mirror of
https://github.com/carbon-language/carbon-lang.git
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* improved checking for liveness when reading and writing memory * moving some functions to be methods of State * finished moving functions into State * Update executable_semantics/interpreter/interpreter.h Co-authored-by: Geoff Romer <gromer@google.com> * moved some comments, other minor edits Co-authored-by: Geoff Romer <gromer@google.com>
411 lines
10 KiB
C++
411 lines
10 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "executable_semantics/interpreter/value.h"
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#include <cassert>
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#include <iostream>
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#include "executable_semantics/interpreter/interpreter.h"
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namespace Carbon {
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auto FindInVarValues(const std::string& field, VarValues* inits)
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-> const Value* {
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for (auto& i : *inits) {
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if (i.first == field) {
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return i.second;
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}
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}
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return nullptr;
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}
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auto FieldsEqual(VarValues* ts1, VarValues* ts2) -> bool {
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if (ts1->size() == ts2->size()) {
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for (auto& iter1 : *ts1) {
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auto t2 = FindInVarValues(iter1.first, ts2);
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if (t2 == nullptr) {
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return false;
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}
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if (!TypeEqual(iter1.second, t2)) {
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return false;
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}
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}
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return true;
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} else {
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return false;
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}
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}
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auto FindTupleField(const std::string& name, const Value* tuple)
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-> std::optional<Address> {
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assert(tuple->tag == ValKind::TupleV);
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for (const auto& i : *tuple->u.tuple.elts) {
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if (i.first == name) {
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return i.second;
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}
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}
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return std::nullopt;
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}
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auto MakeIntVal(int i) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::IntV;
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v->u.integer = i;
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return v;
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}
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auto MakeBoolVal(bool b) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::BoolV;
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v->u.boolean = b;
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return v;
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}
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auto MakeFunVal(std::string name, const Value* param, const Statement* body)
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-> const Value* {
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auto* v = new Value();
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v->tag = ValKind::FunV;
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v->u.fun.name = new std::string(std::move(name));
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v->u.fun.param = param;
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v->u.fun.body = body;
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return v;
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}
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auto MakePtrVal(Address addr) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::PtrV;
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v->u.ptr = addr;
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return v;
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}
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auto MakeStructVal(const Value* type, const Value* inits) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::StructV;
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v->u.struct_val.type = type;
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v->u.struct_val.inits = inits;
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return v;
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}
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auto MakeTupleVal(std::vector<std::pair<std::string, Address>>* elts)
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-> const Value* {
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auto* v = new Value();
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v->tag = ValKind::TupleV;
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v->u.tuple.elts = elts;
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return v;
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}
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auto MakeAltVal(std::string alt_name, std::string choice_name, Address argument)
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-> const Value* {
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auto* v = new Value();
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v->tag = ValKind::AltV;
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v->u.alt.alt_name = new std::string(std::move(alt_name));
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v->u.alt.choice_name = new std::string(std::move(choice_name));
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v->u.alt.argument = argument;
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return v;
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}
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auto MakeAltCons(std::string alt_name, std::string choice_name)
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-> const Value* {
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auto* v = new Value();
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v->tag = ValKind::AltConsV;
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v->u.alt.alt_name = new std::string(std::move(alt_name));
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v->u.alt.choice_name = new std::string(std::move(choice_name));
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return v;
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}
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// Return a first-class continuation represented a fragment
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// of the stack.
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auto MakeContinuation(std::vector<Frame*> stack) -> Value* {
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auto* v = new Value();
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v->tag = ValKind::ContinuationV;
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v->u.continuation.stack = new std::vector<Frame*>(stack);
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return v;
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}
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auto MakeVarPatVal(std::string name, const Value* type) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::VarPatV;
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v->u.var_pat.name = new std::string(std::move(name));
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v->u.var_pat.type = type;
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return v;
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}
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auto MakeVarTypeVal(std::string name) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::VarTV;
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v->u.var_type = new std::string(std::move(name));
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return v;
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}
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auto MakeIntTypeVal() -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::IntTV;
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return v;
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}
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auto MakeBoolTypeVal() -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::BoolTV;
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return v;
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}
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auto MakeTypeTypeVal() -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::TypeTV;
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return v;
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}
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// Return a Continuation type.
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auto MakeContinuationTypeVal() -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::ContinuationTV;
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return v;
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}
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auto MakeAutoTypeVal() -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::AutoTV;
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return v;
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}
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auto MakeFunTypeVal(const Value* param, const Value* ret) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::FunctionTV;
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v->u.fun_type.param = param;
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v->u.fun_type.ret = ret;
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return v;
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}
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auto MakePtrTypeVal(const Value* type) -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::PointerTV;
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v->u.ptr_type.type = type;
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return v;
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}
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auto MakeStructTypeVal(std::string name, VarValues* fields, VarValues* methods)
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-> const Value* {
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auto* v = new Value();
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v->tag = ValKind::StructTV;
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v->u.struct_type.name = new std::string(std::move(name));
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v->u.struct_type.fields = fields;
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v->u.struct_type.methods = methods;
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return v;
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}
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auto MakeVoidTypeVal() -> const Value* {
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auto* v = new Value();
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v->tag = ValKind::TupleV;
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v->u.tuple.elts = new std::vector<std::pair<std::string, Address>>();
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return v;
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}
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auto MakeChoiceTypeVal(std::string name,
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std::list<std::pair<std::string, const Value*>>* alts)
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-> const Value* {
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auto* v = new Value();
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v->tag = ValKind::ChoiceTV;
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// Transitional leak: when we get rid of all pointers, this will disappear.
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v->u.choice_type.name = new std::string(name);
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v->u.choice_type.alternatives = alts;
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return v;
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}
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auto State::PrintAddress(Address a, std::ostream& out) -> void {
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if (!this->alive[a]) {
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out << "!!";
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}
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PrintValue(this->heap[a], out);
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}
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auto PrintValue(const Value* val, std::ostream& out) -> void {
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switch (val->tag) {
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case ValKind::AltConsV: {
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out << *val->u.alt_cons.choice_name << "." << *val->u.alt_cons.alt_name;
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break;
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}
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case ValKind::VarPatV: {
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PrintValue(val->u.var_pat.type, out);
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out << ": " << *val->u.var_pat.name;
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break;
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}
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case ValKind::AltV: {
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out << "alt " << *val->u.alt.choice_name << "." << *val->u.alt.alt_name
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<< " ";
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state->PrintAddress(val->u.alt.argument, out);
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break;
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}
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case ValKind::StructV: {
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out << *val->u.struct_val.type->u.struct_type.name;
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PrintValue(val->u.struct_val.inits, out);
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break;
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}
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case ValKind::TupleV: {
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out << "(";
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bool add_commas = false;
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for (const auto& elt : *val->u.tuple.elts) {
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if (add_commas) {
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out << ", ";
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} else {
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add_commas = true;
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}
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out << elt.first << " = ";
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state->PrintAddress(elt.second, out);
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out << "@" << elt.second;
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}
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out << ")";
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break;
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}
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case ValKind::IntV:
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out << val->u.integer;
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break;
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case ValKind::BoolV:
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out << std::boolalpha << val->u.boolean;
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break;
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case ValKind::FunV:
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out << "fun<" << *val->u.fun.name << ">";
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break;
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case ValKind::PtrV:
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out << "ptr<" << val->u.ptr << ">";
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break;
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case ValKind::BoolTV:
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out << "Bool";
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break;
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case ValKind::IntTV:
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out << "Int";
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break;
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case ValKind::TypeTV:
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out << "Type";
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break;
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case ValKind::AutoTV:
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out << "auto";
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break;
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case ValKind::ContinuationTV:
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out << "Continuation";
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break;
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case ValKind::PointerTV:
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out << "Ptr(";
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PrintValue(val->u.ptr_type.type, out);
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out << ")";
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break;
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case ValKind::FunctionTV:
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out << "fn ";
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PrintValue(val->u.fun_type.param, out);
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out << " -> ";
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PrintValue(val->u.fun_type.ret, out);
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break;
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case ValKind::VarTV:
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out << *val->u.var_type;
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break;
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case ValKind::StructTV:
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out << "struct " << *val->u.struct_type.name;
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break;
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case ValKind::ChoiceTV:
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out << "choice " << *val->u.choice_type.name;
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break;
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case ValKind::ContinuationV:
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out << "continuation[[";
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for (Frame* frame : *val->u.continuation.stack) {
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PrintFrame(frame, out);
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out << " :: ";
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}
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out << "]]";
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break;
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}
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}
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auto TypeEqual(const Value* t1, const Value* t2) -> bool {
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if (t1->tag != t2->tag) {
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return false;
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}
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switch (t1->tag) {
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case ValKind::VarTV:
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return *t1->u.var_type == *t2->u.var_type;
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case ValKind::PointerTV:
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return TypeEqual(t1->u.ptr_type.type, t2->u.ptr_type.type);
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case ValKind::FunctionTV:
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return TypeEqual(t1->u.fun_type.param, t2->u.fun_type.param) &&
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TypeEqual(t1->u.fun_type.ret, t2->u.fun_type.ret);
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case ValKind::StructTV:
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return *t1->u.struct_type.name == *t2->u.struct_type.name;
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case ValKind::ChoiceTV:
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return *t1->u.choice_type.name == *t2->u.choice_type.name;
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case ValKind::TupleV: {
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if (t1->u.tuple.elts->size() != t2->u.tuple.elts->size()) {
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return false;
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}
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for (size_t i = 0; i < t1->u.tuple.elts->size(); ++i) {
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std::optional<Address> t2_field =
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FindTupleField((*t1->u.tuple.elts)[i].first, t2);
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if (t2_field == std::nullopt) {
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return false;
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}
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if (!TypeEqual(state->ReadFromMemory((*t1->u.tuple.elts)[i].second, 0),
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state->ReadFromMemory(*t2_field, 0))) {
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return false;
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}
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}
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return true;
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}
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case ValKind::IntTV:
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case ValKind::BoolTV:
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case ValKind::ContinuationTV:
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return true;
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default:
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std::cerr << "TypeEqual used to compare non-type values" << std::endl;
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exit(-1);
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}
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}
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auto ValueEqual(const Value* v1, const Value* v2, int line_num) -> bool {
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if (v1->tag != v2->tag) {
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return false;
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}
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switch (v1->tag) {
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case ValKind::IntV:
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return v1->u.integer == v2->u.integer;
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case ValKind::BoolV:
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return v1->u.boolean == v2->u.boolean;
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case ValKind::PtrV:
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return v1->u.ptr == v2->u.ptr;
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case ValKind::FunV:
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return v1->u.fun.body == v2->u.fun.body;
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case ValKind::VarTV:
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case ValKind::IntTV:
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case ValKind::BoolTV:
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case ValKind::TypeTV:
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case ValKind::FunctionTV:
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case ValKind::PointerTV:
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case ValKind::AutoTV:
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case ValKind::StructTV:
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case ValKind::ChoiceTV:
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case ValKind::ContinuationTV:
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return TypeEqual(v1, v2);
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case ValKind::TupleV:
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case ValKind::StructV:
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case ValKind::AltV:
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case ValKind::VarPatV:
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case ValKind::AltConsV:
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case ValKind::ContinuationV:
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std::cerr << "ValueEqual does not support this kind of value."
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<< std::endl;
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exit(-1);
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}
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}
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auto ToInteger(const Value* v) -> int {
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switch (v->tag) {
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case ValKind::IntV:
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return v->u.integer;
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default:
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std::cerr << "expected an integer, not ";
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PrintValue(v, std::cerr);
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exit(-1);
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}
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}
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} // namespace Carbon
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