mindspore2022/mindspore/ccsrc/ir/func_graph.h

324 lines
12 KiB
C++

/**
* This is the C++ adaptation and derivative work of Myia (https://github.com/mila-iqia/myia/).
*
* Copyright 2019 Huawei Technologies Co., Ltd
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#ifndef MINDSPORE_CCSRC_IR_FUNC_GRAPH_H_
#define MINDSPORE_CCSRC_IR_FUNC_GRAPH_H_
#include <map>
#include <string>
#include <vector>
#include <list>
#include <memory>
#include <unordered_map>
#include <unordered_set>
#include "ir/anf.h"
#include "ir/manager.h"
#include "utils/any.h"
#include "utils/ordered_set.h"
#include "pipeline/static_analysis/abstract_value.h"
namespace mindspore {
using BaseRefCounterMap = OrderedMap<BaseRef, int, BaseRefHash>;
using FuncGraphCounterMap = OrderedMap<FuncGraphPtr, int>;
using AnfNodeCounterMap = OrderedMap<AnfNodePtr, int>;
const char FUNC_GRAPH_FLAG_IGNORE_VALUES[] = "ignore_values";
const char FUNC_GRAPH_FLAG_DEFER_INLINE[] = "defer_inline";
const char FUNC_GRAPH_FLAG_CORE[] = "core";
// ANF transform class
// either a primitive or a func_graph
class FuncGraphTransform {
public:
enum Type { kGtPrimitive, kGtFuncGraph };
explicit FuncGraphTransform(const PrimitivePtr prim, const FuncGraphPtr func_graph = nullptr)
: prim_(prim), func_graph_(FuncGraphWeakPtr(func_graph)) {}
explicit FuncGraphTransform(const FuncGraphPtr &func_graph, const PrimitivePtr &prim = func_graph_prim_)
: prim_(prim), func_graph_(FuncGraphWeakPtr(func_graph)) {}
FuncGraphTransform(const FuncGraphTransform &t) : prim_(t.prim_), func_graph_(t.func_graph_) {}
~FuncGraphTransform() = default;
Type type() const {
if (IsFuncGraph()) {
return kGtFuncGraph;
} else {
return kGtPrimitive;
}
}
bool IsPrimitive() const { return (func_graph_.lock() == nullptr); }
bool IsFuncGraph() const { return (func_graph_.lock() != nullptr); }
FuncGraphPtr func_graph() const { return func_graph_.lock(); }
PrimitivePtr primitive() const { return prim_; }
FuncGraphTransform &operator=(const FuncGraphTransform &t) {
if (this != &t) {
prim_ = t.prim_;
func_graph_ = t.func_graph_;
}
return *this;
}
private:
PrimitivePtr prim_;
// FuncGraph will be hold by FuncGraphManager, so weak_ptr is enough here.
// And use weak_ptr can break the reference cycle between "primal" and "grad" graph in
// FPropRemapper::FinalizeGraph().
FuncGraphWeakPtr func_graph_;
static const PrimitivePtr func_graph_prim_;
};
class FuncGraphBase : public Value {
public:
FuncGraphBase() = default;
~FuncGraphBase() override = default;
MS_DECLARE_PARENT(FuncGraphBase, Value);
};
extern const char kFuncGraphFlagUndetermined[];
class FuncGraph : public FuncGraphBase {
public:
FuncGraph();
~FuncGraph() override = default;
MS_DECLARE_PARENT(FuncGraph, FuncGraphBase);
// get the graph's abstract
abstract::AbstractFunctionPtr abstract();
abstract::AbstractBasePtr MakeAbstractClosure(const abstract::AnalysisContextPtr &context);
// return the graph's output, or nullptr if not yet deduced
AnfNodePtr output() const;
void set_output(const AnfNodePtr &value, bool force_new_ret = false);
const std::vector<AnfNodePtr> &parameters() const { return parameters_; }
virtual ParameterPtr add_parameter();
void add_parameter(const ParameterPtr &p);
void set_parameters(const std::vector<AnfNodePtr> &params) { parameters_ = params; }
// add a weight parameter with specific name
ParameterPtr AddWeightParameter(const std::string &name);
// create a cnode with given inputs, bound to this graph
virtual CNodePtr NewCNode(const std::vector<AnfNodePtr> &inputs = std::vector<AnfNodePtr>());
// create a cnode with given inputs, bound to this graph, and set to specific scope
CNodePtr NewCNodeWithScope(const std::vector<AnfNodePtr> &inputs, const ScopePtr &scope);
// Functions for handling variable argument, keyword-only arguments and variable keyword argument
AnfNodePtr GetDefaultValueByName(const std::string &name);
void set_param_default_value(const std::string &name, const AnfNodePtr &node) {
parameter_default_value_[name] = node;
}
void SetDefaultValues(const std::vector<std::string> &name_list, const std::vector<AnfNodePtr> &value_list);
void ClearDefaultValues();
size_t GetDefaultValueCount();
std::map<std::string, AnfNodePtr> &parameter_default_value() { return parameter_default_value_; }
void set_has_vararg(bool has_) { has_vararg_ = has_; }
bool has_vararg() const { return has_vararg_; }
AnfNodePtr GetVariableArgParameter();
std::string GetVariableArgName();
void set_has_kwarg(bool has_) { has_kwarg_ = has_; }
bool has_kwarg() const { return has_kwarg_; }
void set_kwonlyargs_count(int count) { kwonlyargs_count_ = count; }
int kwonlyargs_count() const { return kwonlyargs_count_; }
AnfNodePtr GetVariableKwargParameter();
std::string GetVariableKwargName();
void set_hyper_param_count(size_t count) { hyper_param_count_ = count; }
size_t hyper_param_count() const { return hyper_param_count_; }
int GetPositionalArgsCount() const;
AnfNodePtr GetParameterByName(const std::string &name);
bool NeedGenerate(const std::vector<abstract::AbstractKeywordArgPtr> &kwarg_list);
FuncGraphPtr GenerateGraph(const AbstractBasePtrList &args_spec_list);
void set_is_generate(bool generated) { is_generated_ = generated; }
bool is_generated() const { return is_generated_; }
bool has_flag(const std::string &flag);
std::unordered_map<std::string, bool> &flags() { return flags_; }
void set_flags(const std::unordered_map<std::string, bool> &flags) { flags_ = flags; }
void set_flags(const std::string &key, const bool value) { flags_[key] = value; }
std::unordered_map<std::string, FuncGraphTransform> &transforms() { return transforms_; }
void set_transforms(const std::unordered_map<std::string, FuncGraphTransform> &transforms) {
transforms_ = transforms;
}
CNodePtr get_return() const { return return_; }
void set_return(const CNodePtr &cnode) { return_ = cnode; }
FuncGraphManagerPtr manager() const { return manager_.lock(); }
void set_manager(const FuncGraphManagerPtr &m) { manager_ = std::weak_ptr<FuncGraphManager>(m); }
std::string ToString() const override;
GraphDebugInfoPtr debug_info();
void set_debug_info(const GraphDebugInfoPtr &info) {
if (info == nullptr) {
MS_LOG(EXCEPTION) << "Graph set null debug info";
}
this->debug_info_ = info;
}
// get all nodes belonging to this func graph
const AnfNodeSet &nodes();
// get all value_nodes belonging to this func graph
const AnfNodeCounterMap &value_nodes();
// get all vars directly pointed to in this func graph
const AnfNodeCounterMap &free_variables_direct();
// get all vars required by this func graph
const BaseRefCounterMap &free_variables_total();
// Return the set of graphs free_variables_total belong to.
std::vector<AnfNodePtr> free_variables_nodes();
// get all vars that are func graphs
std::vector<FuncGraphPtr> free_variables_func_graphs();
// get all func graphs directly used by this func graph
const FuncGraphCounterMap &func_graphs_used();
// get all func graphs nested used by this func graph
const FuncGraphSet &func_graphs_used_total();
// get all users of this func graph
const FuncGraphCounterMap &func_graph_users();
// get all user cnodes of this func graph
const AnfNodeCounterMap &func_graph_user_cnodes();
// Return the parent of this graph.
FuncGraphPtr parent();
// Return the children of this graph.
const FuncGraphSet &children();
// Return the scope of this graph, scope have graph self but children not have.
const FuncGraphSet &scope();
// Return whether this graph is recursive
bool recursive();
// Return graphs which forms a recursive loop
std::shared_ptr<std::list<FuncGraphPtr>> recursive_graphs();
std::size_t hash() const override { return std::hash<const FuncGraph *>{}(this); }
void DumpFuncGraph(const std::string &path = "./func_graph.dot");
bool operator==(const Value &other) const override {
if (other.isa<FuncGraph>()) {
return &other == this;
} else {
return false;
}
}
void GenerateVarParams(const FuncGraphPtr &specialized_graph, std::vector<AnfNodePtr> *specialized_parameter_list,
std::unordered_map<AnfNodePtr, AnfNodePtr> *repl_nodes, int variable_args_count,
int pos_args_input_count);
void GenerateKwParams(const FuncGraphPtr &specialized_graph, std::vector<AnfNodePtr> *specialized_parameter_list,
const std::vector<abstract::AbstractKeywordArgPtr> &kwarg_list,
std::unordered_map<AnfNodePtr, AnfNodePtr> *repl_nodes);
void GenerateDefaultValue(const FuncGraphPtr &specialized_graph,
const std::vector<AnfNodePtr> &specialized_parameter_list,
std::unordered_map<AnfNodePtr, AnfNodePtr> *repl_nodes);
const std::vector<AnfNodePtr> &paramter_obj_nodes() const { return paramter_obj_nodes_; }
void add_parameter_obj_node(const AnfNodePtr &p);
std::unordered_map<AnfNodePtr, AnfNodePtr> &make_ref_params() { return make_ref_params_; }
std::unordered_map<std::string, bool> flags_;
std::unordered_map<std::string, FuncGraphTransform> transforms_;
// parameter default value
std::map<std::string, AnfNodePtr> parameter_default_value_;
std::unordered_map<AnfNodePtr, AnfNodePtr> make_ref_params_;
std::list<CNodePtr> GetOrderedCnodes();
void EraseUnusedNodeInOrder(const AnfNodePtr &n);
void EraseUnusedNodeInOrder();
void CheckOrder();
void DumpCNodeList();
void ReleaseFullOrderToEffectOrder();
void SetEffectDepends(const std::vector<AnfNodePtr> &depend_inputs);
bool HasEffect(const CNodePtr &cnode);
private:
// graph is manipulated by manager and others
friend FuncGraphManager;
// parameters of this function
std::vector<AnfNodePtr> parameters_;
std::vector<AnfNodePtr> paramter_obj_nodes_;
// whether there is a *args and **kwargs, and count kwonlyargs'number
bool has_vararg_;
bool has_kwarg_;
int kwonlyargs_count_;
// the hyper param is placed on the top graph,
// and positioned in the end of the param list, so we record the number to trace the position
size_t hyper_param_count_;
// the argument input list for the graph used to generate this graph
bool is_generated_;
// the cnode that calls 'return' primitive
// we use shared pointer to manage it.
CNodePtr return_;
// back-ref to its manager
// hold a weak ref to FuncGraphManager as FuncGraphManager also hold many ref to FuncGraph.
// Otherwise, FuncGraph and FuncGraphManager will make a reference cycles.
// Notes: Normally, there will be a global FuncGraphManager, it will hold all FuncGraphs.
// In some ut test cases, they may use local FuncGraphManager in function which
// generating the func graph, when go outside of that function, func graph will have no
// FuncGraphManager. In that special case, Manage() should be called to make the func graph
// managed.
std::weak_ptr<FuncGraphManager> manager_;
GraphDebugInfoPtr debug_info_;
void GenerateKwargReplNode(const FuncGraphPtr &specialized_graph,
std::unordered_map<AnfNodePtr, AnfNodePtr> *repl_nodes,
const std::vector<AnfNodePtr> &kwarg_keys_tuple_nodes,
const std::vector<AnfNodePtr> &kwarg_values_tuple_nodes);
// CNode order which relates to origin code order
std::list<CNodePtr> order_;
};
inline CNodePtr NewCNode(const std::vector<AnfNodePtr> &inputs, const FuncGraphPtr &fg) {
MS_EXCEPTION_IF_NULL(fg);
return fg->NewCNode(inputs);
}
// Find the root cnodes of a segment of cnodes.
std::shared_ptr<OrderedSet<CNodePtr>> FindRoots(const std::vector<CNodePtr> &segment);
// Find the leaf cnodes of a segment of cnodes.
std::shared_ptr<OrderedSet<CNodePtr>> FindLeaves(const std::vector<CNodePtr> &segment);
} // namespace mindspore
#endif // MINDSPORE_CCSRC_IR_FUNC_GRAPH_H_