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This PR adds unused parameter name comments in C++ declarations to improve code readability. Pull Request resolved: https://github.com/pytorch/pytorch/pull/164912 Approved by: https://github.com/Skylion007
746 lines
32 KiB
C++
746 lines
32 KiB
C++
#pragma once
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#include <c10/core/DeviceType.h>
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#include <c10/macros/Export.h>
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#include <cstddef>
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#include <cstdint>
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#include <functional>
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#include <ostream>
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#include <string>
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namespace c10 {
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// Semantically, each value of BackendComponent identifies a "backend" for our
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// dispatch. Some functionalities that we may dispatch to are allowed to
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// register different handlers for each backend. The BackendComponent is then
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// used to figure out which backend implementation to dispatch to.
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// In implementation terms, the backend component identifies a specific "bit" in
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// a DispatchKeySet. The bits in the DispatchKeySet are split between the bottom
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// ~12 "BackendComponent" bits, while the remaining upper bits are assigned to
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// functionalities. When we encounter a functionality bit that is known to be
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// customizable per-backend, then we also look at the lower BackendComponent
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// bits and take the highest bit to determine which backend's implementation to
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// use.
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// WARNING! If you add a new backend component to the end of this list,
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// make sure you register it before Meta.
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// Meta must be at the end so that meta key in tls triggers meta kernels.
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// (But you shouldn't: private use keys should have higher precedence than all
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// built-in keys)
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// If you add a new (non-privateuse) backend here,
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// make sure to add an Autograd<Backend> fallthrough kernel
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// in aten/src/ATen/core/VariableFallbackKernel.cpp
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#define C10_FORALL_BACKEND_COMPONENTS(_, extra) \
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_(CPU, extra) \
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_(CUDA, extra) \
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_(HIP, extra) \
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_(XLA, extra) \
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_(MPS, extra) \
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_(IPU, extra) \
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_(XPU, extra) \
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_(HPU, extra) \
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_(VE, extra) \
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_(Lazy, extra) \
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_(MTIA, extra) \
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_(MAIA, extra) \
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_(PrivateUse1, extra) \
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_(PrivateUse2, extra) \
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_(PrivateUse3, extra) \
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_(Meta, extra)
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// WARNING! If we add a new per-backend functionality key that has higher
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// priority than Autograd, then make sure you update EndOfRuntimeBackendKeys
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#define C10_FORALL_FUNCTIONALITY_KEYS(_) \
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_(Dense, ) \
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_(Quantized, Quantized) \
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_(Sparse, Sparse) \
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_(SparseCsr, SparseCsr) \
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_(NestedTensor, NestedTensor) \
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_(AutogradFunctionality, Autograd)
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enum class BackendComponent : uint8_t {
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// A "backend" is colloquially used to refer to handlers for dispatch
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// which actually implement the numerics of an operation in question.
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//
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// Due to the nature of the enum, these backends are specified in
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// an ordered way, but for most backends this order is not semantically
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// meaningful (e.g., it's valid to reorder these backends without changing
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// semantics). The only situation when backend ordering is meaningful
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// is when the backend participates in multiple dispatch with another
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// backend; e.g., CPU and CUDA (cuda must have higher priority).
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// These keys don't correspond to individual kernels.
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// Instead, they represent the backends that are allowed to override specific
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// pieces of functionality:
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// - dense kernels (e.g. DispatchKey::CPU)
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// - sparse kernels (e.g. DispatchKey::SparseCPU)
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// - quantized kernels (e.g. DispatchKey::QuantizedCPU)
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// - autograd kernels (e.g. DispatchKey::AutogradCPU)
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// We reserve space in the runtime operator table for this full cross product
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// of
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// [backends in this enum] x [keys below that are explicitly marked as having
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// per-backend functionality]
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//
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// A meta tensor is a tensor without any data associated with it. (They
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// have also colloquially been referred to as tensors on the "null" device).
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// A meta tensor can be used to dry run operators without actually doing any
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// computation, e.g., add on two meta tensors would give you another meta
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// tensor with the output shape and dtype, but wouldn't actually add anything.
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InvalidBit = 0,
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#define DEFINE_BACKEND_COMPONENT(n, _) n##Bit,
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C10_FORALL_BACKEND_COMPONENTS(DEFINE_BACKEND_COMPONENT, unused)
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#undef DEFINE_BACKEND_COMPONENT
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// Define an alias to represent end of backend dispatch keys.
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// If you add new backend keys after PrivateUse3, please also update it here.
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EndOfBackendKeys = MetaBit,
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};
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// Semantically, a dispatch key identifies a possible "level" in our
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// dispatch, for which a handler may be registered. Each handler corresponds
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// to a type of functionality.
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//
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// In implementation terms, the dispatch key identifies a specific "bit" in a
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// DispatchKeySet. Higher bit indexes get handled by dispatching first (because
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// we "count leading zeros" when we extract the highest priority dispatch
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// key.)
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//
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// Note [DispatchKey Classification]
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// This enum actually contains several types of keys, which are explained
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// in more detail further down:
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// (1) non-customizable backends (e.g. FPGA)
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// (2) non-customizable functionalities (e.g. Functionalize)
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// (3) functionalized that are customizable per backend (e.g. Dense, Sparse,
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// AutogradFunctionality) (4) per-backend instances of customizable
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// functionalities (e.g. CPU, SparseCPU, AutogradCPU) (5) alias keys (e.g.
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// CompositeImplicitAutograd)
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//
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// Of the categories above, it's important to note:
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// (a) which keys are assigned individual bits in a DispatchKeySet
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// (b) which keys are assigned individual slots in the runtime operator table
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// ("Runtime keys")
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//
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// (1), (2) and (3) all get their own dedicated bits in the DispatchKeySet.
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// (1), (2) and (4) all get their own dedicated slots in the runtime operator
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// table.
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// See Note [DispatchKeySet Internal Representation] for more details.
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//
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// NOTE: Keep the list in sync with `DispatchKey` in torchgen/model.py
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enum class DispatchKey : uint16_t {
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// ~~~~~~~~~~~~~~~~~~~~~~~~~~ UNDEFINED ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ //
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// This is not a "real" functionality, but it exists to give us a "nullopt"
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// element we can return for cases when a DispatchKeySet contains no elements.
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// You can think a more semantically accurate definition of DispatchKey is:
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//
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// using DispatchKey = std::optional<RealDispatchKey>
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//
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// and Undefined == nullopt. We didn't actually represent
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// it this way because std::optional<RealDispatchKey> would take two
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// words, when DispatchKey fits in eight bits.
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Undefined = 0,
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// Define an alias for Undefined to represent CatchAll (long term
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// this will get eliminated, but for now it's convenient)
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CatchAll = Undefined,
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// ~~~~~~~~~~~~~~~~~~~~~~~~~~ Functionality Keys ~~~~~~~~~~~~~~~~~~~~~~ //
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// Every value in the enum (up to EndOfFunctionalityKeys)
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// corresponds to an individual "functionality" that can be dispatched to.
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// This is represented in the DispatchKeySet by assigning each of these enum
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// values
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// to each of the remaining (64 - len(BackendComponent)) bits.
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//
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// Most of these functionalities have a single handler assigned to them,
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// making them "runtime keys".
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// That map to a single slot in the runtime operator table.
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//
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// A few functionalities are allowed to be customizable per backend.
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// See [Note: Per-Backend Functionality Dispatch Keys] for details.
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// See [Note: Per-Backend Functionality Dispatch Keys]
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Dense,
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// Below are non-extensible backends.
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// These are backends that currently don't have their own overrides for
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// Autograd/Sparse/Quantized kernels,
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// and we therefore don't waste space in the runtime operator table allocating
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// space for them.
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// If any of these backends ever need to customize, e.g., Autograd, then we'll
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// need to add a DispatchKey::*Bit for them.
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// TODO: put this in BackendComponents
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FPGA, // Xilinx support lives out of tree at
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// https://gitlab.com/pytorch-complex/vitis_kernels
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Vulkan, // TODO: put this in BackendComponents
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Metal, // TODO: put this in BackendComponents
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// See [Note: Per-Backend Functionality Dispatch Keys]
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Quantized,
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// This backend is to support custom RNGs; it lets you go
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// to a different kernel if you pass in a generator that is not a
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// traditional CPUGeneratorImpl/CUDAGeneratorImpl. To make use of this
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// key:
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// 1) set it as a second parameter of at::Generator constructor call in
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// the user-defined PRNG class.
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// 2) use it as a dispatch key while registering custom kernels
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// (templatized kernels specialized for user-defined PRNG class)
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// intended for out of tree use; tested by aten/src/ATen/test/rng_test.cpp
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CustomRNGKeyId,
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// TODO: Make Mkldnn a functionality key, so we can give it Meta
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// support
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// Here are backends which specify more specialized operators
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// based on the layout of the tensor. Note that the sparse backends
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// are one case where ordering matters: sparse multi-dispatches with
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// the corresponding dense tensors, and must be handled before them.
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MkldnnCPU, // registered at build/aten/src/ATen/RegisterMkldnnCPU.cpp
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// NB: not to be confused with MKLDNN, which is Caffe2 only
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// See [Note: Per-Backend Functionality Dispatch Keys]
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Sparse,
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SparseCsr,
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NestedTensor,
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// In some situations, it is not immediately obvious what the correct
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// backend for function is, because the function in question doesn't
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// have any "tensor" arguments. In this case, a BackendSelect function
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// can be registered to implement the custom determination of the
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// correct backend.
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BackendSelect,
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Python,
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// Out-of-core key for Fake Tensor in torchdistx.
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// See https://pytorch.org/torchdistx/latest/fake_tensor.html
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// TODO: delete this in favor of Python-implemented fake tensor
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Fake,
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// See Note [Out-of-tree vmap+grad prototype]. The purpose of this key
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// is to insert code after the "autograd subsystem" runs, so this key should
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// be directly after ADInplaceOrView and all of the autograd keys.
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FuncTorchDynamicLayerBackMode,
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// Alias and mutation removal.
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// If some backends want to opt into only alias removal or only mutation
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// removal,
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// we can consider adding separate keys dedicated to those individual passes.
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// See Note [Functionalization Pass In Core] for details.
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Functionalize,
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// The named dispatch key is set for any tensors with named dimensions.
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// Although we have a dispatch key for named tensors, for historical reasons,
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// this dispatch key doesn't do any of the substantive functionality for named
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// tensor (though, hypothetically, it could!) At the moment, it's just
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// responsible for letting us give good error messages when operations
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// don't support named tensors.
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//
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// NB: If you ever consider moving named tensor functionality into
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// this dispatch key, note that it might be necessary add another dispatch
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// key that triggers before composite operators, in case a composite operator
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// has named dimension propagation that doesn't match that of its
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// constituent parts.
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// TODO: delete this once torchdim lands in functorch
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Named,
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// The Conjugate dispatch key is set for any tensors that need to perform
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// conjugation
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// This is implemented at a dispatch level right before any backends run
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Conjugate,
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// The Negative dispatch key is set for any tensors that need to perform
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// negation
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// This is implemented at a dispatch level right before any backends run
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Negative,
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ZeroTensor, // registered at build/aten/src/ATen/RegisterZeroTensor.cpp
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// Note [ADInplaceOrView key]
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// ADInplaceOrView key is used by inplace or view ops to register a kernel
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// that does additional setup for future autograd computation.
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//
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// 1. For inplace ops this kernel does version bump
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// 2. For view ops this kernel does `as_view` setup where we properly setup
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// DifferentiableViewMeta on the view tensors.
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//
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// For other ops it's fallthrough kernel since there's no extra
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// work to do.
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//
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// Note [Dream: skip VariableType kernel when requires_grad=false]
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//
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// In an ideal world where we can skip VariableType kernel for inputs
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// with requires_grad=false, instead of a fallthrough kernel, we'll
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// register a kernel shown below to all functional ops as well:
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// torch::Tensor my_functional_op(...) {
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// {
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// // Note for every op in VariableType, you need to go through
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// // `AutoDispatchBelowADInplaceOrView` guard exactly once to add the
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// // key to TLS excluded set. If you don't go through it at all,
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// // inplace/view ops called through `at::` inside your backend
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// // kernel will dispatch to ADInplaceOrView kernels and do a lot
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// // of extra work.
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// at::AutoDispatchBelowADInplaceOrView guard;
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// at::redispatch::my_functional_op(...);
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// }
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// }
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// But this work is currently blocked since it adds an extra dispatch
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// for all ops and it's non-trivial overhead at model level(a few percents).
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// Thus our current approach takes advantage of the fact every kernel go
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// through VariableType kernel first and pulls the
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// `at::AutoDispatchBelowADInplaceOrView` guard of functional ops
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// up to the `VariableType` kernel. Thus we only add the extra dispatch
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// to view/inplace ops to minimize its perf impact to real models.
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ADInplaceOrView,
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// Note [Alias Dispatch Key : Autograd]
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// All backends are oblivious to autograd; autograd is handled as a
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// layer which happens on top of all backends. It inspects the autograd
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// metadata of all inputs, determines what autograd metadata should be
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// constructed by the output, and otherwise defers to the backend to
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// actually do the numeric computation. Autograd contains
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// the bulk of this logic.
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// Autograd is now an alias dispatch key which by default maps to all
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// backend-specific autograd keys.
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// Backend-specific allow backends to override the default kernel registered
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// to Autograd key as needed.
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// For example, XLA wants to define autograd for einsum directly.
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// Registering a custom autograd implementation at the XLA key won't work
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// because we process Autograd before XLA. This key has higher priority and
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// gets processed first. You generally should NOT redispatch after handling
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// autograd here (since that would result in execution of the Autograd
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// operator, which you're trying to skip). In AutogradXLA implementations,
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// you are responsible for handling autograd yourself, or deferring to other
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// operators which support autograd.
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// Currently we only have backend-specific autograd keys for CPU/CUDA/XLA and
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// reserved user-defined backends. All other in-tree backends share the
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// AutogradOther key. We can add specific autograd key for those backends
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// upon request.
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AutogradOther,
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// See [Note: Per-Backend Functionality Dispatch Keys]
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AutogradFunctionality,
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// NestedTensor is an example of something that isn't a "real backend"
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// (because it mostly consists of redispatching kernels)
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// but it would like to override autograd functionality in C++.
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// We can handle cases like this by adding an extra functionality key
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// exclusively for handling autograd for NestedTensor.
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// lives out of tree at
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// https://github.com/pytorch/nestedtensor
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AutogradNestedTensor,
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Tracer,
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// TODO: make Autocast a functionality key
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// Autocasting precedes VariableTypeId, to ensure casts are autograd-exposed
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// and inputs are saved for backward in the post-autocast type.
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AutocastCPU,
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AutocastMTIA,
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AutocastMAIA,
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AutocastXPU,
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AutocastIPU,
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AutocastHPU,
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AutocastXLA,
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// AutocastXLA is only being used for TPUs. XLA GPUs continue to use
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// AutocastCUDA.
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AutocastMPS,
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AutocastCUDA,
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AutocastPrivateUse1,
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// ~~~~~~~~~~~~~~~~~~~~~~~~~~~ WRAPPERS ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ //
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// There are a number of alternative modes which may want to handle before
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// autograd; for example, error checking, tracing, profiling or vmap. They
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// go here.
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FuncTorchBatched, // See Note [Out-of-tree vmap+grad prototype]
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// Dispatch key for BatchedTensorImpl wrapping a nested tensor.
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BatchedNestedTensor,
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FuncTorchVmapMode, // See Note [Out-of-tree vmap+grad prototype]
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// This is the dispatch key for BatchedTensorImpl, which is used to implement
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// batching rules for vmap.
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Batched,
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// When we are inside a vmap, all tensors dispatch on this key.
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// See Note: [DispatchKey::VmapMode usage] for more details.
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VmapMode,
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FuncTorchGradWrapper, // See Note [Out-of-tree vmap+grad prototype]
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// Out-of-core key for Deferred Module Initialization in torchdistx.
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// See https://pytorch.org/torchdistx/latest/deferred_init.html
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DeferredInit,
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// Used by Python key logic to know the set of tls on entry to the dispatcher
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// This kernel assumes it is the top-most non-functorch-related DispatchKey.
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// If you add a key above, make sure to update the fallback implementation for
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// this.
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PythonTLSSnapshot,
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// This key should be at the very top of the dispatcher
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FuncTorchDynamicLayerFrontMode, // See Note [Out-of-tree vmap+grad prototype]
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// TESTING: This is intended to be a generic testing tensor type id.
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// Don't use it for anything real; its only acceptable use is within a single
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// process test. Use it by creating a TensorImpl with this DispatchKey, and
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// then registering operators to operate on this type id. See
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// aten/src/ATen/core/dispatch/backend_fallback_test.cpp for a usage example.
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TESTING_ONLY_GenericWrapper,
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// TESTING: This is intended to be a generic testing tensor type id.
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// Don't use it for anything real; its only acceptable use is within a ingle
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// process test. Use it by toggling the mode on and off via
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// TESTING_ONLY_tls_generic_mode_set_enabled and then registering operators
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// to operate on this type id. See
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// aten/src/ATen/core/dispatch/backend_fallback_test.cpp
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// for a usage example
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TESTING_ONLY_GenericMode,
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// This key is used for pre-dispatch tracing in make_fx.
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// It has lower priority than the PythonDispatcher key
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// because we use the PythonDispatcher to intercept the key from python,
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// and avoid having to implement it in C++.
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PreDispatch,
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// This is a bypass that allows you to skip running the C++ dispatcher
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// entirely
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PythonDispatcher,
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// ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ FIN ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ //
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EndOfFunctionalityKeys, // End of functionality keys.
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// ~~~~~~~~~~~~~~ "Dense" Per-Backend Dispatch keys ~~~~~~~~~~~~~~~~~~~~ //
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// Here are backends which you think of as traditionally specifying
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// how to implement operations on some device.
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#define DEFINE_PER_BACKEND_KEYS_FOR_BACKEND(n, prefix) prefix##n,
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#define DEFINE_PER_BACKEND_KEYS(fullname, prefix) \
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StartOf##fullname##Backends, \
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C10_FORALL_BACKEND_COMPONENTS( \
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DEFINE_PER_BACKEND_KEYS_FOR_BACKEND, prefix) \
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EndOf##fullname##Backends = prefix##Meta,
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C10_FORALL_FUNCTIONALITY_KEYS(DEFINE_PER_BACKEND_KEYS)
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#undef DEFINE_PER_BACKEND_KEYS
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#undef DEFINE_PER_BACKEND_KEYS_FOR_BACKEND
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EndOfRuntimeBackendKeys = EndOfAutogradFunctionalityBackends,
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// ~~~~~~~~~~~~~~~~~~~~~~ Alias Dispatch Keys ~~~~~~~~~~~~~~~~~~~~~~~~~~ //
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// Note [Alias Dispatch Keys]
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// Alias dispatch keys are synthetic dispatch keys which map to multiple
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// runtime dispatch keys. Alisa keys have precedence, but they are always
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// lower precedence than runtime keys. You can register a kernel to an
|
|
// alias key, the kernel might be populated to the mapped runtime keys
|
|
// during dispatch table computation.
|
|
// If a runtime dispatch key has multiple kernels from alias keys, which
|
|
// kernel wins is done based on the precedence of alias keys (but runtime
|
|
// keys always have precedence over alias keys).
|
|
// Alias keys won't be directly called during runtime.
|
|
|
|
// See Note [Alias Dispatch Key : Autograd]
|
|
Autograd,
|
|
CompositeImplicitAutograd, // registered at
|
|
// build/aten/src/ATen/RegisterCompositeImplicitAutograd.cpp
|
|
|
|
// Note: The alias keyset for FuncTorchBatchedDecomposition is disjoint from
|
|
// all
|
|
// other alias keysets
|
|
// and so precedence order doesn't matter
|
|
FuncTorchBatchedDecomposition, // registered at
|
|
// build/aten/src/ATen/RegisterFuncTorchBatchedDecomposition.cpp
|
|
// Note: The alias keyset for CompositeImplicitAutogradNestedTensor is
|
|
// disjoint from all other alias keysets
|
|
CompositeImplicitAutogradNestedTensor, // registered at
|
|
// build/aten/src/ATen/RegisterCompositeImplicitAutogradNestedTensor.cpp
|
|
CompositeExplicitAutograd, // registered at
|
|
// build/aten/src/ATen/RegisterCompositeExplicitAutograd.cpp
|
|
// See Note [CompositeExplicitAutogradNonFunctional Key]
|
|
CompositeExplicitAutogradNonFunctional, // registered at
|
|
// build/aten/src/ATen/RegisterCompositeExplicitAutograd.cpp
|
|
|
|
// Define an alias key to represent end of alias dispatch keys.
|
|
// If you add new alias keys after Autograd, please also update it here.
|
|
StartOfAliasKeys = Autograd,
|
|
EndOfAliasKeys = CompositeExplicitAutogradNonFunctional, //
|
|
|
|
// ~~~~~~~~~~~~~~~~~~~~~~~~~ BC ALIASES ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ //
|
|
// The aliases exist for backwards compatibility reasons, they shouldn't
|
|
// be used
|
|
CPUTensorId = CPU,
|
|
CUDATensorId = CUDA,
|
|
DefaultBackend = CompositeExplicitAutograd,
|
|
PrivateUse1_PreAutograd = AutogradPrivateUse1,
|
|
PrivateUse2_PreAutograd = AutogradPrivateUse2,
|
|
PrivateUse3_PreAutograd = AutogradPrivateUse3,
|
|
Autocast = AutocastCUDA,
|
|
};
|
|
|
|
// Note [Private use DispatchKey]
|
|
// ~~~~~~~~~~~~~~~~~~~~~~~~~~~
|
|
// Private use tensor IDs are preallocated tensor type IDs for use in user
|
|
// applications. Similar to private use fields in HTTP, they can be used
|
|
// by end users for experimental or private applications, without needing
|
|
// to "standardize" the tensor ID (which would be done by submitting a PR
|
|
// to PyTorch to add your type ID).
|
|
//
|
|
// Private use tensor IDs are appropriate to use if you want to experiment
|
|
// with adding a new tensor type (without having to patch PyTorch first) or
|
|
// have a private, non-distributed application that needs to make use of a
|
|
// new tensor type. Private use tensor IDs are NOT appropriate to use for
|
|
// libraries intended to be distributed to further users: please contact
|
|
// the PyTorch developers to get a type ID registered in this case.
|
|
//
|
|
// We provide two classes of private user tensor id: regular DispatchKeys
|
|
// and Autograd DispatchKeys. DispatchKeys serve the role of ordinary "backend"
|
|
// DispatchKeys; if you were adding support for a new type of accelerator, you
|
|
// would use a backend DispatchKey, and ideally automatically reuse
|
|
// AutogradOther definitions already defined in PyTorch. AutogradPrivateUse
|
|
// DispatchKeys serve as "wrapper" DispatchKeys: they are only necessary for
|
|
// tensors that compose multiple internal tensors, and for cases when the
|
|
// built-in autograd formulas for operators are not appropriate.
|
|
|
|
static_assert(
|
|
(static_cast<uint8_t>(BackendComponent::EndOfBackendKeys) +
|
|
static_cast<uint8_t>(DispatchKey::EndOfFunctionalityKeys)) <= 64,
|
|
"The BackendComponent and DispatchKey enums (below EndOfFunctionalityKeys)"
|
|
" both map to backend and functionality bits"
|
|
" into a 64-bit bitmask; you must have less than 64 total entries between them");
|
|
|
|
// Check if a DispatchKey is an alias mapping to other runtime keys.
|
|
constexpr bool isAliasDispatchKey(DispatchKey k) {
|
|
return k >= DispatchKey::StartOfAliasKeys && k <= DispatchKey::EndOfAliasKeys;
|
|
}
|
|
|
|
// [Note: Per-Backend Functionality Dispatch Keys]
|
|
// Check if a DispatchKey is a per-backend functionality key
|
|
// Any functionalities that can be customized per-backend should be added here.
|
|
// These keys correspond to functionalities that can be customized individually
|
|
// per backend. While they only take up one bit in the `DispatchKeySet` bitset,
|
|
// they map to (# backends) slots in the operator table.
|
|
// Each of these keys also has a separate set of "runtime keys" in the dispatch
|
|
// key enum, per backend, which *do* map to the individual operator table slots.
|
|
// For example, the "Sparse" key maps to an individual bit in the
|
|
// DispatchKeySet, while `SparseCPU`, `SparseCUDA`, etc all map to individual
|
|
// slots in the runtime operator table.
|
|
|
|
constexpr bool isPerBackendFunctionalityKey(DispatchKey k) {
|
|
if (k == DispatchKey::Dense || k == DispatchKey::Quantized ||
|
|
k == DispatchKey::Sparse || k == DispatchKey::SparseCsr ||
|
|
k == DispatchKey::AutogradFunctionality ||
|
|
k == DispatchKey::NestedTensor) {
|
|
return true;
|
|
} else {
|
|
return false;
|
|
}
|
|
}
|
|
|
|
// Note that this includes Undefined in the total count.
|
|
// BUT EndOfFunctionalityKeys is its own (placeholder) key.
|
|
// e.g. Undefined=0, Dense=1, Sparse=2, EndOfFunctionalityKeys=3.
|
|
// In the above example, there are 3 total functionality keys.
|
|
constexpr uint8_t num_functionality_keys =
|
|
static_cast<uint8_t>(DispatchKey::EndOfFunctionalityKeys);
|
|
|
|
constexpr uint8_t num_backends =
|
|
static_cast<uint8_t>(BackendComponent::EndOfBackendKeys);
|
|
|
|
// Note [No More Than 16 Backends]
|
|
// Search for this note to find places in the code where the "no more than 16
|
|
// backends" invariant is baked in.
|
|
static_assert(
|
|
static_cast<uint8_t>(BackendComponent::EndOfBackendKeys) <= 16,
|
|
"BackendComponent currently only supports <= 16 backends. If we really need to extend this, \
|
|
there are a few places where this invariant is baked in");
|
|
|
|
constexpr uint8_t numPerBackendFunctionalityKeys() {
|
|
uint8_t count = 0;
|
|
for (uint8_t k = 0; k <= num_functionality_keys; ++k) {
|
|
if (isPerBackendFunctionalityKey(static_cast<DispatchKey>(k)))
|
|
++count;
|
|
}
|
|
return count;
|
|
}
|
|
|
|
#if defined(C10_MOBILE_TRIM_DISPATCH_KEYS)
|
|
// See [Note: Trimmed Mobile Dispatch Keys]
|
|
constexpr uint16_t num_runtime_entries = 8;
|
|
#else
|
|
constexpr uint16_t num_runtime_entries = num_functionality_keys +
|
|
(numPerBackendFunctionalityKeys() * (num_backends - 1));
|
|
#endif
|
|
|
|
// See Note [No More Than 16 Backends]
|
|
constexpr uint16_t full_backend_mask =
|
|
(static_cast<uint16_t>(1) << num_backends) - 1;
|
|
|
|
C10_API const char* toString(DispatchKey /*t*/);
|
|
C10_API const char* toString(BackendComponent /*t*/);
|
|
C10_API std::ostream& operator<<(std::ostream& /*str*/, DispatchKey /*rhs*/);
|
|
C10_API std::ostream& operator<<(
|
|
std::ostream& /*str*/,
|
|
BackendComponent /*rhs*/);
|
|
|
|
C10_API DispatchKey getAutogradKeyFromBackend(BackendComponent k);
|
|
|
|
// Parses a string into a dispatch key.
|
|
// If the string cannot be correctly parsed, throws an exception.
|
|
C10_API c10::DispatchKey parseDispatchKey(const std::string& k);
|
|
|
|
// These are some convenience identifiers for dispatch keys which are
|
|
// shorter to type than their long counterparts. Note that some of these
|
|
// dispatch keys directly correspond to DeviceType; and most APIs that
|
|
// accept DispatchKey also accept DeviceType; e.g.,
|
|
// torch::dispatch(torch::kCPU, ...) is also valid.
|
|
constexpr DispatchKey kAutograd = DispatchKey::Autograd;
|
|
|
|
// See Note [The Ordering of Per-Backend Dispatch Keys Matters!]
|
|
// This function relies on the invariant that the dispatch keys between
|
|
// StartOfDenseBackends and EndOfRuntimeBackendKeys are ordered by backend
|
|
// in the same order as `BackendComponent`.
|
|
constexpr BackendComponent toBackendComponent(DispatchKey k) {
|
|
if (k >= DispatchKey::StartOfDenseBackends &&
|
|
k <= DispatchKey::EndOfDenseBackends) {
|
|
return static_cast<BackendComponent>(
|
|
static_cast<uint8_t>(k) -
|
|
static_cast<uint8_t>(DispatchKey::StartOfDenseBackends));
|
|
} else if (
|
|
k >= DispatchKey::StartOfQuantizedBackends &&
|
|
k <= DispatchKey::EndOfQuantizedBackends) {
|
|
return static_cast<BackendComponent>(
|
|
static_cast<uint8_t>(k) -
|
|
static_cast<uint8_t>(DispatchKey::StartOfQuantizedBackends));
|
|
} else if (
|
|
k >= DispatchKey::StartOfSparseBackends &&
|
|
k <= DispatchKey::EndOfSparseBackends) {
|
|
return static_cast<BackendComponent>(
|
|
static_cast<uint8_t>(k) -
|
|
static_cast<uint8_t>(DispatchKey::StartOfSparseBackends));
|
|
} else if (
|
|
k >= DispatchKey::StartOfSparseCsrBackends &&
|
|
k <= DispatchKey::EndOfSparseCsrBackends) {
|
|
return static_cast<BackendComponent>(
|
|
static_cast<uint8_t>(k) -
|
|
static_cast<uint8_t>(DispatchKey::StartOfSparseCsrBackends));
|
|
} else if (
|
|
k >= DispatchKey::StartOfNestedTensorBackends &&
|
|
k <= DispatchKey::EndOfNestedTensorBackends) {
|
|
return static_cast<BackendComponent>(
|
|
static_cast<uint8_t>(k) -
|
|
static_cast<uint8_t>(DispatchKey::StartOfNestedTensorBackends));
|
|
} else if (
|
|
k >= DispatchKey::StartOfAutogradFunctionalityBackends &&
|
|
k <= DispatchKey::EndOfAutogradFunctionalityBackends) {
|
|
return static_cast<BackendComponent>(
|
|
static_cast<uint8_t>(k) -
|
|
static_cast<uint8_t>(
|
|
DispatchKey::StartOfAutogradFunctionalityBackends));
|
|
} else {
|
|
return BackendComponent::InvalidBit;
|
|
}
|
|
}
|
|
|
|
constexpr DispatchKey toFunctionalityKey(DispatchKey k) {
|
|
if (k <= DispatchKey::EndOfFunctionalityKeys) {
|
|
return k;
|
|
} else if (k <= DispatchKey::EndOfDenseBackends) {
|
|
return DispatchKey::Dense;
|
|
} else if (k <= DispatchKey::EndOfQuantizedBackends) {
|
|
return DispatchKey::Quantized;
|
|
} else if (k <= DispatchKey::EndOfSparseBackends) {
|
|
return DispatchKey::Sparse;
|
|
} else if (k <= DispatchKey::EndOfSparseCsrBackends) {
|
|
return DispatchKey::SparseCsr;
|
|
} else if (k <= DispatchKey::EndOfNestedTensorBackends) {
|
|
return DispatchKey::NestedTensor;
|
|
} else if (k <= DispatchKey::EndOfAutogradFunctionalityBackends) {
|
|
return DispatchKey::AutogradFunctionality;
|
|
} else {
|
|
return DispatchKey::Undefined;
|
|
}
|
|
}
|
|
|
|
BackendComponent toBackendComponent(DeviceType device_type);
|
|
|
|
// Given (DispatchKey::Dense, BackendComponent::CUDABit), returns
|
|
// DispatchKey::CUDA.
|
|
// See Note [The Ordering of Per-Backend Dispatch Keys Matters!]
|
|
// This function relies on the invariant that the dispatch keys between
|
|
// StartOfDenseBackends and EndOfRuntimeBackendKeys are ordered by backend
|
|
// in the same order as `BackendComponent`.
|
|
constexpr DispatchKey toRuntimePerBackendFunctionalityKey(
|
|
DispatchKey functionality_k,
|
|
BackendComponent backend_k) {
|
|
if (functionality_k == DispatchKey::Dense) {
|
|
return static_cast<DispatchKey>(
|
|
static_cast<uint8_t>(DispatchKey::StartOfDenseBackends) +
|
|
static_cast<uint8_t>(backend_k));
|
|
}
|
|
if (functionality_k == DispatchKey::Sparse) {
|
|
return static_cast<DispatchKey>(
|
|
static_cast<uint8_t>(DispatchKey::StartOfSparseBackends) +
|
|
static_cast<uint8_t>(backend_k));
|
|
}
|
|
if (functionality_k == DispatchKey::SparseCsr) {
|
|
return static_cast<DispatchKey>(
|
|
static_cast<uint8_t>(DispatchKey::StartOfSparseCsrBackends) +
|
|
static_cast<uint8_t>(backend_k));
|
|
}
|
|
if (functionality_k == DispatchKey::Quantized) {
|
|
return static_cast<DispatchKey>(
|
|
static_cast<uint8_t>(DispatchKey::StartOfQuantizedBackends) +
|
|
static_cast<uint8_t>(backend_k));
|
|
}
|
|
if (functionality_k == DispatchKey::NestedTensor) {
|
|
return static_cast<DispatchKey>(
|
|
static_cast<uint8_t>(DispatchKey::StartOfNestedTensorBackends) +
|
|
static_cast<uint8_t>(backend_k));
|
|
}
|
|
if (functionality_k == DispatchKey::AutogradFunctionality) {
|
|
return static_cast<DispatchKey>(
|
|
static_cast<uint8_t>(
|
|
DispatchKey::StartOfAutogradFunctionalityBackends) +
|
|
static_cast<uint8_t>(backend_k));
|
|
}
|
|
return DispatchKey::Undefined;
|
|
}
|
|
|
|
} // namespace c10
|
|
|
|
namespace torch {
|
|
// Expose the constant, but not the TYPE (DispatchKey is an implementation
|
|
// detail!)
|
|
// NOLINTNEXTLINE(misc-unused-using-decls)
|
|
using c10::kAutograd;
|
|
} // namespace torch
|
|
|
|
// NB: You really shouldn't use this instance; this enum is guaranteed
|
|
// to be pretty small so a regular array should be acceptable.
|
|
namespace std {
|
|
template <>
|
|
struct hash<c10::DispatchKey> {
|
|
typedef size_t result_type;
|
|
typedef c10::DispatchKey argument_type;
|
|
|
|
size_t operator()(c10::DispatchKey x) const {
|
|
return static_cast<size_t>(x);
|
|
}
|
|
};
|
|
} // namespace std
|