mirror of
https://github.com/zebrajr/pytorch.git
synced 2025-12-07 00:21:07 +01:00
299 lines
9.8 KiB
C++
299 lines
9.8 KiB
C++
#include <Python.h>
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#include <stdbool.h>
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#include <unordered_map>
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#include <TH/TH.h>
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#include <THC/THCCachingAllocator.h>
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#include "THCP.h"
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#include "ModuleSparse.cpp"
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THCState *state;
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////////////////////////////////////////////////////////////////////////////////
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// Class pointer cache
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////////////////////////////////////////////////////////////////////////////////
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static bool THCPModule_loadClasses(PyObject *module_dict)
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{
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#define ASSERT_NOT_NULL(ptr) if (!(ptr)) { THPUtils_setError("couldn't load classes"); return false; }
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ASSERT_NOT_NULL(THCPDoubleStorageClass = PyMapping_GetItemString(module_dict, (char*)"DoubleStorage"));
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ASSERT_NOT_NULL(THCPFloatStorageClass = PyMapping_GetItemString(module_dict, (char*)"FloatStorage"));
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ASSERT_NOT_NULL(THCPHalfStorageClass = PyMapping_GetItemString(module_dict, (char*)"HalfStorage"));
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ASSERT_NOT_NULL(THCPLongStorageClass = PyMapping_GetItemString(module_dict, (char*)"LongStorage"));
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ASSERT_NOT_NULL(THCPIntStorageClass = PyMapping_GetItemString(module_dict, (char*)"IntStorage"));
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ASSERT_NOT_NULL(THCPShortStorageClass = PyMapping_GetItemString(module_dict, (char*)"ShortStorage"));
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ASSERT_NOT_NULL(THCPCharStorageClass = PyMapping_GetItemString(module_dict, (char*)"CharStorage"));
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ASSERT_NOT_NULL(THCPByteStorageClass = PyMapping_GetItemString(module_dict, (char*)"ByteStorage"));
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ASSERT_NOT_NULL(THCPDoubleTensorClass = PyMapping_GetItemString(module_dict, (char*)"DoubleTensor"));
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ASSERT_NOT_NULL(THCPHalfTensorClass = PyMapping_GetItemString(module_dict, (char*)"HalfTensor"));
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ASSERT_NOT_NULL(THCPFloatTensorClass = PyMapping_GetItemString(module_dict, (char*)"FloatTensor"));
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ASSERT_NOT_NULL(THCPLongTensorClass = PyMapping_GetItemString(module_dict, (char*)"LongTensor"));
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ASSERT_NOT_NULL(THCPIntTensorClass = PyMapping_GetItemString(module_dict, (char*)"IntTensor"));
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ASSERT_NOT_NULL(THCPShortTensorClass = PyMapping_GetItemString(module_dict, (char*)"ShortTensor"));
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ASSERT_NOT_NULL(THCPCharTensorClass = PyMapping_GetItemString(module_dict, (char*)"CharTensor"));
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ASSERT_NOT_NULL(THCPByteTensorClass = PyMapping_GetItemString(module_dict, (char*)"ByteTensor"));
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return true;
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#undef ASSERT_NOT_NULL
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}
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////////////////////////////////////////////////////////////////////////////////
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// Tensor stateless methods
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////////////////////////////////////////////////////////////////////////////////
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static bool THCPModule_assignStateless()
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{
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#define INIT_STATELESS(type) INIT_STATELESS_DETAIL(type, TH_CONCAT_2(Cuda, type))
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#define INIT_STATELESS_DETAIL(type,ctype) \
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stateless = PyObject_Call((PyObject*)&TH_CONCAT_2(ctype, TensorStatelessType), arg, NULL); \
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if (!stateless) { \
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THPUtils_setError("stateless method initialization error"); \
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return false; \
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} \
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if (PyObject_SetAttrString(TH_CONCAT_3(THCP,type,TensorClass), THP_STATELESS_ATTRIBUTE_NAME, stateless) == -1) { \
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THPUtils_setError("stateless method initialization error (on assignment)");\
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}
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PyObject *arg = PyTuple_New(0);
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PyObject *stateless;
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INIT_STATELESS(Double);
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INIT_STATELESS_DETAIL(Float, Cuda);
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INIT_STATELESS(Long);
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INIT_STATELESS(Int);
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INIT_STATELESS(Short);
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INIT_STATELESS(Char);
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INIT_STATELESS(Byte);
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Py_DECREF(arg);
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return true;
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#undef INIT_STATELESS_DETAIL
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#undef INIT_STATELESS
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}
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////////////////////////////////////////////////////////////////////////////////
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// CUDA management methods
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////////////////////////////////////////////////////////////////////////////////
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void THCPModule_setDevice(int device)
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{
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THCudaCheck(cudaSetDevice(device));
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}
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PyObject * THCPModule_setDevice_wrap(PyObject *self, PyObject *arg)
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{
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HANDLE_TH_ERRORS
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THPUtils_assert(THPUtils_checkLong(arg), "invalid argument to setDevice");
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long device = THPUtils_unpackLong(arg);
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THCPModule_setDevice(device);
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_getDevice_wrap(PyObject *self)
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{
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HANDLE_TH_ERRORS
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int device;
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THCudaCheck(cudaGetDevice(&device));
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return PyLong_FromLong(device);
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_getDeviceCount_wrap(PyObject *self)
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{
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HANDLE_TH_ERRORS
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int ndevice;
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THCudaCheck(cudaGetDeviceCount(&ndevice));
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return PyLong_FromLong(ndevice);
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_getCurrentStream_wrap(PyObject *self)
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{
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HANDLE_TH_ERRORS
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THCStream* stream = THCState_getStream(state);
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return PyLong_FromVoidPtr(stream);
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_setStream_wrap(PyObject *self, PyObject *obj)
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{
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HANDLE_TH_ERRORS
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THPUtils_assert(PyLong_Check(obj), "invalid stream");
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THCStream* stream = (THCStream *)PyLong_AsVoidPtr(obj);
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THCState_setStream(state, stream);
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_isDriverSufficient(PyObject *self)
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{
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int count;
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cudaError_t err = cudaGetDeviceCount(&count);
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if (err == cudaErrorInsufficientDriver) {
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return PyBool_FromLong(0);
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}
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return PyBool_FromLong(1);
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}
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PyObject * THCPModule_getDriverVersion(PyObject *self)
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{
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int driverVersion = -1;
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cudaError_t err = cudaDriverGetVersion(&driverVersion);
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if (err != cudaSuccess) {
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PyErr_Format(PyExc_RuntimeError,
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"Error calling cudaDriverGetVersion: %d %s",
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err, cudaGetErrorString(err));
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return NULL;
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}
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return PyLong_FromLong((long) driverVersion);
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}
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PyObject * THCPModule_getRNGState(PyObject *_unused)
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{
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HANDLE_TH_ERRORS
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THPByteTensorPtr res = (THPByteTensor *)THPByteTensor_NewEmpty();
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if (!res) return NULL;
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THCRandom_getRNGState(state, res->cdata);
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return (PyObject *)res.release();
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_setRNGState(PyObject *_unused, PyObject *_new_rng_state)
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{
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HANDLE_TH_ERRORS
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THPUtils_assert(THPByteTensor_Check(_new_rng_state), "set_rng_state expects a "
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"torch.ByteTensor, but got %s", THPUtils_typename(_new_rng_state));
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THByteTensor *new_rng_state = ((THPByteTensor*)_new_rng_state)->cdata;
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THCRandom_setRNGState(state, new_rng_state);
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_manualSeed(PyObject *_unused, PyObject *seed)
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{
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HANDLE_TH_ERRORS
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THPUtils_assert(THPUtils_checkLong(seed), "manual_seed expected a long, "
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"but got %s", THPUtils_typename(seed));
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THCRandom_manualSeed(state, THPUtils_unpackLong(seed));
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_manualSeedAll(PyObject *_unused, PyObject *seed)
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{
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HANDLE_TH_ERRORS
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THPUtils_assert(THPUtils_checkLong(seed), "manual_seed expected a long, "
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"but got %s", THPUtils_typename(seed));
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THCRandom_manualSeedAll(state, THPUtils_unpackLong(seed));
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_seed(PyObject *_unused)
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{
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HANDLE_TH_ERRORS
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return PyLong_FromUnsignedLong(THCRandom_seed(state));
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_seedAll(PyObject *_unused)
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{
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HANDLE_TH_ERRORS
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return PyLong_FromUnsignedLong(THCRandom_seedAll(state));
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_initialSeed(PyObject *_unused)
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{
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HANDLE_TH_ERRORS
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return PyLong_FromUnsignedLong(THCRandom_initialSeed(state));
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_cudaHostAllocator(PyObject *_unused)
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{
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HANDLE_TH_ERRORS
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THAllocator* allocator = THCState_getCudaHostAllocator(state);
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return PyLong_FromVoidPtr(allocator);
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_cudaSynchronize(PyObject *_unused)
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{
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HANDLE_TH_ERRORS
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THCudaCheck(cudaDeviceSynchronize());
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_cudaSleep(PyObject *_unused, PyObject *cycles)
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{
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HANDLE_TH_ERRORS
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THPUtils_assert(THPUtils_checkLong(cycles), "torch.cuda._sleep(): expected 'int'");
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THC_sleep(LIBRARY_STATE THPUtils_unpackLong(cycles));
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Py_RETURN_NONE;
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END_HANDLE_TH_ERRORS
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}
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PyObject * THCPModule_getLibPath(PyObject *_unused)
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{
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#define _STR(x) #x
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#define STR(x) _STR(x)
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#if PY_MAJOR_VERSION == 2
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return PyString_FromString(STR(CUDA_LIB_PATH));
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#else
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return PyUnicode_FromString(STR(CUDA_LIB_PATH));
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#endif
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#undef STR
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#undef _STR
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}
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////////////////////////////////////////////////////////////////////////////////
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// Cuda module initialization
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////////////////////////////////////////////////////////////////////////////////
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bool THCPModule_initCuda(PyObject *module_dict) {
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#define ASSERT_TRUE(cond) if (!(cond)) { return false; }
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state = THCState_alloc();
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THCState_setDeviceAllocator(state, THCCachingAllocator_get());
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state->cudaHostAllocator = &THCCachingHostAllocator;
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THCudaInit(state);
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#ifdef USE_MAGMA
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THCMagma_init(state);
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ASSERT_TRUE(PyDict_SetItemString(module_dict, "has_magma", PyBool_FromLong(true)) != -1);
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#else
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ASSERT_TRUE(PyDict_SetItemString(module_dict, "has_magma", PyBool_FromLong(false)) != -1);
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#endif
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#ifdef CUDA_HALF_TENSOR
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ASSERT_TRUE(PyDict_SetItemString(module_dict, "has_half", PyBool_FromLong(true)) != -1);
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#else
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ASSERT_TRUE(PyDict_SetItemString(module_dict, "has_half", PyBool_FromLong(false)) != -1);
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#endif
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ASSERT_TRUE(THCPModule_loadClasses(module_dict));
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ASSERT_TRUE(THCPModule_assignStateless());
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ASSERT_TRUE(PyDict_SetItemString(module_dict, "_state_cdata", PyLong_FromVoidPtr(state)) != -1);
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// TODO: register THCudaShutdown handler at exit
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return true;
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#undef ASSERT_TRUE
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}
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// Callback for python part. Used for additional initialization of python classes
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PyObject * THCPModule_initExtension(PyObject *self)
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{
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PyObject *torch_module = PyImport_ImportModule("torch.cuda");
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if (!torch_module) {
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THPUtils_setError("class loader couldn't access torch module");
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return NULL;
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}
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PyObject* module_dict = PyModule_GetDict(torch_module);
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return PyBool_FromLong(THCPModule_initCuda(module_dict));
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}
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