#pragma once #include "cuda_error.hpp" /** @file cuda_stream.hpp @brief CUDA stream utilities include file */ namespace tf { // ---------------------------------------------------------------------------- // cudaEventBase // ---------------------------------------------------------------------------- /** @class cudaEventCreator @brief class to create functors that construct CUDA events */ class cudaEventCreator { public: /** @brief creates a new `cudaEvent_t` object using `cudaEventCreate` */ cudaEvent_t operator () () const { cudaEvent_t event; TF_CHECK_CUDA(cudaEventCreate(&event), "failed to create a CUDA event"); return event; } /** @brief creates a new `cudaEvent_t` object using `cudaEventCreate` with the given `flag` */ cudaEvent_t operator () (unsigned int flag) const { cudaEvent_t event; TF_CHECK_CUDA( cudaEventCreateWithFlags(&event, flag), "failed to create a CUDA event with flag=", flag ); return event; } /** @brief returns the given `cudaEvent_t` object */ cudaEvent_t operator () (cudaEvent_t event) const { return event; } }; /** @class cudaEventDeleter @brief class to create a functor that deletes a CUDA event */ class cudaEventDeleter { public: /** @brief deletes the given `cudaEvent_t` object using `cudaEventDestroy` */ void operator () (cudaEvent_t event) const { cudaEventDestroy(event); } }; /** @class cudaEventBase @brief class to create a CUDA event with unique ownership @tparam Creator functor to create the stream (used in constructor) @tparam Deleter functor to delete the stream (used in destructor) The `cudaEventBase` class encapsulates a `cudaEvent_t` using `std::unique_ptr`, ensuring that CUDA events are properly created and destroyed with a unique ownership. */ template class cudaEventBase : public std::unique_ptr, Deleter> { static_assert(std::is_pointer_v, "cudaEvent_t is not a pointer type"); public: /** @brief base type for the underlying unique pointer This alias provides a shorthand for the underlying `std::unique_ptr` type that manages CUDA event resources with an associated deleter. */ using base_type = std::unique_ptr, Deleter>; /** @brief constructs a `cudaEvent` object by passing the given arguments to the event creator Constructs a `cudaEvent` object by passing the given arguments to the event creator @param args arguments to pass to the event creator */ template explicit cudaEventBase(ArgsT&& ... args) : base_type( Creator{}(std::forward(args)...), Deleter() ) { } /** @brief constructs a `cudaEvent` from the given rhs using move semantics */ cudaEventBase(cudaEventBase&&) = default; /** @brief assign the rhs to `*this` using move semantics */ cudaEventBase& operator = (cudaEventBase&&) = default; private: cudaEventBase(const cudaEventBase&) = delete; cudaEventBase& operator = (const cudaEventBase&) = delete; }; /** @brief default smart pointer type to manage a `cudaEvent_t` object with unique ownership */ using cudaEvent = cudaEventBase; // ---------------------------------------------------------------------------- // cudaStream // ---------------------------------------------------------------------------- /** @class cudaStreamCreator @brief class to create functors that construct CUDA streams */ class cudaStreamCreator { public: /** @brief constructs a new `cudaStream_t` object using `cudaStreamCreate` */ cudaStream_t operator () () const { cudaStream_t stream; TF_CHECK_CUDA(cudaStreamCreate(&stream), "failed to create a CUDA stream"); return stream; } /** @brief returns the given `cudaStream_t` object */ cudaStream_t operator () (cudaStream_t stream) const { return stream; } }; /** @class cudaStreamDeleter @brief class to create a functor that deletes a CUDA stream */ class cudaStreamDeleter { public: /** @brief deletes the given `cudaStream_t` object */ void operator () (cudaStream_t stream) const { cudaStreamDestroy(stream); } }; /** @class cudaStreamBase @brief class to create a CUDA stream with unique ownership @tparam Creator functor to create the stream (used in constructor) @tparam Deleter functor to delete the stream (used in destructor) The `cudaStream` class encapsulates a `cudaStream_t` using `std::unique_ptr`, ensuring that CUDA events are properly created and destroyed with a unique ownership. */ template class cudaStreamBase : public std::unique_ptr, Deleter> { static_assert(std::is_pointer_v, "cudaStream_t is not a pointer type"); public: /** @brief base type for the underlying unique pointer This alias provides a shorthand for the underlying `std::unique_ptr` type that manages CUDA stream resources with an associated deleter. */ using base_type = std::unique_ptr, Deleter>; /** @brief constructs a `cudaStream` object by passing the given arguments to the stream creator Constructs a `cudaStream` object by passing the given arguments to the stream creator @param args arguments to pass to the stream creator */ template explicit cudaStreamBase(ArgsT&& ... args) : base_type( Creator{}(std::forward(args)...), Deleter() ) { } /** @brief constructs a `cudaStream` from the given rhs using move semantics */ cudaStreamBase(cudaStreamBase&&) = default; /** @brief assign the rhs to `*this` using move semantics */ cudaStreamBase& operator = (cudaStreamBase&&) = default; /** @brief synchronizes the associated stream Equivalently calling @c cudaStreamSynchronize to block until this stream has completed all operations. */ cudaStreamBase& synchronize() { TF_CHECK_CUDA( cudaStreamSynchronize(this->get()), "failed to synchronize a CUDA stream" ); return *this; } /** @brief begins graph capturing on the stream When a stream is in capture mode, all operations pushed into the stream will not be executed, but will instead be captured into a graph, which will be returned via cudaStream::end_capture. A thread's mode can be one of the following: + @c cudaStreamCaptureModeGlobal: This is the default mode. If the local thread has an ongoing capture sequence that was not initiated with @c cudaStreamCaptureModeRelaxed at @c cuStreamBeginCapture, or if any other thread has a concurrent capture sequence initiated with @c cudaStreamCaptureModeGlobal, this thread is prohibited from potentially unsafe API calls. + @c cudaStreamCaptureModeThreadLocal: If the local thread has an ongoing capture sequence not initiated with @c cudaStreamCaptureModeRelaxed, it is prohibited from potentially unsafe API calls. Concurrent capture sequences in other threads are ignored. + @c cudaStreamCaptureModeRelaxed: The local thread is not prohibited from potentially unsafe API calls. Note that the thread is still prohibited from API calls which necessarily conflict with stream capture, for example, attempting @c cudaEventQuery on an event that was last recorded inside a capture sequence. */ void begin_capture(cudaStreamCaptureMode m = cudaStreamCaptureModeGlobal) const { TF_CHECK_CUDA( cudaStreamBeginCapture(this->get(), m), "failed to begin capture on stream ", this->get(), " with thread mode ", m ); } /** @brief ends graph capturing on the stream Equivalently calling @c cudaStreamEndCapture to end capture on stream and returning the captured graph. Capture must have been initiated on stream via a call to cudaStream::begin_capture. If capture was invalidated, due to a violation of the rules of stream capture, then a NULL graph will be returned. */ cudaGraph_t end_capture() const { cudaGraph_t native_g; TF_CHECK_CUDA( cudaStreamEndCapture(this->get(), &native_g), "failed to end capture on stream ", this->get() ); return native_g; } /** @brief records an event on the stream Equivalently calling @c cudaEventRecord to record an event on this stream, both of which must be on the same CUDA context. */ void record(cudaEvent_t event) const { TF_CHECK_CUDA( cudaEventRecord(event, this->get()), "failed to record event ", event, " on stream ", this->get() ); } /** @brief waits on an event Equivalently calling @c cudaStreamWaitEvent to make all future work submitted to stream wait for all work captured in event. */ void wait(cudaEvent_t event) const { TF_CHECK_CUDA( cudaStreamWaitEvent(this->get(), event, 0), "failed to wait for event ", event, " on stream ", this->get() ); } /** @brief runs the given executable CUDA graph @param exec the given `cudaGraphExec` */ template cudaStreamBase& run(const cudaGraphExecBase& exec); /** @brief runs the given executable CUDA graph @param exec the given `cudaGraphExec_t` */ cudaStreamBase& run(cudaGraphExec_t exec); private: cudaStreamBase(const cudaStreamBase&) = delete; cudaStreamBase& operator = (const cudaStreamBase&) = delete; }; /** @brief default smart pointer type to manage a `cudaStream_t` object with unique ownership */ using cudaStream = cudaStreamBase; } // end of namespace tf -----------------------------------------------------