Files
compute-runtime/level_zero/core/source/cmdqueue/cmdqueue.cpp
Zbigniew Zdanowicz 669665deff performance: primary batch buffer use only on regular command lists
Immediate command list can use internal command queue.
Immediate command list then uses variable start offset and it does not
work with primary batch buffer.

Related-To: NEO-7807

Signed-off-by: Zbigniew Zdanowicz <zbigniew.zdanowicz@intel.com>
2023-04-19 19:36:51 +02:00

346 lines
15 KiB
C++

/*
* Copyright (C) 2020-2023 Intel Corporation
*
* SPDX-License-Identifier: MIT
*
*/
#include "shared/source/assert_handler/assert_handler.h"
#include "shared/source/command_container/cmdcontainer.h"
#include "shared/source/command_stream/command_stream_receiver.h"
#include "shared/source/command_stream/csr_definitions.h"
#include "shared/source/command_stream/linear_stream.h"
#include "shared/source/command_stream/queue_throttle.h"
#include "shared/source/command_stream/submissions_aggregator.h"
#include "shared/source/command_stream/wait_status.h"
#include "shared/source/debug_settings/debug_settings_manager.h"
#include "shared/source/debugger/debugger_l0.h"
#include "shared/source/execution_environment/root_device_environment.h"
#include "shared/source/helpers/aligned_memory.h"
#include "shared/source/memory_manager/allocation_properties.h"
#include "shared/source/memory_manager/memory_manager.h"
#include "shared/source/os_interface/os_context.h"
#include "shared/source/os_interface/product_helper.h"
#include "level_zero/core/source/cmdqueue/cmdqueue_imp.h"
#include "level_zero/core/source/device/device.h"
#include "level_zero/core/source/device/device_imp.h"
#include "level_zero/core/source/driver/driver_handle_imp.h"
#include "level_zero/core/source/gfx_core_helpers/l0_gfx_core_helper.h"
#include "level_zero/core/source/kernel/kernel.h"
#include "igfxfmid.h"
namespace L0 {
CommandQueueAllocatorFn commandQueueFactory[IGFX_MAX_PRODUCT] = {};
bool CommandQueue::frontEndTrackingEnabled() const {
return NEO::DebugManager.flags.AllowPatchingVfeStateInCommandLists.get() || this->frontEndStateTracking;
}
CommandQueueImp::CommandQueueImp(Device *device, NEO::CommandStreamReceiver *csr, const ze_command_queue_desc_t *desc)
: desc(*desc), device(device), csr(csr) {
int overrideCmdQueueSyncMode = NEO::DebugManager.flags.OverrideCmdQueueSynchronousMode.get();
if (overrideCmdQueueSyncMode != -1) {
this->desc.mode = static_cast<ze_command_queue_mode_t>(overrideCmdQueueSyncMode);
}
int overrideUseKmdWaitFunction = NEO::DebugManager.flags.OverrideUseKmdWaitFunction.get();
if (overrideUseKmdWaitFunction != -1) {
useKmdWaitFunction = !!(overrideUseKmdWaitFunction);
}
this->stateChanges.reserve(CommandQueueImp::defaultCommandListStateChangeListSize);
}
ze_result_t CommandQueueImp::destroy() {
if (this->clientId != CommandQueue::clientNotRegistered) {
this->csr->unregisterClient();
}
if (commandStream.getCpuBase() != nullptr) {
commandStream.replaceGraphicsAllocation(nullptr);
commandStream.replaceBuffer(nullptr, 0);
}
buffers.destroy(this->getDevice());
if (NEO::Debugger::isDebugEnabled(internalUsage) && device->getL0Debugger()) {
device->getL0Debugger()->notifyCommandQueueDestroyed(device->getNEODevice());
}
delete this;
return ZE_RESULT_SUCCESS;
}
ze_result_t CommandQueueImp::initialize(bool copyOnly, bool isInternal, bool immediateCmdListQueue) {
ze_result_t returnValue;
internalUsage = isInternal;
internalQueueForImmediateCommandList = immediateCmdListQueue;
returnValue = buffers.initialize(device, totalCmdBufferSize);
if (returnValue == ZE_RESULT_SUCCESS) {
NEO::GraphicsAllocation *bufferAllocation = buffers.getCurrentBufferAllocation();
UNRECOVERABLE_IF(bufferAllocation == nullptr);
commandStream.replaceBuffer(bufferAllocation->getUnderlyingBuffer(),
defaultQueueCmdBufferSize);
commandStream.replaceGraphicsAllocation(bufferAllocation);
isCopyOnlyCommandQueue = copyOnly;
preemptionCmdSyncProgramming = getPreemptionCmdProgramming();
activeSubDevices = static_cast<uint32_t>(csr->getOsContext().getDeviceBitfield().count());
if (!isInternal) {
partitionCount = csr->getActivePartitions();
}
if (NEO::Debugger::isDebugEnabled(internalUsage) && device->getL0Debugger()) {
device->getL0Debugger()->notifyCommandQueueCreated(device->getNEODevice());
}
auto &hwInfo = device->getHwInfo();
auto &rootDeviceEnvironment = device->getNEODevice()->getRootDeviceEnvironment();
this->stateComputeModeTracking = L0GfxCoreHelper::enableStateComputeModeTracking(rootDeviceEnvironment);
this->frontEndStateTracking = L0GfxCoreHelper::enableFrontEndStateTracking(rootDeviceEnvironment);
this->pipelineSelectStateTracking = L0GfxCoreHelper::enablePipelineSelectStateTracking(rootDeviceEnvironment);
this->stateBaseAddressTracking = L0GfxCoreHelper::enableStateBaseAddressTracking(rootDeviceEnvironment);
auto &productHelper = rootDeviceEnvironment.getHelper<NEO::ProductHelper>();
this->doubleSbaWa = productHelper.isAdditionalStateBaseAddressWARequired(hwInfo);
this->cmdListHeapAddressModel = L0GfxCoreHelper::getHeapAddressModel(rootDeviceEnvironment);
this->dispatchCmdListBatchBufferAsPrimary = L0GfxCoreHelper::dispatchCmdListBatchBufferAsPrimary(!immediateCmdListQueue);
}
return returnValue;
}
NEO::WaitStatus CommandQueueImp::reserveLinearStreamSize(size_t size) {
auto waitStatus{NEO::WaitStatus::Ready};
if (commandStream.getAvailableSpace() < size) {
waitStatus = buffers.switchBuffers(csr);
NEO::GraphicsAllocation *nextBufferAllocation = buffers.getCurrentBufferAllocation();
commandStream.replaceBuffer(nextBufferAllocation->getUnderlyingBuffer(),
defaultQueueCmdBufferSize);
commandStream.replaceGraphicsAllocation(nextBufferAllocation);
}
return waitStatus;
}
NEO::SubmissionStatus CommandQueueImp::submitBatchBuffer(size_t offset, NEO::ResidencyContainer &residencyContainer, void *endingCmdPtr,
bool isCooperative) {
UNRECOVERABLE_IF(csr == nullptr);
NEO::BatchBuffer batchBuffer(commandStream.getGraphicsAllocation(), offset, 0, 0, nullptr, false, false,
NEO::QueueThrottle::HIGH, NEO::QueueSliceCount::defaultSliceCount,
commandStream.getUsed(), &commandStream, endingCmdPtr, csr->getNumClients(), false, false);
commandStream.getGraphicsAllocation()->updateTaskCount(csr->peekTaskCount() + 1, csr->getOsContext().getContextId());
commandStream.getGraphicsAllocation()->updateResidencyTaskCount(csr->peekTaskCount() + 1, csr->getOsContext().getContextId());
csr->setActivePartitions(partitionCount);
auto ret = csr->submitBatchBuffer(batchBuffer, csr->getResidencyAllocations());
if (ret != NEO::SubmissionStatus::SUCCESS) {
commandStream.getGraphicsAllocation()->updateTaskCount(csr->peekTaskCount(), csr->getOsContext().getContextId());
commandStream.getGraphicsAllocation()->updateResidencyTaskCount(csr->peekTaskCount(), csr->getOsContext().getContextId());
return ret;
}
buffers.setCurrentFlushStamp(csr->peekTaskCount(), csr->obtainCurrentFlushStamp());
return ret;
}
ze_result_t CommandQueueImp::synchronize(uint64_t timeout) {
if ((timeout == std::numeric_limits<uint64_t>::max()) && useKmdWaitFunction) {
auto &waitPair = buffers.getCurrentFlushStamp();
const auto waitStatus = csr->waitForTaskCountWithKmdNotifyFallback(waitPair.first, waitPair.second, false, NEO::QueueThrottle::MEDIUM);
if (waitStatus == NEO::WaitStatus::GpuHang) {
postSyncOperations(true);
return ZE_RESULT_ERROR_DEVICE_LOST;
}
postSyncOperations(false);
return ZE_RESULT_SUCCESS;
} else {
return synchronizeByPollingForTaskCount(timeout);
}
}
ze_result_t CommandQueueImp::synchronizeByPollingForTaskCount(uint64_t timeout) {
UNRECOVERABLE_IF(csr == nullptr);
auto taskCountToWait = getTaskCount();
bool enableTimeout = true;
int64_t timeoutMicroseconds = static_cast<int64_t>(timeout);
if (timeout == std::numeric_limits<uint64_t>::max()) {
enableTimeout = false;
timeoutMicroseconds = NEO::TimeoutControls::maxTimeout;
}
const auto waitStatus = csr->waitForCompletionWithTimeout(NEO::WaitParams{false, enableTimeout, timeoutMicroseconds}, taskCountToWait);
if (waitStatus == NEO::WaitStatus::NotReady) {
return ZE_RESULT_NOT_READY;
}
if (waitStatus == NEO::WaitStatus::GpuHang) {
postSyncOperations(true);
return ZE_RESULT_ERROR_DEVICE_LOST;
}
postSyncOperations(false);
return ZE_RESULT_SUCCESS;
}
void CommandQueueImp::printKernelsPrintfOutput(bool hangDetected) {
size_t size = this->printfKernelContainer.size();
for (size_t i = 0; i < size; i++) {
this->printfKernelContainer[i]->printPrintfOutput(hangDetected);
}
this->printfKernelContainer.clear();
}
void CommandQueueImp::checkAssert() {
bool valueExpected = true;
bool hadAssert = cmdListWithAssertExecuted.compare_exchange_strong(valueExpected, false);
if (hadAssert) {
UNRECOVERABLE_IF(device->getNEODevice()->getRootDeviceEnvironment().assertHandler.get() == nullptr);
device->getNEODevice()->getRootDeviceEnvironment().assertHandler->printAssertAndAbort();
}
}
void CommandQueueImp::postSyncOperations(bool hangDetected) {
printKernelsPrintfOutput(hangDetected);
checkAssert();
if (NEO::Debugger::isDebugEnabled(internalUsage) && device->getL0Debugger() && NEO::DebugManager.flags.DebuggerLogBitmask.get()) {
device->getL0Debugger()->printTrackedAddresses(csr->getOsContext().getContextId());
}
}
CommandQueue *CommandQueue::create(uint32_t productFamily, Device *device, NEO::CommandStreamReceiver *csr,
const ze_command_queue_desc_t *desc, bool isCopyOnly, bool isInternal, bool immediateCmdListQueue, ze_result_t &returnValue) {
CommandQueueAllocatorFn allocator = nullptr;
if (productFamily < IGFX_MAX_PRODUCT) {
allocator = commandQueueFactory[productFamily];
}
CommandQueueImp *commandQueue = nullptr;
returnValue = ZE_RESULT_ERROR_UNINITIALIZED;
if (!allocator) {
return nullptr;
}
commandQueue = static_cast<CommandQueueImp *>((*allocator)(device, csr, desc));
returnValue = commandQueue->initialize(isCopyOnly, isInternal, immediateCmdListQueue);
if (returnValue != ZE_RESULT_SUCCESS) {
commandQueue->destroy();
commandQueue = nullptr;
return nullptr;
}
auto &osContext = csr->getOsContext();
DriverHandleImp *driverHandleImp = static_cast<DriverHandleImp *>(device->getDriverHandle());
if (driverHandleImp->powerHint && driverHandleImp->powerHint != osContext.getUmdPowerHintValue()) {
osContext.setUmdPowerHintValue(driverHandleImp->powerHint);
osContext.reInitializeContext();
}
csr->initializeResources();
csr->initDirectSubmission();
if (commandQueue->cmdListHeapAddressModel == NEO::HeapAddressModel::GlobalStateless) {
csr->createGlobalStatelessHeap();
}
return commandQueue;
}
ze_command_queue_mode_t CommandQueueImp::getSynchronousMode() const {
return desc.mode;
}
ze_result_t CommandQueueImp::CommandBufferManager::initialize(Device *device, size_t sizeRequested) {
size_t alignedSize = alignUp<size_t>(sizeRequested, MemoryConstants::pageSize64k);
NEO::AllocationProperties properties{device->getRootDeviceIndex(), true, alignedSize,
NEO::AllocationType::COMMAND_BUFFER,
(device->getNEODevice()->getNumGenericSubDevices() > 1u) /* multiOsContextCapable */,
false,
device->getNEODevice()->getDeviceBitfield()};
auto firstBuffer = device->obtainReusableAllocation(alignedSize, NEO::AllocationType::COMMAND_BUFFER);
if (!firstBuffer) {
firstBuffer = device->getNEODevice()->getMemoryManager()->allocateGraphicsMemoryWithProperties(properties);
}
auto secondBuffer = device->obtainReusableAllocation(alignedSize, NEO::AllocationType::COMMAND_BUFFER);
if (!secondBuffer) {
secondBuffer = device->getNEODevice()->getMemoryManager()->allocateGraphicsMemoryWithProperties(properties);
}
buffers[BUFFER_ALLOCATION::FIRST] = firstBuffer;
buffers[BUFFER_ALLOCATION::SECOND] = secondBuffer;
if (!buffers[BUFFER_ALLOCATION::FIRST] || !buffers[BUFFER_ALLOCATION::SECOND]) {
return ZE_RESULT_ERROR_OUT_OF_DEVICE_MEMORY;
}
flushId[BUFFER_ALLOCATION::FIRST] = std::make_pair(0u, 0u);
flushId[BUFFER_ALLOCATION::SECOND] = std::make_pair(0u, 0u);
return ZE_RESULT_SUCCESS;
}
void CommandQueueImp::CommandBufferManager::destroy(Device *device) {
if (buffers[BUFFER_ALLOCATION::FIRST]) {
device->storeReusableAllocation(*buffers[BUFFER_ALLOCATION::FIRST]);
buffers[BUFFER_ALLOCATION::FIRST] = nullptr;
}
if (buffers[BUFFER_ALLOCATION::SECOND]) {
device->storeReusableAllocation(*buffers[BUFFER_ALLOCATION::SECOND]);
buffers[BUFFER_ALLOCATION::SECOND] = nullptr;
}
}
NEO::WaitStatus CommandQueueImp::CommandBufferManager::switchBuffers(NEO::CommandStreamReceiver *csr) {
if (bufferUse == BUFFER_ALLOCATION::FIRST) {
bufferUse = BUFFER_ALLOCATION::SECOND;
} else {
bufferUse = BUFFER_ALLOCATION::FIRST;
}
auto waitStatus{NEO::WaitStatus::Ready};
auto completionId = flushId[bufferUse];
if (completionId.second != 0u) {
UNRECOVERABLE_IF(csr == nullptr);
waitStatus = csr->waitForTaskCountWithKmdNotifyFallback(completionId.first, completionId.second, false, NEO::QueueThrottle::MEDIUM);
}
return waitStatus;
}
void CommandQueueImp::handleIndirectAllocationResidency(UnifiedMemoryControls unifiedMemoryControls, std::unique_lock<std::mutex> &lockForIndirect, bool performMigration) {
NEO::Device *neoDevice = this->device->getNEODevice();
auto svmAllocsManager = this->device->getDriverHandle()->getSvmAllocsManager();
auto submitAsPack = this->device->getDriverHandle()->getMemoryManager()->allowIndirectAllocationsAsPack(neoDevice->getRootDeviceIndex());
if (NEO::DebugManager.flags.MakeIndirectAllocationsResidentAsPack.get() != -1) {
submitAsPack = !!NEO::DebugManager.flags.MakeIndirectAllocationsResidentAsPack.get();
}
if (submitAsPack) {
svmAllocsManager->makeIndirectAllocationsResident(*(this->csr), this->csr->peekTaskCount() + 1u);
} else {
lockForIndirect = this->device->getDriverHandle()->getSvmAllocsManager()->obtainOwnership();
NEO::ResidencyContainer residencyAllocations;
svmAllocsManager->addInternalAllocationsToResidencyContainer(neoDevice->getRootDeviceIndex(),
residencyAllocations,
unifiedMemoryControls.generateMask());
makeResidentAndMigrate(performMigration, residencyAllocations);
}
}
void CommandQueueImp::makeResidentAndMigrate(bool performMigration, const NEO::ResidencyContainer &residencyContainer) {
for (auto alloc : residencyContainer) {
csr->makeResident(*alloc);
if (performMigration &&
(alloc->getAllocationType() == NEO::AllocationType::SVM_GPU ||
alloc->getAllocationType() == NEO::AllocationType::SVM_CPU)) {
auto pageFaultManager = device->getDriverHandle()->getMemoryManager()->getPageFaultManager();
pageFaultManager->moveAllocationToGpuDomain(reinterpret_cast<void *>(alloc->getGpuAddress()));
}
}
}
} // namespace L0