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input_metadata.h
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input_metadata.h
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#pragma once
#include <ATen/core/Tensor.h>
#include <c10/core/Device.h>
#include <c10/core/DeviceType.h>
#include <c10/core/Stream.h>
#include <c10/core/impl/DeviceGuardImplInterface.h>
#ifndef AT_PER_OPERATOR_HEADERS
#include <ATen/Functions.h>
#else
#include <ATen/ops/zeros.h>
#endif
#include <cstdint>
namespace torch { namespace autograd {
/**
* Records TensorOptions, shape of the tensor, whether or not the Python dispatch key is set (tensor subclass),
* and, where applicable, the stream the corresponding operation took place on.
*
* If is_valid() is false, then the corresponding input is not used and may be
* an undefined tensor.
*/
struct InputMetadata {
InputMetadata() = default;
InputMetadata(const at::TensorOptions options, at::IntArrayRef shape, bool is_tensor_subclass)
: options_{options}, shape_{shape}, is_tensor_subclass_{is_tensor_subclass} {
auto device_ = options.device();
stream_ = c10::impl::getDeviceGuardImpl(device_.type())->getStream(device_);
}
InputMetadata(const at::Tensor& t)
: InputMetadata(t.options(), t.sizes(), t.unsafeGetTensorImpl()->is_python_dispatch()) { }
const at::TensorOptions options() const {
return options_;
}
at::IntArrayRef shape() const {
return shape_;
}
caffe2::TypeMeta dtype() const {
return options_.dtype();
}
at::Device device() const {
return options_.device();
}
at::Layout layout() const {
return options_.layout();
}
c10::Stream stream() const {
return stream_;
}
bool is_tensor_subclass() const {
return is_tensor_subclass_;
}
at::Tensor zeros_like() const {
return at::zeros(shape_, options_);
}
private:
const at::TensorOptions options_;
at::DimVector shape_;
c10::Stream stream_ = c10::Stream(c10::Stream::Default::DEFAULT, device());
bool is_tensor_subclass_ = false;
};
}} // torch::autograd