657 lines
34 KiB
C++
657 lines
34 KiB
C++
/*
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* Copyright (C) 2020-2024 Intel Corporation
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*
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* SPDX-License-Identifier: MIT
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*
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*/
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#pragma once
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#include "shared/source/command_container/command_encoder.h"
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#include "shared/source/command_container/encode_surface_state.h"
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#include "shared/source/command_stream/linear_stream.h"
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#include "shared/source/command_stream/memory_compression_state.h"
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#include "shared/source/command_stream/preemption.h"
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#include "shared/source/execution_environment/execution_environment.h"
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#include "shared/source/gmm_helper/gmm_helper.h"
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#include "shared/source/helpers/api_specific_config.h"
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#include "shared/source/helpers/cache_policy.h"
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#include "shared/source/helpers/gfx_core_helper.h"
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#include "shared/source/helpers/in_order_cmd_helpers.h"
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#include "shared/source/helpers/pause_on_gpu_properties.h"
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#include "shared/source/helpers/pipe_control_args.h"
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#include "shared/source/helpers/pipeline_select_args.h"
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#include "shared/source/helpers/simd_helper.h"
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#include "shared/source/helpers/state_base_address.h"
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#include "shared/source/kernel/dispatch_kernel_encoder_interface.h"
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#include "shared/source/kernel/implicit_args_helper.h"
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#include <algorithm>
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namespace NEO {
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template <typename Family>
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template <typename InterfaceDescriptorType>
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void EncodeDispatchKernel<Family>::setGrfInfo(InterfaceDescriptorType *pInterfaceDescriptor, uint32_t grfCount,
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const size_t &sizeCrossThreadData, const size_t &sizePerThreadData,
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const RootDeviceEnvironment &rootDeviceEnvironment) {
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auto grfSize = sizeof(typename Family::GRF);
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DEBUG_BREAK_IF((sizeCrossThreadData % grfSize) != 0);
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auto numGrfCrossThreadData = static_cast<uint32_t>(sizeCrossThreadData / grfSize);
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DEBUG_BREAK_IF(numGrfCrossThreadData == 0);
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pInterfaceDescriptor->setCrossThreadConstantDataReadLength(numGrfCrossThreadData);
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DEBUG_BREAK_IF((sizePerThreadData % grfSize) != 0);
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auto numGrfPerThreadData = static_cast<uint32_t>(sizePerThreadData / grfSize);
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// at least 1 GRF of perThreadData for each thread in a thread group when sizeCrossThreadData != 0
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numGrfPerThreadData = std::max(numGrfPerThreadData, 1u);
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pInterfaceDescriptor->setConstantIndirectUrbEntryReadLength(numGrfPerThreadData);
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}
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template <typename Family>
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template <typename WalkerType>
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void EncodeDispatchKernel<Family>::encode(CommandContainer &container, EncodeDispatchKernelArgs &args) {
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using MEDIA_STATE_FLUSH = typename Family::MEDIA_STATE_FLUSH;
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using MEDIA_INTERFACE_DESCRIPTOR_LOAD = typename Family::MEDIA_INTERFACE_DESCRIPTOR_LOAD;
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using STATE_BASE_ADDRESS = typename Family::STATE_BASE_ADDRESS;
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auto &kernelDescriptor = args.dispatchInterface->getKernelDescriptor();
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auto sizeCrossThreadData = args.dispatchInterface->getCrossThreadDataSize();
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auto sizePerThreadData = args.dispatchInterface->getPerThreadDataSize();
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auto sizePerThreadDataForWholeGroup = args.dispatchInterface->getPerThreadDataSizeForWholeThreadGroup();
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auto pImplicitArgs = args.dispatchInterface->getImplicitArgs();
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auto &hwInfo = args.device->getHardwareInfo();
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auto &gfxCoreHelper = args.device->getGfxCoreHelper();
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auto &rootDeviceEnvironment = args.device->getRootDeviceEnvironment();
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LinearStream *listCmdBufferStream = container.getCommandStream();
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auto threadDims = static_cast<const uint32_t *>(args.threadGroupDimensions);
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const Vec3<size_t> threadStartVec{0, 0, 0};
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Vec3<size_t> threadDimsVec{0, 0, 0};
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if (!args.isIndirect) {
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threadDimsVec = {threadDims[0], threadDims[1], threadDims[2]};
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}
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DefaultWalkerType cmd = Family::cmdInitGpgpuWalker;
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auto idd = Family::cmdInitInterfaceDescriptorData;
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{
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auto alloc = args.dispatchInterface->getIsaAllocation();
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UNRECOVERABLE_IF(nullptr == alloc);
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auto offset = alloc->getGpuAddressToPatch() + args.dispatchInterface->getIsaOffsetInParentAllocation();
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idd.setKernelStartPointer(offset);
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idd.setKernelStartPointerHigh(0u);
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}
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if (args.dispatchInterface->getKernelDescriptor().kernelAttributes.flags.usesAssert && args.device->getL0Debugger() != nullptr) {
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idd.setSoftwareExceptionEnable(1);
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}
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auto numThreadsPerThreadGroup = args.dispatchInterface->getNumThreadsPerThreadGroup();
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idd.setNumberOfThreadsInGpgpuThreadGroup(numThreadsPerThreadGroup);
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EncodeDispatchKernel<Family>::programBarrierEnable(idd,
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kernelDescriptor.kernelAttributes.barrierCount,
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hwInfo);
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auto slmSize = static_cast<uint32_t>(
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gfxCoreHelper.computeSlmValues(hwInfo, args.dispatchInterface->getSlmTotalSize()));
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idd.setSharedLocalMemorySize(slmSize);
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uint32_t bindingTableStateCount = kernelDescriptor.payloadMappings.bindingTable.numEntries;
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uint32_t bindingTablePointer = 0u;
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bool isBindlessKernel = NEO::KernelDescriptor::isBindlessAddressingKernel(kernelDescriptor);
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if (!isBindlessKernel) {
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container.prepareBindfulSsh();
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if (bindingTableStateCount > 0u) {
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auto ssh = args.surfaceStateHeap;
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if (ssh == nullptr) {
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ssh = container.getHeapWithRequiredSizeAndAlignment(HeapType::surfaceState, args.dispatchInterface->getSurfaceStateHeapDataSize(), BINDING_TABLE_STATE::SURFACESTATEPOINTER_ALIGN_SIZE);
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}
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bindingTablePointer = static_cast<uint32_t>(EncodeSurfaceState<Family>::pushBindingTableAndSurfaceStates(
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*ssh,
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args.dispatchInterface->getSurfaceStateHeapData(),
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args.dispatchInterface->getSurfaceStateHeapDataSize(), bindingTableStateCount,
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kernelDescriptor.payloadMappings.bindingTable.tableOffset));
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}
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} else {
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bool globalBindlessSsh = args.device->getBindlessHeapsHelper() != nullptr;
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auto sshHeapSize = args.dispatchInterface->getSurfaceStateHeapDataSize();
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if (sshHeapSize > 0u) {
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auto ssh = args.surfaceStateHeap;
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if (ssh == nullptr) {
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container.prepareBindfulSsh();
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ssh = container.getHeapWithRequiredSizeAndAlignment(HeapType::surfaceState, sshHeapSize, BINDING_TABLE_STATE::SURFACESTATEPOINTER_ALIGN_SIZE);
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}
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uint64_t bindlessSshBaseOffset = ptrDiff(ssh->getSpace(0), ssh->getCpuBase());
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if (globalBindlessSsh) {
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bindlessSshBaseOffset += ptrDiff(ssh->getGraphicsAllocation()->getGpuAddress(), ssh->getGraphicsAllocation()->getGpuBaseAddress());
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}
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DEBUG_BREAK_IF(bindingTableStateCount > 0u);
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// Allocate space for new ssh data
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auto dstSurfaceState = ssh->getSpace(sshHeapSize);
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memcpy_s(dstSurfaceState, sshHeapSize, args.dispatchInterface->getSurfaceStateHeapData(), sshHeapSize);
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args.dispatchInterface->patchBindlessOffsetsInCrossThreadData(bindlessSshBaseOffset);
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}
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}
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idd.setBindingTablePointer(bindingTablePointer);
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PreemptionHelper::programInterfaceDescriptorDataPreemption<Family>(&idd, args.preemptionMode);
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uint32_t samplerStateOffset = 0;
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uint32_t samplerCount = 0;
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if (kernelDescriptor.payloadMappings.samplerTable.numSamplers > 0) {
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auto dsHeap = args.dynamicStateHeap;
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if (dsHeap == nullptr) {
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dsHeap = container.getIndirectHeap(HeapType::dynamicState);
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auto dshSizeRequired = NEO::EncodeDispatchKernel<Family>::getSizeRequiredDsh(kernelDescriptor, container.getNumIddPerBlock());
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if (dsHeap->getAvailableSpace() <= dshSizeRequired) {
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dsHeap = container.getHeapWithRequiredSizeAndAlignment(HeapType::dynamicState, dsHeap->getMaxAvailableSpace(), NEO::EncodeDispatchKernel<Family>::getDefaultDshAlignment());
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}
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}
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UNRECOVERABLE_IF(!dsHeap);
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samplerCount = kernelDescriptor.payloadMappings.samplerTable.numSamplers;
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samplerStateOffset = EncodeStates<Family>::copySamplerState(dsHeap, kernelDescriptor.payloadMappings.samplerTable.tableOffset,
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kernelDescriptor.payloadMappings.samplerTable.numSamplers,
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kernelDescriptor.payloadMappings.samplerTable.borderColor,
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args.dispatchInterface->getDynamicStateHeapData(),
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args.device->getBindlessHeapsHelper(), args.device->getRootDeviceEnvironment());
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}
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idd.setSamplerStatePointer(samplerStateOffset);
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if (!isBindlessKernel) {
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EncodeDispatchKernel<Family>::adjustBindingTablePrefetch(idd, samplerCount, bindingTableStateCount);
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}
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EncodeDispatchKernel<Family>::setGrfInfo(&idd, kernelDescriptor.kernelAttributes.numGrfRequired, sizeCrossThreadData,
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sizePerThreadData, rootDeviceEnvironment);
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uint32_t sizeThreadData = sizePerThreadDataForWholeGroup + sizeCrossThreadData;
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bool isHwLocalIdGeneration = false;
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uint32_t sizeForImplicitArgsPatching = NEO::ImplicitArgsHelper::getSizeForImplicitArgsPatching(pImplicitArgs, kernelDescriptor, isHwLocalIdGeneration, rootDeviceEnvironment);
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uint32_t iohRequiredSize = sizeThreadData + sizeForImplicitArgsPatching;
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uint64_t offsetThreadData = 0u;
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{
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auto heapIndirect = container.getIndirectHeap(HeapType::indirectObject);
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UNRECOVERABLE_IF(!(heapIndirect));
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heapIndirect->align(DefaultWalkerType::INDIRECTDATASTARTADDRESS_ALIGN_SIZE);
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void *ptr = nullptr;
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if (args.isKernelDispatchedFromImmediateCmdList) {
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ptr = container.getHeapWithRequiredSizeAndAlignment(HeapType::indirectObject, iohRequiredSize, DefaultWalkerType::INDIRECTDATASTARTADDRESS_ALIGN_SIZE)->getSpace(iohRequiredSize);
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} else {
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ptr = container.getHeapSpaceAllowGrow(HeapType::indirectObject, iohRequiredSize);
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}
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UNRECOVERABLE_IF(!(ptr));
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offsetThreadData = heapIndirect->getHeapGpuStartOffset() + static_cast<uint64_t>(heapIndirect->getUsed() - sizeThreadData);
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uint64_t implicitArgsGpuVA = 0u;
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if (pImplicitArgs) {
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implicitArgsGpuVA = heapIndirect->getGraphicsAllocation()->getGpuAddress() + static_cast<uint64_t>(heapIndirect->getUsed() - iohRequiredSize);
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auto implicitArgsCrossThreadPtr = ptrOffset(const_cast<uint64_t *>(reinterpret_cast<const uint64_t *>(args.dispatchInterface->getCrossThreadData())), kernelDescriptor.payloadMappings.implicitArgs.implicitArgsBuffer);
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*implicitArgsCrossThreadPtr = implicitArgsGpuVA;
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ptr = NEO::ImplicitArgsHelper::patchImplicitArgs(ptr, *pImplicitArgs, kernelDescriptor, {}, rootDeviceEnvironment);
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}
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memcpy_s(ptr, sizeCrossThreadData,
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args.dispatchInterface->getCrossThreadData(), sizeCrossThreadData);
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if (args.isIndirect) {
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auto crossThreadDataGpuVA = heapIndirect->getGraphicsAllocation()->getGpuAddress() + heapIndirect->getUsed() - sizeThreadData;
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EncodeIndirectParams<Family>::encode(container, crossThreadDataGpuVA, args.dispatchInterface, implicitArgsGpuVA);
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}
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ptr = ptrOffset(ptr, sizeCrossThreadData);
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memcpy_s(ptr, sizePerThreadDataForWholeGroup,
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args.dispatchInterface->getPerThreadData(), sizePerThreadDataForWholeGroup);
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}
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uint32_t numIDD = 0u;
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void *iddPtr = getInterfaceDescriptor(container, args.dynamicStateHeap, numIDD);
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auto slmSizeNew = args.dispatchInterface->getSlmTotalSize();
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bool dirtyHeaps = container.isAnyHeapDirty();
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bool flush = container.slmSizeRef() != slmSizeNew || dirtyHeaps || args.requiresUncachedMocs;
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if (flush) {
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PipeControlArgs syncArgs;
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syncArgs.dcFlushEnable = args.dcFlushEnable;
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if (dirtyHeaps) {
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syncArgs.hdcPipelineFlush = true;
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}
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MemorySynchronizationCommands<Family>::addSingleBarrier(*container.getCommandStream(), syncArgs);
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if (dirtyHeaps || args.requiresUncachedMocs) {
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STATE_BASE_ADDRESS sba;
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auto gmmHelper = container.getDevice()->getGmmHelper();
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uint32_t statelessMocsIndex =
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args.requiresUncachedMocs ? (gmmHelper->getMOCS(GMM_RESOURCE_USAGE_OCL_BUFFER_CACHELINE_MISALIGNED) >> 1) : (gmmHelper->getMOCS(GMM_RESOURCE_USAGE_OCL_BUFFER) >> 1);
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auto l1CachePolicy = container.l1CachePolicyDataRef()->getL1CacheValue(false);
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auto l1CachePolicyDebuggerActive = container.l1CachePolicyDataRef()->getL1CacheValue(true);
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EncodeStateBaseAddressArgs<Family> encodeStateBaseAddressArgs = {
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&container, // container
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sba, // sbaCmd
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nullptr, // sbaProperties
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statelessMocsIndex, // statelessMocsIndex
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l1CachePolicy, // l1CachePolicy
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l1CachePolicyDebuggerActive, // l1CachePolicyDebuggerActive
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false, // multiOsContextCapable
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args.isRcs, // isRcs
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container.doubleSbaWaRef(), // doubleSbaWa
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false, // heaplessModeEnabled
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};
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EncodeStateBaseAddress<Family>::encode(encodeStateBaseAddressArgs);
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container.setDirtyStateForAllHeaps(false);
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args.requiresUncachedMocs = false;
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}
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if (container.slmSizeRef() != slmSizeNew) {
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EncodeL3State<Family>::encode(container, slmSizeNew != 0u);
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container.slmSizeRef() = slmSizeNew;
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}
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}
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if (numIDD == 0 || flush) {
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EncodeMediaInterfaceDescriptorLoad<Family>::encode(container, args.dynamicStateHeap);
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}
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cmd.setIndirectDataStartAddress(static_cast<uint32_t>(offsetThreadData));
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cmd.setIndirectDataLength(sizeThreadData);
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cmd.setInterfaceDescriptorOffset(numIDD);
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EncodeDispatchKernel<Family>::encodeThreadData(cmd,
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nullptr,
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threadDims,
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args.dispatchInterface->getGroupSize(),
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kernelDescriptor.kernelAttributes.simdSize,
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kernelDescriptor.kernelAttributes.numLocalIdChannels,
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args.dispatchInterface->getNumThreadsPerThreadGroup(),
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args.dispatchInterface->getThreadExecutionMask(),
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true,
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false,
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args.isIndirect,
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args.dispatchInterface->getRequiredWorkgroupOrder(),
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rootDeviceEnvironment);
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cmd.setPredicateEnable(args.isPredicate);
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auto threadGroupCount = cmd.getThreadGroupIdXDimension() * cmd.getThreadGroupIdYDimension() * cmd.getThreadGroupIdZDimension();
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EncodeDispatchKernel<Family>::adjustInterfaceDescriptorData(idd, *args.device, hwInfo, threadGroupCount, kernelDescriptor.kernelAttributes.numGrfRequired, cmd);
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memcpy_s(iddPtr, sizeof(idd), &idd, sizeof(idd));
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if (NEO::PauseOnGpuProperties::pauseModeAllowed(NEO::debugManager.flags.PauseOnEnqueue.get(), args.device->debugExecutionCounter.load(), NEO::PauseOnGpuProperties::PauseMode::BeforeWorkload)) {
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void *commandBuffer = listCmdBufferStream->getSpace(MemorySynchronizationCommands<Family>::getSizeForBarrierWithPostSyncOperation(args.device->getRootDeviceEnvironment(), false));
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args.additionalCommands->push_back(commandBuffer);
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EncodeSemaphore<Family>::applyMiSemaphoreWaitCommand(*listCmdBufferStream, *args.additionalCommands);
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}
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PreemptionHelper::applyPreemptionWaCmdsBegin<Family>(listCmdBufferStream, *args.device);
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auto buffer = listCmdBufferStream->getSpaceForCmd<DefaultWalkerType>();
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*buffer = cmd;
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PreemptionHelper::applyPreemptionWaCmdsEnd<Family>(listCmdBufferStream, *args.device);
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{
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auto mediaStateFlush = listCmdBufferStream->getSpaceForCmd<MEDIA_STATE_FLUSH>();
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*mediaStateFlush = Family::cmdInitMediaStateFlush;
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}
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args.partitionCount = 1;
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if (NEO::PauseOnGpuProperties::pauseModeAllowed(NEO::debugManager.flags.PauseOnEnqueue.get(), args.device->debugExecutionCounter.load(), NEO::PauseOnGpuProperties::PauseMode::AfterWorkload)) {
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void *commandBuffer = listCmdBufferStream->getSpace(MemorySynchronizationCommands<Family>::getSizeForBarrierWithPostSyncOperation(args.device->getRootDeviceEnvironment(), false));
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args.additionalCommands->push_back(commandBuffer);
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EncodeSemaphore<Family>::applyMiSemaphoreWaitCommand(*listCmdBufferStream, *args.additionalCommands);
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}
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}
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template <typename Family>
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void EncodeMediaInterfaceDescriptorLoad<Family>::encode(CommandContainer &container, IndirectHeap *childDsh) {
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using MEDIA_STATE_FLUSH = typename Family::MEDIA_STATE_FLUSH;
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using MEDIA_INTERFACE_DESCRIPTOR_LOAD = typename Family::MEDIA_INTERFACE_DESCRIPTOR_LOAD;
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void *heapBase = nullptr;
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if (childDsh != nullptr) {
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heapBase = childDsh->getCpuBase();
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} else {
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heapBase = container.getIndirectHeap(HeapType::dynamicState)->getCpuBase();
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}
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auto mediaStateFlush = container.getCommandStream()->getSpaceForCmd<MEDIA_STATE_FLUSH>();
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*mediaStateFlush = Family::cmdInitMediaStateFlush;
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auto iddOffset = static_cast<uint32_t>(ptrDiff(container.getIddBlock(), heapBase));
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MEDIA_INTERFACE_DESCRIPTOR_LOAD cmd = Family::cmdInitMediaInterfaceDescriptorLoad;
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cmd.setInterfaceDescriptorDataStartAddress(iddOffset);
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cmd.setInterfaceDescriptorTotalLength(sizeof(INTERFACE_DESCRIPTOR_DATA) * container.getNumIddPerBlock());
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auto buffer = container.getCommandStream()->getSpace(sizeof(cmd));
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*(decltype(cmd) *)buffer = cmd;
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}
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template <typename Family>
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inline bool EncodeDispatchKernel<Family>::isRuntimeLocalIdsGenerationRequired(uint32_t activeChannels,
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const size_t *lws,
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std::array<uint8_t, 3> walkOrder,
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bool requireInputWalkOrder,
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uint32_t &requiredWalkOrder,
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uint32_t simd) {
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requiredWalkOrder = 0u;
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return true;
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}
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template <typename Family>
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template <typename WalkerType>
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void EncodeDispatchKernel<Family>::encodeThreadData(WalkerType &walkerCmd,
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const uint32_t *startWorkGroup,
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const uint32_t *numWorkGroups,
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const uint32_t *workGroupSizes,
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uint32_t simd,
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uint32_t localIdDimensions,
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uint32_t threadsPerThreadGroup,
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uint32_t threadExecutionMask,
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bool localIdsGenerationByRuntime,
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bool inlineDataProgrammingRequired,
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bool isIndirect,
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uint32_t requiredWorkGroupOrder,
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const RootDeviceEnvironment &rootDeviceEnvironment) {
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if (isIndirect) {
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walkerCmd.setIndirectParameterEnable(true);
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} else {
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walkerCmd.setThreadGroupIdXDimension(static_cast<uint32_t>(numWorkGroups[0]));
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walkerCmd.setThreadGroupIdYDimension(static_cast<uint32_t>(numWorkGroups[1]));
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walkerCmd.setThreadGroupIdZDimension(static_cast<uint32_t>(numWorkGroups[2]));
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}
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if (startWorkGroup) {
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walkerCmd.setThreadGroupIdStartingX(static_cast<uint32_t>(startWorkGroup[0]));
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walkerCmd.setThreadGroupIdStartingY(static_cast<uint32_t>(startWorkGroup[1]));
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walkerCmd.setThreadGroupIdStartingResumeZ(static_cast<uint32_t>(startWorkGroup[2]));
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}
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walkerCmd.setSimdSize(getSimdConfig<WalkerType>(simd));
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auto localWorkSize = static_cast<uint32_t>(workGroupSizes[0] * workGroupSizes[1] * workGroupSizes[2]);
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if (threadsPerThreadGroup == 0) {
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threadsPerThreadGroup = getThreadsPerWG(simd, localWorkSize);
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}
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walkerCmd.setThreadWidthCounterMaximum(threadsPerThreadGroup);
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uint64_t executionMask = threadExecutionMask;
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if (executionMask == 0) {
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auto remainderSimdLanes = localWorkSize & (simd - 1);
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executionMask = maxNBitValue(remainderSimdLanes);
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if (!executionMask)
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executionMask = ~executionMask;
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}
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constexpr uint32_t maxDword = std::numeric_limits<uint32_t>::max();
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walkerCmd.setRightExecutionMask(static_cast<uint32_t>(executionMask));
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walkerCmd.setBottomExecutionMask(maxDword);
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}
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template <typename Family>
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template <typename InterfaceDescriptorType>
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void EncodeDispatchKernel<Family>::programBarrierEnable(InterfaceDescriptorType &interfaceDescriptor,
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uint32_t value,
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const HardwareInfo &hwInfo) {
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interfaceDescriptor.setBarrierEnable(value);
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}
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template <typename Family>
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template <typename WalkerType>
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inline void EncodeDispatchKernel<Family>::encodeAdditionalWalkerFields(const RootDeviceEnvironment &rootDeviceEnvironment, WalkerType &walkerCmd, const EncodeWalkerArgs &walkerArgs) {}
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template <typename Family>
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template <typename InterfaceDescriptorType>
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void EncodeDispatchKernel<Family>::appendAdditionalIDDFields(InterfaceDescriptorType *pInterfaceDescriptor, const RootDeviceEnvironment &rootDeviceEnvironment, const uint32_t threadsPerThreadGroup, uint32_t slmTotalSize, SlmPolicy slmPolicy) {}
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template <typename Family>
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inline bool EncodeDispatchKernel<Family>::isDshNeeded(const DeviceInfo &deviceInfo) {
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return true;
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}
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template <typename Family>
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inline void EncodeComputeMode<Family>::adjustPipelineSelect(CommandContainer &container, const NEO::KernelDescriptor &kernelDescriptor) {
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}
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template <typename Family>
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void EncodeStateBaseAddress<Family>::setSbaAddressesForDebugger(NEO::Debugger::SbaAddresses &sbaAddress, const STATE_BASE_ADDRESS &sbaCmd) {
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sbaAddress.indirectObjectBaseAddress = sbaCmd.getIndirectObjectBaseAddress();
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sbaAddress.bindlessSurfaceStateBaseAddress = sbaCmd.getBindlessSurfaceStateBaseAddress();
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sbaAddress.dynamicStateBaseAddress = sbaCmd.getDynamicStateBaseAddress();
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sbaAddress.generalStateBaseAddress = sbaCmd.getGeneralStateBaseAddress();
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sbaAddress.instructionBaseAddress = sbaCmd.getInstructionBaseAddress();
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sbaAddress.surfaceStateBaseAddress = sbaCmd.getSurfaceStateBaseAddress();
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}
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template <typename Family>
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void EncodeStateBaseAddress<Family>::encode(EncodeStateBaseAddressArgs<Family> &args) {
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auto &device = *args.container->getDevice();
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if (args.container->isAnyHeapDirty()) {
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EncodeWA<Family>::encodeAdditionalPipelineSelect(*args.container->getCommandStream(), {}, true, device.getRootDeviceEnvironment(), args.isRcs);
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}
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auto gmmHelper = device.getGmmHelper();
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auto dsh = args.container->isHeapDirty(HeapType::dynamicState) ? args.container->getIndirectHeap(HeapType::dynamicState) : nullptr;
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auto ioh = args.container->isHeapDirty(HeapType::indirectObject) ? args.container->getIndirectHeap(HeapType::indirectObject) : nullptr;
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auto ssh = args.container->isHeapDirty(HeapType::surfaceState) ? args.container->getIndirectHeap(HeapType::surfaceState) : nullptr;
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auto isDebuggerActive = device.getDebugger() != nullptr;
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uint64_t globalHeapsBase = 0;
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uint64_t bindlessSurfStateBase = 0;
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bool useGlobalSshAndDsh = false;
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if (device.getBindlessHeapsHelper()) {
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bindlessSurfStateBase = device.getBindlessHeapsHelper()->getGlobalHeapsBase();
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globalHeapsBase = device.getBindlessHeapsHelper()->getGlobalHeapsBase();
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useGlobalSshAndDsh = true;
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}
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StateBaseAddressHelperArgs<Family> stateBaseAddressHelperArgs = {
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0, // generalStateBaseAddress
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args.container->getIndirectObjectHeapBaseAddress(), // indirectObjectHeapBaseAddress
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args.container->getInstructionHeapBaseAddress(), // instructionHeapBaseAddress
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globalHeapsBase, // globalHeapsBaseAddress
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0, // surfaceStateBaseAddress
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bindlessSurfStateBase, // bindlessSurfaceStateBaseAddress
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&args.sbaCmd, // stateBaseAddressCmd
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args.sbaProperties, // sbaProperties
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dsh, // dsh
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ioh, // ioh
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ssh, // ssh
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gmmHelper, // gmmHelper
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args.statelessMocsIndex, // statelessMocsIndex
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args.l1CachePolicy, // l1CachePolicy
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args.l1CachePolicyDebuggerActive, // l1CachePolicyDebuggerActive
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NEO::MemoryCompressionState::notApplicable, // memoryCompressionState
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false, // setInstructionStateBaseAddress
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false, // setGeneralStateBaseAddress
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useGlobalSshAndDsh, // useGlobalHeapsBaseAddress
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false, // isMultiOsContextCapable
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false, // areMultipleSubDevicesInContext
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false, // overrideSurfaceStateBaseAddress
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isDebuggerActive, // isDebuggerActive
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args.doubleSbaWa, // doubleSbaWa
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args.heaplessModeEnabled // heaplessModeEnabled
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};
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StateBaseAddressHelper<Family>::programStateBaseAddressIntoCommandStream(stateBaseAddressHelperArgs,
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*args.container->getCommandStream());
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EncodeWA<Family>::encodeAdditionalPipelineSelect(*args.container->getCommandStream(), {}, false, device.getRootDeviceEnvironment(), args.isRcs);
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}
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template <typename Family>
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size_t EncodeStateBaseAddress<Family>::getRequiredSizeForStateBaseAddress(Device &device, CommandContainer &container, bool isRcs) {
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return sizeof(typename Family::STATE_BASE_ADDRESS) + 2 * EncodeWA<Family>::getAdditionalPipelineSelectSize(device, isRcs);
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}
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template <typename Family>
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void EncodeL3State<Family>::encode(CommandContainer &container, bool enableSLM) {
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auto offset = L3CNTLRegisterOffset<Family>::registerOffset;
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auto data = PreambleHelper<Family>::getL3Config(container.getDevice()->getHardwareInfo(), enableSLM);
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EncodeSetMMIO<Family>::encodeIMM(container, offset, data, false, false);
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}
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template <typename GfxFamily>
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void EncodeMiFlushDW<GfxFamily>::adjust(MI_FLUSH_DW *miFlushDwCmd, const ProductHelper &productHelper) {}
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template <typename GfxFamily>
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inline void EncodeWA<GfxFamily>::encodeAdditionalPipelineSelect(LinearStream &stream, const PipelineSelectArgs &args, bool is3DPipeline,
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const RootDeviceEnvironment &rootDeviceEnvironment, bool isRcs) {}
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template <typename GfxFamily>
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inline size_t EncodeWA<GfxFamily>::getAdditionalPipelineSelectSize(Device &device, bool isRcs) {
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return 0;
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}
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template <typename GfxFamily>
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inline void EncodeWA<GfxFamily>::addPipeControlPriorToNonPipelinedStateCommand(LinearStream &commandStream, PipeControlArgs args,
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const RootDeviceEnvironment &rootDeviceEnvironment, bool isRcs) {
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MemorySynchronizationCommands<GfxFamily>::addSingleBarrier(commandStream, args);
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}
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template <typename GfxFamily>
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inline void EncodeWA<GfxFamily>::addPipeControlBeforeStateBaseAddress(LinearStream &commandStream,
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const RootDeviceEnvironment &rootDeviceEnvironment, bool isRcs, bool dcFlushRequired) {
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PipeControlArgs args;
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args.dcFlushEnable = dcFlushRequired;
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args.textureCacheInvalidationEnable = true;
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NEO::EncodeWA<GfxFamily>::addPipeControlPriorToNonPipelinedStateCommand(commandStream, args, rootDeviceEnvironment, isRcs);
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}
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template <typename GfxFamily>
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inline void EncodeWA<GfxFamily>::adjustCompressionFormatForPlanarImage(uint32_t &compressionFormat, int plane) {
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}
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template <typename GfxFamily>
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inline void EncodeSurfaceState<GfxFamily>::encodeExtraBufferParams(EncodeSurfaceStateArgs &args) {
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auto surfaceState = reinterpret_cast<R_SURFACE_STATE *>(args.outMemory);
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encodeExtraCacheSettings(surfaceState, args);
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}
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template <typename GfxFamily>
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bool EncodeSurfaceState<GfxFamily>::isBindingTablePrefetchPreferred() {
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return true;
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}
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template <typename Family>
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void EncodeSurfaceState<Family>::setCoherencyType(R_SURFACE_STATE *surfaceState, COHERENCY_TYPE coherencyType) {
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surfaceState->setCoherencyType(coherencyType);
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}
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template <typename Family>
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void EncodeSemaphore<Family>::programMiSemaphoreWait(MI_SEMAPHORE_WAIT *cmd,
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uint64_t compareAddress,
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uint64_t compareData,
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COMPARE_OPERATION compareMode,
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bool registerPollMode,
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bool waitMode,
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bool useQwordData,
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bool indirect,
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bool switchOnUnsuccessful) {
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constexpr uint64_t upper32b = static_cast<uint64_t>(std::numeric_limits<uint32_t>::max()) << 32;
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UNRECOVERABLE_IF(useQwordData || (compareData & upper32b));
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UNRECOVERABLE_IF(indirect);
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MI_SEMAPHORE_WAIT localCmd = Family::cmdInitMiSemaphoreWait;
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localCmd.setCompareOperation(compareMode);
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localCmd.setSemaphoreDataDword(static_cast<uint32_t>(compareData));
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localCmd.setSemaphoreGraphicsAddress(compareAddress);
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localCmd.setWaitMode(waitMode ? MI_SEMAPHORE_WAIT::WAIT_MODE::WAIT_MODE_POLLING_MODE : MI_SEMAPHORE_WAIT::WAIT_MODE::WAIT_MODE_SIGNAL_MODE);
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*cmd = localCmd;
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}
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template <typename GfxFamily>
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void EncodeEnableRayTracing<GfxFamily>::programEnableRayTracing(LinearStream &commandStream, uint64_t backBuffer) {
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}
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template <typename Family>
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inline void EncodeStoreMemory<Family>::programStoreDataImm(MI_STORE_DATA_IMM *cmdBuffer,
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uint64_t gpuAddress,
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uint32_t dataDword0,
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uint32_t dataDword1,
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bool storeQword,
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bool workloadPartitionOffset) {
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MI_STORE_DATA_IMM storeDataImmediate = Family::cmdInitStoreDataImm;
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storeDataImmediate.setAddress(gpuAddress);
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storeDataImmediate.setStoreQword(storeQword);
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storeDataImmediate.setDataDword0(dataDword0);
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if (storeQword) {
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storeDataImmediate.setDataDword1(dataDword1);
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storeDataImmediate.setDwordLength(MI_STORE_DATA_IMM::DWORD_LENGTH::DWORD_LENGTH_STORE_QWORD);
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} else {
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storeDataImmediate.setDwordLength(MI_STORE_DATA_IMM::DWORD_LENGTH::DWORD_LENGTH_STORE_DWORD);
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}
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EncodeStoreMemory<Family>::encodeForceCompletionCheck(storeDataImmediate);
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*cmdBuffer = storeDataImmediate;
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}
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template <typename Family>
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inline void EncodeStoreMemory<Family>::encodeForceCompletionCheck(MI_STORE_DATA_IMM &storeDataImmCmd) {
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}
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template <typename Family>
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inline void EncodeMiArbCheck<Family>::adjust(MI_ARB_CHECK &miArbCheck, std::optional<bool> preParserDisable) {
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}
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template <typename Family>
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template <typename WalkerType>
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void EncodeDispatchKernel<Family>::setupPostSyncMocs(WalkerType &walkerCmd, const RootDeviceEnvironment &rootDeviceEnvironment, bool dcFlush) {}
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template <typename Family>
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template <typename WalkerType>
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void EncodeDispatchKernel<Family>::setupPostSyncForRegularEvent(WalkerType &walkerCmd, const EncodeDispatchKernelArgs &args) {}
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template <typename Family>
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template <typename WalkerType>
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void EncodeDispatchKernel<Family>::setupPostSyncForInOrderExec(WalkerType &walkerCmd, const EncodeDispatchKernelArgs &args) {}
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template <typename Family>
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template <typename WalkerType>
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void EncodeDispatchKernel<Family>::adjustWalkOrder(WalkerType &walkerCmd, uint32_t requiredWorkGroupOrder, const RootDeviceEnvironment &rootDeviceEnvironment) {}
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template <typename Family>
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size_t EncodeDispatchKernel<Family>::additionalSizeRequiredDsh(uint32_t iddCount) {
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return iddCount * sizeof(typename Family::INTERFACE_DESCRIPTOR_DATA);
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}
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template <typename Family>
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inline size_t EncodeDispatchKernel<Family>::getInlineDataOffset(EncodeDispatchKernelArgs &args) {
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return 0;
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}
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template <typename Family>
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size_t EncodeStates<Family>::getSshHeapSize() {
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return 64 * MemoryConstants::kiloByte;
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}
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template <typename Family>
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void EncodeBatchBufferStartOrEnd<Family>::appendBatchBufferStart(MI_BATCH_BUFFER_START &cmd, bool indirect, bool predicate) {
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cmd.setPredicationEnable(predicate);
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}
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template <typename Family>
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void InOrderPatchCommandHelpers::PatchCmd<Family>::patchComputeWalker(uint64_t appendCounterValue) {
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UNRECOVERABLE_IF(true);
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}
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} // namespace NEO
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