer::IOEngineConstraints openClMeshInputConstraints(
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// slotStartAlignmentByteVal (page alignment)
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static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
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// slotPadToNBytes (pointer size)
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// slotPadToNBytes: This is dynamically calculated based on the return mode.
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sizeof(float) * 3,
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// frameStartAlignmentByteVal (page alignment)
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static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
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@@ -44,7 +44,7 @@ static StagingBuffer::IOEngineConstraints openClMeshInputConstraints(
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static StagingBuffer::IOEngineConstraints openClIntensityInputConstraints(
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// slotStartAlignmentByteVal (page alignment)
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static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
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// slotPadToNBytes (intensity value size)
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// slotPadToNBytes: This is dynamically calculated based on the return mode.
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sizeof(float),
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// frameStartAlignmentByteVal (page alignment)
|
||||
static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
|
||||
@@ -54,7 +54,7 @@ static StagingBuffer::IOEngineConstraints openClIntensityInputConstraints(
|
||||
static StagingBuffer::IOEngineConstraints openClAmbienceInputConstraints(
|
||||
// slotStartAlignmentByteVal (page alignment)
|
||||
static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
|
||||
// slotPadToNBytes (pointer size)
|
||||
// slotPadToNBytes: This is dynamically calculated based on the return mode.
|
||||
sizeof(float),
|
||||
// frameStartAlignmentByteVal (page alignment)
|
||||
static_cast<size_t>(sysconf(_SC_PAGE_SIZE)),
|
||||
@@ -335,6 +335,7 @@ private:
|
||||
PcloudStimulusProducer& pcloudProducer;
|
||||
AsynchronousLoop frameAssemblyResult;
|
||||
StimulusFrame& stimulusFrame;
|
||||
std::optional<std::reference_wrapper<StimulusFrame>> intensityStimFrame;
|
||||
|
||||
public:
|
||||
ProduceFrameReq(
|
||||
@@ -392,8 +393,26 @@ public:
|
||||
|
||||
context->frameAssemblyResult = loop;
|
||||
|
||||
// Check if intensity buffer is attached and acquire frame if so
|
||||
if (pcloudProducer.intensityStimulusBuffer)
|
||||
{
|
||||
size_t intensityRingbuffIndex = pcloudProducer
|
||||
.intensityStimulusBuffer->ringBuffer.getIndexToProduceInto();
|
||||
|
||||
StimulusFrame& intensityStimFrame = pcloudProducer
|
||||
.intensityStimulusBuffer->ringBuffer.getDataAtSlot(
|
||||
intensityRingbuffIndex);
|
||||
|
||||
intensityStimFrame.lock.writeAcquire();
|
||||
context->intensityStimFrame = std::make_optional(
|
||||
std::ref(intensityStimFrame));
|
||||
}
|
||||
else {
|
||||
context->intensityStimFrame = std::nullopt;
|
||||
}
|
||||
|
||||
pcloudProducer.openClCollatingAndMeshingEngine.compactCollateAndMeshFrameReq(
|
||||
loop, stimulusFrame,
|
||||
loop, stimulusFrame, context->intensityStimFrame,
|
||||
{context, std::bind(
|
||||
&ProduceFrameReq::produceFrameReq3_compactCollateDone,
|
||||
context.get(), context,
|
||||
@@ -404,6 +423,11 @@ public:
|
||||
[[maybe_unused]] std::shared_ptr<ProduceFrameReq> context,
|
||||
bool success, StimulusFrame& /*stimulusFrame*/)
|
||||
{
|
||||
// Release intensity frame if it was used
|
||||
if (context->intensityStimFrame.has_value()) {
|
||||
context->intensityStimFrame->get().lock.writeRelease();
|
||||
}
|
||||
|
||||
SpinLock::Guard lock(pcloudProducer.shouldContinueLock);
|
||||
if (!pcloudProducer.shouldContinue)
|
||||
{
|
||||
|
||||
Reference in New Issue
Block a user