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* interfaces, impls, and constrained generics (basics) * separate type checking into declare vs. type check, removing redundancy * external impls * added impl scopes to handle generics calling generics * cleanup * more cleanup * Update executable_semantics/testdata/interface/external_impl_point_vector.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * Update executable_semantics/testdata/interface/generic_call_generic.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * Update executable_semantics/testdata/interface/tuple_vector_add_scale.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * Update executable_semantics/testdata/interface/vector_point_add_scale.carbon Co-authored-by: josh11b <josh11b@users.noreply.github.com> * change ImplementationDeclaration to ImplDeclaration * remove impl_type_value * split NamedEntity into two * changed GetName to be a free function * adding comments * more edits to respond to review * introduce ImplBinding, remove punning on GenericBinding * new test case and some minor edits * refactor GetMember and GetField to move impl logic to interpreter * remove commennt * change EntityView to ImplBinding in FieldAccess... * move ImplBinding * review response * added example to impl_scope.h * minor edits * Update executable_semantics/interpreter/field_path.h Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/interpreter/value.cpp Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/interpreter/interpreter.cpp Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/ast/expression.h Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/ast/expression.h Co-authored-by: Geoff Romer <gromer@google.com> * Update executable_semantics/ast/generic_binding.h Co-authored-by: Geoff Romer <gromer@google.com> * more edits from review * review response * Update executable_semantics/ast/static_scope.h Co-authored-by: Geoff Romer <gromer@google.com> * remove ImplType, renamed node_view to value_node Co-authored-by: josh11b <josh11b@users.noreply.github.com> Co-authored-by: Geoff Romer <gromer@google.com>
1069 lines
41 KiB
C++
1069 lines
41 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/interpreter.h"
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#include <iterator>
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#include <map>
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#include <optional>
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#include <utility>
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#include <variant>
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#include <vector>
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#include "common/check.h"
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#include "executable_semantics/ast/declaration.h"
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#include "executable_semantics/ast/expression.h"
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#include "executable_semantics/common/arena.h"
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#include "executable_semantics/common/error.h"
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#include "executable_semantics/interpreter/action.h"
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#include "executable_semantics/interpreter/action_stack.h"
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#include "executable_semantics/interpreter/stack.h"
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#include "llvm/ADT/StringExtras.h"
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#include "llvm/Support/Casting.h"
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using llvm::cast;
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using llvm::dyn_cast;
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using llvm::isa;
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namespace Carbon {
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// Selects between compile-time and run-time behavior.
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enum class Phase { CompileTime, RunTime };
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// Constructs an ActionStack suitable for the specified phase.
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static auto MakeTodo(Phase phase, Nonnull<Heap*> heap) -> ActionStack {
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switch (phase) {
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case Phase::CompileTime:
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return ActionStack();
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case Phase::RunTime:
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return ActionStack(heap);
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}
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}
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// An Interpreter represents an instance of the Carbon abstract machine. It
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// manages the state of the abstract machine, and executes the steps of Actions
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// passed to it.
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class Interpreter {
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public:
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// Constructs an Interpreter which allocates values on `arena`, and prints
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// traces if `trace` is true. `phase` indicates whether it executes at
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// compile time or run time.
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Interpreter(Phase phase, Nonnull<Arena*> arena, bool trace)
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: arena_(arena),
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heap_(arena),
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todo_(MakeTodo(phase, &heap_)),
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trace_(trace) {}
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~Interpreter();
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// Runs all the steps of `action`.
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void RunAllSteps(std::unique_ptr<Action> action);
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// The result produced by the `action` argument of the most recent
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// RunAllSteps call. Cannot be called if `action` was an action that doesn't
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// produce results.
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auto result() const -> Nonnull<const Value*> { return todo_.result(); }
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private:
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void Step();
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// State transitions for expressions.
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void StepExp();
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// State transitions for lvalues.
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void StepLvalue();
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// State transitions for patterns.
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void StepPattern();
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// State transition for statements.
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void StepStmt();
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// State transition for declarations.
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void StepDeclaration();
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auto CreateStruct(const std::vector<FieldInitializer>& fields,
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const std::vector<Nonnull<const Value*>>& values)
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-> Nonnull<const Value*>;
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auto EvalPrim(Operator op, const std::vector<Nonnull<const Value*>>& args,
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SourceLocation source_loc) -> Nonnull<const Value*>;
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// Returns the result of converting `value` to type `destination_type`.
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auto Convert(Nonnull<const Value*> value,
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Nonnull<const Value*> destination_type) const
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-> Nonnull<const Value*>;
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void PrintState(llvm::raw_ostream& out);
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Nonnull<Arena*> arena_;
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Heap heap_;
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ActionStack todo_;
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// The underlying states of continuation values. All StackFragments created
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// during execution are tracked here, in order to safely deallocate the
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// contents of any non-completed continuations at the end of execution.
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std::vector<Nonnull<ContinuationValue::StackFragment*>> stack_fragments_;
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bool trace_;
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};
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Interpreter::~Interpreter() {
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// Clean up any remaining suspended continuations.
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for (Nonnull<ContinuationValue::StackFragment*> fragment : stack_fragments_) {
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fragment->Clear();
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}
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}
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//
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// State Operations
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//
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void Interpreter::PrintState(llvm::raw_ostream& out) {
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out << "{\nstack: " << todo_;
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out << "\nheap: " << heap_;
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if (!todo_.IsEmpty()) {
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out << "\nvalues: ";
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todo_.PrintScopes(out);
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}
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out << "\n}\n";
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}
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auto Interpreter::EvalPrim(Operator op,
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const std::vector<Nonnull<const Value*>>& args,
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SourceLocation source_loc) -> Nonnull<const Value*> {
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switch (op) {
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case Operator::Neg:
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return arena_->New<IntValue>(-cast<IntValue>(*args[0]).value());
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case Operator::Add:
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return arena_->New<IntValue>(cast<IntValue>(*args[0]).value() +
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cast<IntValue>(*args[1]).value());
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case Operator::Sub:
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return arena_->New<IntValue>(cast<IntValue>(*args[0]).value() -
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cast<IntValue>(*args[1]).value());
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case Operator::Mul:
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return arena_->New<IntValue>(cast<IntValue>(*args[0]).value() *
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cast<IntValue>(*args[1]).value());
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case Operator::Not:
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return arena_->New<BoolValue>(!cast<BoolValue>(*args[0]).value());
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case Operator::And:
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return arena_->New<BoolValue>(cast<BoolValue>(*args[0]).value() &&
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cast<BoolValue>(*args[1]).value());
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case Operator::Or:
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return arena_->New<BoolValue>(cast<BoolValue>(*args[0]).value() ||
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cast<BoolValue>(*args[1]).value());
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case Operator::Eq:
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return arena_->New<BoolValue>(ValueEqual(args[0], args[1]));
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case Operator::Ptr:
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return arena_->New<PointerType>(args[0]);
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case Operator::Deref:
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return heap_.Read(cast<PointerValue>(*args[0]).address(), source_loc);
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case Operator::AddressOf:
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return arena_->New<PointerValue>(cast<LValue>(*args[0]).address());
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}
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}
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auto Interpreter::CreateStruct(const std::vector<FieldInitializer>& fields,
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const std::vector<Nonnull<const Value*>>& values)
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-> Nonnull<const Value*> {
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CHECK(fields.size() == values.size());
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std::vector<NamedValue> elements;
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for (size_t i = 0; i < fields.size(); ++i) {
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elements.push_back({.name = fields[i].name(), .value = values[i]});
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}
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return arena_->New<StructValue>(std::move(elements));
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}
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auto PatternMatch(Nonnull<const Value*> p, Nonnull<const Value*> v,
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SourceLocation source_loc,
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std::optional<Nonnull<RuntimeScope*>> bindings) -> bool {
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switch (p->kind()) {
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case Value::Kind::BindingPlaceholderValue: {
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if (!bindings.has_value()) {
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// TODO: move this to typechecker.
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FATAL_COMPILATION_ERROR(source_loc)
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<< "Name bindings are not supported in this context";
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}
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const auto& placeholder = cast<BindingPlaceholderValue>(*p);
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if (placeholder.value_node().has_value()) {
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(*bindings)->Initialize(*placeholder.value_node(), v);
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}
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return true;
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}
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case Value::Kind::TupleValue:
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switch (v->kind()) {
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case Value::Kind::TupleValue: {
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const auto& p_tup = cast<TupleValue>(*p);
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const auto& v_tup = cast<TupleValue>(*v);
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if (p_tup.elements().size() != v_tup.elements().size()) {
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FATAL_PROGRAM_ERROR(source_loc)
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<< "arity mismatch in tuple pattern match:\n pattern: "
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<< p_tup << "\n value: " << v_tup;
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}
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for (size_t i = 0; i < p_tup.elements().size(); ++i) {
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if (!PatternMatch(p_tup.elements()[i], v_tup.elements()[i],
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source_loc, bindings)) {
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return false;
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}
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} // for
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return true;
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}
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default:
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FATAL() << "expected a tuple value in pattern, not " << *v;
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}
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case Value::Kind::StructValue: {
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const auto& p_struct = cast<StructValue>(*p);
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const auto& v_struct = cast<StructValue>(*v);
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CHECK(p_struct.elements().size() == v_struct.elements().size());
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for (size_t i = 0; i < p_struct.elements().size(); ++i) {
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CHECK(p_struct.elements()[i].name == v_struct.elements()[i].name);
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if (!PatternMatch(p_struct.elements()[i].value,
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v_struct.elements()[i].value, source_loc, bindings)) {
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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 Value::Kind::AlternativeValue:
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switch (v->kind()) {
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case Value::Kind::AlternativeValue: {
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const auto& p_alt = cast<AlternativeValue>(*p);
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const auto& v_alt = cast<AlternativeValue>(*v);
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if (p_alt.choice_name() != v_alt.choice_name() ||
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p_alt.alt_name() != v_alt.alt_name()) {
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return false;
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}
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return PatternMatch(&p_alt.argument(), &v_alt.argument(), source_loc,
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bindings);
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}
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default:
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FATAL() << "expected a choice alternative in pattern, not " << *v;
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}
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case Value::Kind::FunctionType:
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switch (v->kind()) {
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case Value::Kind::FunctionType: {
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const auto& p_fn = cast<FunctionType>(*p);
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const auto& v_fn = cast<FunctionType>(*v);
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if (!PatternMatch(&p_fn.parameters(), &v_fn.parameters(), source_loc,
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bindings)) {
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return false;
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}
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if (!PatternMatch(&p_fn.return_type(), &v_fn.return_type(),
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source_loc, bindings)) {
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return false;
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}
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return true;
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}
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default:
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return false;
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}
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case Value::Kind::AutoType:
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// `auto` matches any type, without binding any new names. We rely
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// on the typechecker to ensure that `v` is a type.
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return true;
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default:
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return ValueEqual(p, v);
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}
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}
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void Interpreter::StepLvalue() {
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Action& act = todo_.CurrentAction();
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const Expression& exp = cast<LValAction>(act).expression();
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if (trace_) {
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llvm::outs() << "--- step lvalue " << exp << " (" << exp.source_loc()
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<< ") --->\n";
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}
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switch (exp.kind()) {
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case ExpressionKind::IdentifierExpression: {
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// { {x :: C, E, F} :: S, H}
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// -> { {E(x) :: C, E, F} :: S, H}
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Nonnull<const Value*> value = todo_.ValueOfNode(
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cast<IdentifierExpression>(exp).value_node(), exp.source_loc());
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CHECK(isa<LValue>(value)) << *value;
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return todo_.FinishAction(value);
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}
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case ExpressionKind::FieldAccessExpression: {
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if (act.pos() == 0) {
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// { {e.f :: C, E, F} :: S, H}
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// -> { e :: [].f :: C, E, F} :: S, H}
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return todo_.Spawn(std::make_unique<LValAction>(
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&cast<FieldAccessExpression>(exp).aggregate()));
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} else {
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// { v :: [].f :: C, E, F} :: S, H}
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// -> { { &v.f :: C, E, F} :: S, H }
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Address aggregate = cast<LValue>(*act.results()[0]).address();
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Address field = aggregate.SubobjectAddress(
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cast<FieldAccessExpression>(exp).field());
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return todo_.FinishAction(arena_->New<LValue>(field));
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}
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}
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case ExpressionKind::IndexExpression: {
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if (act.pos() == 0) {
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// { {e[i] :: C, E, F} :: S, H}
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// -> { e :: [][i] :: C, E, F} :: S, H}
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return todo_.Spawn(std::make_unique<LValAction>(
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&cast<IndexExpression>(exp).aggregate()));
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} else if (act.pos() == 1) {
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return todo_.Spawn(std::make_unique<ExpressionAction>(
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&cast<IndexExpression>(exp).offset()));
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} else {
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// { v :: [][i] :: C, E, F} :: S, H}
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// -> { { &v[i] :: C, E, F} :: S, H }
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Address aggregate = cast<LValue>(*act.results()[0]).address();
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std::string f =
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std::to_string(cast<IntValue>(*act.results()[1]).value());
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Address field = aggregate.SubobjectAddress(f);
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return todo_.FinishAction(arena_->New<LValue>(field));
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}
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}
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case ExpressionKind::PrimitiveOperatorExpression: {
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const PrimitiveOperatorExpression& op =
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cast<PrimitiveOperatorExpression>(exp);
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if (op.op() != Operator::Deref) {
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FATAL() << "Can't treat primitive operator expression as lvalue: "
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<< exp;
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}
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if (act.pos() == 0) {
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return todo_.Spawn(
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std::make_unique<ExpressionAction>(op.arguments()[0]));
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} else {
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const PointerValue& res = cast<PointerValue>(*act.results()[0]);
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return todo_.FinishAction(arena_->New<LValue>(res.address()));
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}
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break;
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}
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case ExpressionKind::TupleLiteral:
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case ExpressionKind::StructLiteral:
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case ExpressionKind::StructTypeLiteral:
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case ExpressionKind::IntLiteral:
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case ExpressionKind::BoolLiteral:
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case ExpressionKind::CallExpression:
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case ExpressionKind::IntTypeLiteral:
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case ExpressionKind::BoolTypeLiteral:
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case ExpressionKind::TypeTypeLiteral:
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case ExpressionKind::FunctionTypeLiteral:
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case ExpressionKind::ContinuationTypeLiteral:
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case ExpressionKind::StringLiteral:
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case ExpressionKind::StringTypeLiteral:
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case ExpressionKind::IntrinsicExpression:
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FATAL() << "Can't treat expression as lvalue: " << exp;
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case ExpressionKind::UnimplementedExpression:
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FATAL() << "Unimplemented: " << exp;
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}
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}
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auto Interpreter::Convert(Nonnull<const Value*> value,
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Nonnull<const Value*> destination_type) const
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-> Nonnull<const Value*> {
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switch (value->kind()) {
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case Value::Kind::IntValue:
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case Value::Kind::FunctionValue:
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case Value::Kind::BoundMethodValue:
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case Value::Kind::PointerValue:
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case Value::Kind::LValue:
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case Value::Kind::BoolValue:
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case Value::Kind::NominalClassValue:
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case Value::Kind::AlternativeValue:
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case Value::Kind::IntType:
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case Value::Kind::BoolType:
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case Value::Kind::TypeType:
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case Value::Kind::FunctionType:
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case Value::Kind::PointerType:
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case Value::Kind::AutoType:
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case Value::Kind::StructType:
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case Value::Kind::NominalClassType:
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case Value::Kind::InterfaceType:
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case Value::Kind::Witness:
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case Value::Kind::ChoiceType:
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case Value::Kind::ContinuationType:
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case Value::Kind::VariableType:
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case Value::Kind::BindingPlaceholderValue:
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case Value::Kind::AlternativeConstructorValue:
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case Value::Kind::ContinuationValue:
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case Value::Kind::StringType:
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case Value::Kind::StringValue:
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case Value::Kind::TypeOfClassType:
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case Value::Kind::TypeOfInterfaceType:
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case Value::Kind::TypeOfChoiceType:
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// TODO: add `CHECK(TypeEqual(type, value->dynamic_type()))`, once we
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// have Value::dynamic_type.
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return value;
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case Value::Kind::StructValue: {
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const auto& struct_val = cast<StructValue>(*value);
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switch (destination_type->kind()) {
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case Value::Kind::StructType: {
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const auto& destination_struct_type =
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cast<StructType>(*destination_type);
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std::vector<NamedValue> new_elements;
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for (const auto& [field_name, field_type] :
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destination_struct_type.fields()) {
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std::optional<Nonnull<const Value*>> old_value =
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struct_val.FindField(field_name);
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new_elements.push_back(
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{.name = field_name, .value = Convert(*old_value, field_type)});
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}
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return arena_->New<StructValue>(std::move(new_elements));
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}
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case Value::Kind::NominalClassType:
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return arena_->New<NominalClassValue>(destination_type, value);
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default:
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FATAL() << "Can't convert value " << *value << " to type "
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<< *destination_type;
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}
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}
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case Value::Kind::TupleValue: {
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const auto& tuple = cast<TupleValue>(value);
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const auto& destination_tuple_type = cast<TupleValue>(destination_type);
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CHECK(tuple->elements().size() ==
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destination_tuple_type->elements().size());
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std::vector<Nonnull<const Value*>> new_elements;
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for (size_t i = 0; i < tuple->elements().size(); ++i) {
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new_elements.push_back(Convert(tuple->elements()[i],
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destination_tuple_type->elements()[i]));
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}
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return arena_->New<TupleValue>(std::move(new_elements));
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}
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}
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}
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void Interpreter::StepExp() {
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Action& act = todo_.CurrentAction();
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const Expression& exp = cast<ExpressionAction>(act).expression();
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if (trace_) {
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llvm::outs() << "--- step exp " << exp << " (" << exp.source_loc()
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<< ") --->\n";
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}
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switch (exp.kind()) {
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case ExpressionKind::IndexExpression: {
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if (act.pos() == 0) {
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// { { e[i] :: C, E, F} :: S, H}
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// -> { { e :: [][i] :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<IndexExpression>(exp).aggregate()));
|
|
} else if (act.pos() == 1) {
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<IndexExpression>(exp).offset()));
|
|
} else {
|
|
// { { v :: [][i] :: C, E, F} :: S, H}
|
|
// -> { { v_i :: C, E, F} : S, H}
|
|
const auto& tuple = cast<TupleValue>(*act.results()[0]);
|
|
int i = cast<IntValue>(*act.results()[1]).value();
|
|
if (i < 0 || i >= static_cast<int>(tuple.elements().size())) {
|
|
FATAL_RUNTIME_ERROR_NO_LINE()
|
|
<< "index " << i << " out of range in " << tuple;
|
|
}
|
|
return todo_.FinishAction(tuple.elements()[i]);
|
|
}
|
|
}
|
|
case ExpressionKind::TupleLiteral: {
|
|
if (act.pos() <
|
|
static_cast<int>(cast<TupleLiteral>(exp).fields().size())) {
|
|
// { { vk :: (f1=v1,..., fk=[],fk+1=ek+1,...) :: C, E, F} :: S,
|
|
// H}
|
|
// -> { { ek+1 :: (f1=v1,..., fk=vk, fk+1=[],...) :: C, E, F} :: S,
|
|
// H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
cast<TupleLiteral>(exp).fields()[act.pos()]));
|
|
} else {
|
|
return todo_.FinishAction(arena_->New<TupleValue>(act.results()));
|
|
}
|
|
}
|
|
case ExpressionKind::StructLiteral: {
|
|
const auto& literal = cast<StructLiteral>(exp);
|
|
if (act.pos() < static_cast<int>(literal.fields().size())) {
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&literal.fields()[act.pos()].expression()));
|
|
} else {
|
|
return todo_.FinishAction(
|
|
CreateStruct(literal.fields(), act.results()));
|
|
}
|
|
}
|
|
case ExpressionKind::StructTypeLiteral: {
|
|
const auto& struct_type = cast<StructTypeLiteral>(exp);
|
|
if (act.pos() < static_cast<int>(struct_type.fields().size())) {
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&struct_type.fields()[act.pos()].expression()));
|
|
} else {
|
|
std::vector<NamedValue> fields;
|
|
for (size_t i = 0; i < struct_type.fields().size(); ++i) {
|
|
fields.push_back({struct_type.fields()[i].name(), act.results()[i]});
|
|
}
|
|
return todo_.FinishAction(arena_->New<StructType>(std::move(fields)));
|
|
}
|
|
}
|
|
case ExpressionKind::FieldAccessExpression: {
|
|
const auto& access = cast<FieldAccessExpression>(exp);
|
|
if (act.pos() == 0) {
|
|
// { { e.f :: C, E, F} :: S, H}
|
|
// -> { { e :: [].f :: C, E, F} :: S, H}
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&access.aggregate()));
|
|
} else {
|
|
// { { v :: [].f :: C, E, F} :: S, H}
|
|
// -> { { v_f :: C, E, F} : S, H}
|
|
std::optional<Nonnull<const Witness*>> witness = std::nullopt;
|
|
if (access.impl().has_value()) {
|
|
auto witness_addr =
|
|
todo_.ValueOfNode(*access.impl(), access.source_loc());
|
|
witness = cast<Witness>(
|
|
heap_.Read(llvm::cast<LValue>(witness_addr)->address(),
|
|
access.source_loc()));
|
|
}
|
|
FieldPath::Component field(access.field(), witness);
|
|
Nonnull<const Value*> member = act.results()[0]->GetField(
|
|
arena_, FieldPath(field), exp.source_loc());
|
|
return todo_.FinishAction(member);
|
|
}
|
|
}
|
|
case ExpressionKind::IdentifierExpression: {
|
|
CHECK(act.pos() == 0);
|
|
const auto& ident = cast<IdentifierExpression>(exp);
|
|
// { {x :: C, E, F} :: S, H} -> { {H(E(x)) :: C, E, F} :: S, H}
|
|
Nonnull<const Value*> value =
|
|
todo_.ValueOfNode(ident.value_node(), ident.source_loc());
|
|
if (const auto* lvalue = dyn_cast<LValue>(value)) {
|
|
value = heap_.Read(lvalue->address(), exp.source_loc());
|
|
}
|
|
return todo_.FinishAction(value);
|
|
}
|
|
case ExpressionKind::IntLiteral:
|
|
CHECK(act.pos() == 0);
|
|
// { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
|
|
return todo_.FinishAction(
|
|
arena_->New<IntValue>(cast<IntLiteral>(exp).value()));
|
|
case ExpressionKind::BoolLiteral:
|
|
CHECK(act.pos() == 0);
|
|
// { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
|
|
return todo_.FinishAction(
|
|
arena_->New<BoolValue>(cast<BoolLiteral>(exp).value()));
|
|
case ExpressionKind::PrimitiveOperatorExpression: {
|
|
const auto& op = cast<PrimitiveOperatorExpression>(exp);
|
|
if (act.pos() != static_cast<int>(op.arguments().size())) {
|
|
// { {v :: op(vs,[],e,es) :: C, E, F} :: S, H}
|
|
// -> { {e :: op(vs,v,[],es) :: C, E, F} :: S, H}
|
|
Nonnull<const Expression*> arg = op.arguments()[act.pos()];
|
|
if (op.op() == Operator::AddressOf) {
|
|
return todo_.Spawn(std::make_unique<LValAction>(arg));
|
|
} else {
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(arg));
|
|
}
|
|
} else {
|
|
// { {v :: op(vs,[]) :: C, E, F} :: S, H}
|
|
// -> { {eval_prim(op, (vs,v)) :: C, E, F} :: S, H}
|
|
return todo_.FinishAction(
|
|
EvalPrim(op.op(), act.results(), exp.source_loc()));
|
|
}
|
|
}
|
|
case ExpressionKind::CallExpression:
|
|
if (act.pos() == 0) {
|
|
// { {e1(e2) :: C, E, F} :: S, H}
|
|
// -> { {e1 :: [](e2) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<CallExpression>(exp).function()));
|
|
} else if (act.pos() == 1) {
|
|
// { { v :: [](e) :: C, E, F} :: S, H}
|
|
// -> { { e :: v([]) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<CallExpression>(exp).argument()));
|
|
} else if (act.pos() == 2) {
|
|
// { { v2 :: v1([]) :: C, E, F} :: S, H}
|
|
// -> { {C',E',F'} :: {C, E, F} :: S, H}
|
|
switch (act.results()[0]->kind()) {
|
|
case Value::Kind::AlternativeConstructorValue: {
|
|
const auto& alt =
|
|
cast<AlternativeConstructorValue>(*act.results()[0]);
|
|
return todo_.FinishAction(arena_->New<AlternativeValue>(
|
|
alt.alt_name(), alt.choice_name(), act.results()[1]));
|
|
}
|
|
case Value::Kind::FunctionValue: {
|
|
const FunctionDeclaration& function =
|
|
cast<FunctionValue>(*act.results()[0]).declaration();
|
|
Nonnull<const Value*> converted_args = Convert(
|
|
act.results()[1], &function.param_pattern().static_type());
|
|
RuntimeScope function_scope(&heap_);
|
|
// Bring the impl witness tables into scope.
|
|
for (const auto& [impl_bind, impl_node] :
|
|
cast<CallExpression>(exp).impls()) {
|
|
Nonnull<const Value*> witness =
|
|
todo_.ValueOfNode(impl_node, exp.source_loc());
|
|
if (witness->kind() == Value::Kind::LValue) {
|
|
const LValue& lval = cast<LValue>(*witness);
|
|
witness = heap_.Read(lval.address(), exp.source_loc());
|
|
}
|
|
function_scope.Initialize(impl_bind, witness);
|
|
}
|
|
CHECK(PatternMatch(&function.param_pattern().value(),
|
|
converted_args, exp.source_loc(),
|
|
&function_scope));
|
|
CHECK(function.body().has_value())
|
|
<< "Calling a function that's missing a body";
|
|
return todo_.Spawn(
|
|
std::make_unique<StatementAction>(*function.body()),
|
|
std::move(function_scope));
|
|
}
|
|
case Value::Kind::BoundMethodValue: {
|
|
const BoundMethodValue& m =
|
|
cast<BoundMethodValue>(*act.results()[0]);
|
|
const FunctionDeclaration& method = m.declaration();
|
|
Nonnull<const Value*> converted_args = Convert(
|
|
act.results()[1], &method.param_pattern().static_type());
|
|
RuntimeScope method_scope(&heap_);
|
|
CHECK(PatternMatch(&method.me_pattern().value(), m.receiver(),
|
|
exp.source_loc(), &method_scope));
|
|
CHECK(PatternMatch(&method.param_pattern().value(), converted_args,
|
|
exp.source_loc(), &method_scope));
|
|
CHECK(method.body().has_value())
|
|
<< "Calling a method that's missing a body";
|
|
return todo_.Spawn(
|
|
std::make_unique<StatementAction>(*method.body()),
|
|
std::move(method_scope));
|
|
}
|
|
default:
|
|
FATAL_RUNTIME_ERROR(exp.source_loc())
|
|
<< "in call, expected a function, not " << *act.results()[0];
|
|
}
|
|
} else if (act.pos() == 3) {
|
|
if (act.results().size() < 3) {
|
|
// Control fell through without explicit return.
|
|
return todo_.FinishAction(TupleValue::Empty());
|
|
} else {
|
|
return todo_.FinishAction(act.results()[2]);
|
|
}
|
|
} else {
|
|
FATAL() << "in handle_value with Call pos " << act.pos();
|
|
}
|
|
case ExpressionKind::IntrinsicExpression: {
|
|
const auto& intrinsic = cast<IntrinsicExpression>(exp);
|
|
if (act.pos() == 0) {
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&intrinsic.args()));
|
|
}
|
|
// { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
|
|
switch (cast<IntrinsicExpression>(exp).intrinsic()) {
|
|
case IntrinsicExpression::Intrinsic::Print: {
|
|
const auto& args = cast<TupleValue>(*act.results()[0]);
|
|
// TODO: This could eventually use something like llvm::formatv.
|
|
llvm::outs() << cast<StringValue>(*args.elements()[0]).value();
|
|
return todo_.FinishAction(TupleValue::Empty());
|
|
}
|
|
}
|
|
}
|
|
case ExpressionKind::IntTypeLiteral: {
|
|
CHECK(act.pos() == 0);
|
|
return todo_.FinishAction(arena_->New<IntType>());
|
|
}
|
|
case ExpressionKind::BoolTypeLiteral: {
|
|
CHECK(act.pos() == 0);
|
|
return todo_.FinishAction(arena_->New<BoolType>());
|
|
}
|
|
case ExpressionKind::TypeTypeLiteral: {
|
|
CHECK(act.pos() == 0);
|
|
return todo_.FinishAction(arena_->New<TypeType>());
|
|
}
|
|
case ExpressionKind::FunctionTypeLiteral: {
|
|
if (act.pos() == 0) {
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<FunctionTypeLiteral>(exp).parameter()));
|
|
} else if (act.pos() == 1) {
|
|
// { { pt :: fn [] -> e :: C, E, F} :: S, H}
|
|
// -> { { e :: fn pt -> []) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<FunctionTypeLiteral>(exp).return_type()));
|
|
} else {
|
|
// { { rt :: fn pt -> [] :: C, E, F} :: S, H}
|
|
// -> { fn pt -> rt :: {C, E, F} :: S, H}
|
|
return todo_.FinishAction(arena_->New<FunctionType>(
|
|
std::vector<Nonnull<const GenericBinding*>>(), act.results()[0],
|
|
act.results()[1], std::vector<Nonnull<const ImplBinding*>>()));
|
|
}
|
|
}
|
|
case ExpressionKind::ContinuationTypeLiteral: {
|
|
CHECK(act.pos() == 0);
|
|
return todo_.FinishAction(arena_->New<ContinuationType>());
|
|
}
|
|
case ExpressionKind::StringLiteral:
|
|
CHECK(act.pos() == 0);
|
|
// { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
|
|
return todo_.FinishAction(
|
|
arena_->New<StringValue>(cast<StringLiteral>(exp).value()));
|
|
case ExpressionKind::StringTypeLiteral: {
|
|
CHECK(act.pos() == 0);
|
|
return todo_.FinishAction(arena_->New<StringType>());
|
|
}
|
|
case ExpressionKind::UnimplementedExpression:
|
|
FATAL() << "Unimplemented: " << exp;
|
|
} // switch (exp->kind)
|
|
}
|
|
|
|
void Interpreter::StepPattern() {
|
|
Action& act = todo_.CurrentAction();
|
|
const Pattern& pattern = cast<PatternAction>(act).pattern();
|
|
if (trace_) {
|
|
llvm::outs() << "--- step pattern " << pattern << " ("
|
|
<< pattern.source_loc() << ") --->\n";
|
|
}
|
|
switch (pattern.kind()) {
|
|
case PatternKind::AutoPattern: {
|
|
CHECK(act.pos() == 0);
|
|
return todo_.FinishAction(arena_->New<AutoType>());
|
|
}
|
|
case PatternKind::BindingPattern: {
|
|
const auto& binding = cast<BindingPattern>(pattern);
|
|
if (binding.name() != AnonymousName) {
|
|
return todo_.FinishAction(
|
|
arena_->New<BindingPlaceholderValue>(&binding));
|
|
} else {
|
|
return todo_.FinishAction(arena_->New<BindingPlaceholderValue>());
|
|
}
|
|
}
|
|
case PatternKind::TuplePattern: {
|
|
const auto& tuple = cast<TuplePattern>(pattern);
|
|
if (act.pos() < static_cast<int>(tuple.fields().size())) {
|
|
// { { vk :: (f1=v1,..., fk=[],fk+1=ek+1,...) :: C, E, F} :: S,
|
|
// H}
|
|
// -> { { ek+1 :: (f1=v1,..., fk=vk, fk+1=[],...) :: C, E, F} :: S,
|
|
// H}
|
|
return todo_.Spawn(
|
|
std::make_unique<PatternAction>(tuple.fields()[act.pos()]));
|
|
} else {
|
|
return todo_.FinishAction(arena_->New<TupleValue>(act.results()));
|
|
}
|
|
}
|
|
case PatternKind::AlternativePattern: {
|
|
const auto& alternative = cast<AlternativePattern>(pattern);
|
|
if (act.pos() == 0) {
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&alternative.choice_type()));
|
|
} else if (act.pos() == 1) {
|
|
return todo_.Spawn(
|
|
std::make_unique<PatternAction>(&alternative.arguments()));
|
|
} else {
|
|
CHECK(act.pos() == 2);
|
|
const auto& choice_type = cast<ChoiceType>(*act.results()[0]);
|
|
return todo_.FinishAction(arena_->New<AlternativeValue>(
|
|
alternative.alternative_name(), choice_type.name(),
|
|
act.results()[1]));
|
|
}
|
|
}
|
|
case PatternKind::ExpressionPattern:
|
|
if (act.pos() == 0) {
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<ExpressionPattern>(pattern).expression()));
|
|
} else {
|
|
return todo_.FinishAction(act.results()[0]);
|
|
}
|
|
}
|
|
}
|
|
|
|
void Interpreter::StepStmt() {
|
|
Action& act = todo_.CurrentAction();
|
|
const Statement& stmt = cast<StatementAction>(act).statement();
|
|
if (trace_) {
|
|
llvm::outs() << "--- step stmt ";
|
|
stmt.PrintDepth(1, llvm::outs());
|
|
llvm::outs() << " (" << stmt.source_loc() << ") --->\n";
|
|
}
|
|
switch (stmt.kind()) {
|
|
case StatementKind::Match: {
|
|
const auto& match_stmt = cast<Match>(stmt);
|
|
if (act.pos() == 0) {
|
|
// { { (match (e) ...) :: C, E, F} :: S, H}
|
|
// -> { { e :: (match ([]) ...) :: C, E, F} :: S, H}
|
|
act.StartScope(RuntimeScope(&heap_));
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&match_stmt.expression()));
|
|
} else {
|
|
int clause_num = act.pos() - 1;
|
|
if (clause_num >= static_cast<int>(match_stmt.clauses().size())) {
|
|
return todo_.FinishAction();
|
|
}
|
|
auto c = match_stmt.clauses()[clause_num];
|
|
RuntimeScope matches(&heap_);
|
|
if (PatternMatch(&c.pattern().value(),
|
|
Convert(act.results()[0], &c.pattern().static_type()),
|
|
stmt.source_loc(), &matches)) {
|
|
// Ensure we don't process any more clauses.
|
|
act.set_pos(match_stmt.clauses().size() + 1);
|
|
todo_.MergeScope(std::move(matches));
|
|
return todo_.Spawn(std::make_unique<StatementAction>(&c.statement()));
|
|
} else {
|
|
return todo_.RunAgain();
|
|
}
|
|
}
|
|
}
|
|
case StatementKind::While:
|
|
if (act.pos() % 2 == 0) {
|
|
// { { (while (e) s) :: C, E, F} :: S, H}
|
|
// -> { { e :: (while ([]) s) :: C, E, F} :: S, H}
|
|
act.Clear();
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&cast<While>(stmt).condition()));
|
|
} else {
|
|
Nonnull<const Value*> condition =
|
|
Convert(act.results().back(), arena_->New<BoolType>());
|
|
if (cast<BoolValue>(*condition).value()) {
|
|
// { {true :: (while ([]) s) :: C, E, F} :: S, H}
|
|
// -> { { s :: (while (e) s) :: C, E, F } :: S, H}
|
|
return todo_.Spawn(
|
|
std::make_unique<StatementAction>(&cast<While>(stmt).body()));
|
|
} else {
|
|
// { {false :: (while ([]) s) :: C, E, F} :: S, H}
|
|
// -> { { C, E, F } :: S, H}
|
|
return todo_.FinishAction();
|
|
}
|
|
}
|
|
case StatementKind::Break: {
|
|
CHECK(act.pos() == 0);
|
|
// { { break; :: ... :: (while (e) s) :: C, E, F} :: S, H}
|
|
// -> { { C, E', F} :: S, H}
|
|
return todo_.UnwindPast(&cast<Break>(stmt).loop());
|
|
}
|
|
case StatementKind::Continue: {
|
|
CHECK(act.pos() == 0);
|
|
// { { continue; :: ... :: (while (e) s) :: C, E, F} :: S, H}
|
|
// -> { { (while (e) s) :: C, E', F} :: S, H}
|
|
return todo_.UnwindTo(&cast<Continue>(stmt).loop());
|
|
}
|
|
case StatementKind::Block: {
|
|
const auto& block = cast<Block>(stmt);
|
|
if (act.pos() >= static_cast<int>(block.statements().size())) {
|
|
// If the position is past the end of the block, end processing. Note
|
|
// that empty blocks immediately end.
|
|
return todo_.FinishAction();
|
|
}
|
|
// Initialize a scope when starting a block.
|
|
if (act.pos() == 0) {
|
|
act.StartScope(RuntimeScope(&heap_));
|
|
}
|
|
// Process the next statement in the block. The position will be
|
|
// incremented as part of Spawn.
|
|
return todo_.Spawn(
|
|
std::make_unique<StatementAction>(block.statements()[act.pos()]));
|
|
}
|
|
case StatementKind::VariableDefinition: {
|
|
const auto& definition = cast<VariableDefinition>(stmt);
|
|
if (act.pos() == 0) {
|
|
// { {(var x = e) :: C, E, F} :: S, H}
|
|
// -> { {e :: (var x = []) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&definition.init()));
|
|
} else {
|
|
// { { v :: (x = []) :: C, E, F} :: S, H}
|
|
// -> { { C, E(x := a), F} :: S, H(a := copy(v))}
|
|
Nonnull<const Value*> v =
|
|
Convert(act.results()[0], &definition.pattern().static_type());
|
|
Nonnull<const Value*> p =
|
|
&cast<VariableDefinition>(stmt).pattern().value();
|
|
|
|
RuntimeScope matches(&heap_);
|
|
CHECK(PatternMatch(p, v, stmt.source_loc(), &matches))
|
|
<< stmt.source_loc()
|
|
<< ": internal error in variable definition, match failed";
|
|
todo_.MergeScope(std::move(matches));
|
|
return todo_.FinishAction();
|
|
}
|
|
}
|
|
case StatementKind::ExpressionStatement:
|
|
if (act.pos() == 0) {
|
|
// { {e :: C, E, F} :: S, H}
|
|
// -> { {e :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<ExpressionStatement>(stmt).expression()));
|
|
} else {
|
|
return todo_.FinishAction();
|
|
}
|
|
case StatementKind::Assign: {
|
|
const auto& assign = cast<Assign>(stmt);
|
|
if (act.pos() == 0) {
|
|
// { {(lv = e) :: C, E, F} :: S, H}
|
|
// -> { {lv :: ([] = e) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<LValAction>(&assign.lhs()));
|
|
} else if (act.pos() == 1) {
|
|
// { { a :: ([] = e) :: C, E, F} :: S, H}
|
|
// -> { { e :: (a = []) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(&assign.rhs()));
|
|
} else {
|
|
// { { v :: (a = []) :: C, E, F} :: S, H}
|
|
// -> { { C, E, F} :: S, H(a := v)}
|
|
const auto& lval = cast<LValue>(*act.results()[0]);
|
|
Nonnull<const Value*> rval =
|
|
Convert(act.results()[1], &assign.lhs().static_type());
|
|
heap_.Write(lval.address(), rval, stmt.source_loc());
|
|
return todo_.FinishAction();
|
|
}
|
|
}
|
|
case StatementKind::If:
|
|
if (act.pos() == 0) {
|
|
// { {(if (e) then_stmt else else_stmt) :: C, E, F} :: S, H}
|
|
// -> { { e :: (if ([]) then_stmt else else_stmt) :: C, E, F} :: S, H}
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&cast<If>(stmt).condition()));
|
|
} else if (act.pos() == 1) {
|
|
Nonnull<const Value*> condition =
|
|
Convert(act.results()[0], arena_->New<BoolType>());
|
|
if (cast<BoolValue>(*condition).value()) {
|
|
// { {true :: if ([]) then_stmt else else_stmt :: C, E, F} ::
|
|
// S, H}
|
|
// -> { { then_stmt :: C, E, F } :: S, H}
|
|
return todo_.Spawn(
|
|
std::make_unique<StatementAction>(&cast<If>(stmt).then_block()));
|
|
} else if (cast<If>(stmt).else_block()) {
|
|
// { {false :: if ([]) then_stmt else else_stmt :: C, E, F} ::
|
|
// S, H}
|
|
// -> { { else_stmt :: C, E, F } :: S, H}
|
|
return todo_.Spawn(
|
|
std::make_unique<StatementAction>(*cast<If>(stmt).else_block()));
|
|
} else {
|
|
return todo_.FinishAction();
|
|
}
|
|
} else {
|
|
return todo_.FinishAction();
|
|
}
|
|
case StatementKind::Return:
|
|
if (act.pos() == 0) {
|
|
// { {return e :: C, E, F} :: S, H}
|
|
// -> { {e :: return [] :: C, E, F} :: S, H}
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(
|
|
&cast<Return>(stmt).expression()));
|
|
} else {
|
|
// { {v :: return [] :: C, E, F} :: {C', E', F'} :: S, H}
|
|
// -> { {v :: C', E', F'} :: S, H}
|
|
const FunctionDeclaration& function = cast<Return>(stmt).function();
|
|
return todo_.UnwindPast(
|
|
*function.body(),
|
|
Convert(act.results()[0], &function.return_term().static_type()));
|
|
}
|
|
case StatementKind::Continuation: {
|
|
CHECK(act.pos() == 0);
|
|
const auto& continuation = cast<Continuation>(stmt);
|
|
// Create a continuation object by creating a frame similar the
|
|
// way one is created in a function call.
|
|
auto fragment = arena_->New<ContinuationValue::StackFragment>();
|
|
stack_fragments_.push_back(fragment);
|
|
todo_.InitializeFragment(*fragment, &continuation.body());
|
|
// Bind the continuation object to the continuation variable
|
|
todo_.Initialize(&cast<Continuation>(stmt),
|
|
arena_->New<ContinuationValue>(fragment));
|
|
return todo_.FinishAction();
|
|
}
|
|
case StatementKind::Run: {
|
|
auto& run = cast<Run>(stmt);
|
|
if (act.pos() == 0) {
|
|
// Evaluate the argument of the run statement.
|
|
return todo_.Spawn(std::make_unique<ExpressionAction>(&run.argument()));
|
|
} else if (act.pos() == 1) {
|
|
// Push the continuation onto the current stack.
|
|
return todo_.Resume(cast<const ContinuationValue>(act.results()[0]));
|
|
} else {
|
|
return todo_.FinishAction();
|
|
}
|
|
}
|
|
case StatementKind::Await:
|
|
CHECK(act.pos() == 0);
|
|
return todo_.Suspend();
|
|
}
|
|
}
|
|
|
|
void Interpreter::StepDeclaration() {
|
|
Action& act = todo_.CurrentAction();
|
|
const Declaration& decl = cast<DeclarationAction>(act).declaration();
|
|
if (trace_) {
|
|
llvm::outs() << "--- step declaration (" << decl.source_loc() << ") --->\n";
|
|
}
|
|
switch (decl.kind()) {
|
|
case DeclarationKind::VariableDeclaration: {
|
|
const auto& var_decl = cast<VariableDeclaration>(decl);
|
|
if (var_decl.has_initializer()) {
|
|
if (act.pos() == 0) {
|
|
return todo_.Spawn(
|
|
std::make_unique<ExpressionAction>(&var_decl.initializer()));
|
|
} else {
|
|
todo_.Initialize(&var_decl.binding(), act.results()[0]);
|
|
return todo_.FinishAction();
|
|
}
|
|
} else {
|
|
return todo_.FinishAction();
|
|
}
|
|
}
|
|
case DeclarationKind::FunctionDeclaration:
|
|
case DeclarationKind::ClassDeclaration:
|
|
case DeclarationKind::ChoiceDeclaration:
|
|
case DeclarationKind::InterfaceDeclaration:
|
|
case DeclarationKind::ImplDeclaration:
|
|
// These declarations have no run-time effects.
|
|
return todo_.FinishAction();
|
|
}
|
|
}
|
|
|
|
// State transition.
|
|
void Interpreter::Step() {
|
|
Action& act = todo_.CurrentAction();
|
|
switch (act.kind()) {
|
|
case Action::Kind::LValAction:
|
|
StepLvalue();
|
|
break;
|
|
case Action::Kind::ExpressionAction:
|
|
StepExp();
|
|
break;
|
|
case Action::Kind::PatternAction:
|
|
StepPattern();
|
|
break;
|
|
case Action::Kind::StatementAction:
|
|
StepStmt();
|
|
break;
|
|
case Action::Kind::DeclarationAction:
|
|
StepDeclaration();
|
|
break;
|
|
case Action::Kind::ScopeAction:
|
|
FATAL() << "ScopeAction escaped ActionStack";
|
|
} // switch
|
|
}
|
|
|
|
void Interpreter::RunAllSteps(std::unique_ptr<Action> action) {
|
|
if (trace_) {
|
|
PrintState(llvm::outs());
|
|
}
|
|
todo_.Start(std::move(action));
|
|
while (!todo_.IsEmpty()) {
|
|
Step();
|
|
if (trace_) {
|
|
PrintState(llvm::outs());
|
|
}
|
|
}
|
|
}
|
|
|
|
auto InterpProgram(const AST& ast, Nonnull<Arena*> arena, bool trace) -> int {
|
|
Interpreter interpreter(Phase::RunTime, arena, trace);
|
|
if (trace) {
|
|
llvm::outs() << "********** initializing globals **********\n";
|
|
}
|
|
|
|
for (Nonnull<Declaration*> declaration : ast.declarations) {
|
|
interpreter.RunAllSteps(std::make_unique<DeclarationAction>(declaration));
|
|
}
|
|
|
|
if (trace) {
|
|
llvm::outs() << "********** calling main function **********\n";
|
|
}
|
|
|
|
interpreter.RunAllSteps(std::make_unique<ExpressionAction>(*ast.main_call));
|
|
|
|
return cast<IntValue>(*interpreter.result()).value();
|
|
}
|
|
|
|
auto InterpExp(Nonnull<const Expression*> e, Nonnull<Arena*> arena, bool trace)
|
|
-> Nonnull<const Value*> {
|
|
Interpreter interpreter(Phase::CompileTime, arena, trace);
|
|
interpreter.RunAllSteps(std::make_unique<ExpressionAction>(e));
|
|
return interpreter.result();
|
|
}
|
|
|
|
auto InterpPattern(Nonnull<const Pattern*> p, Nonnull<Arena*> arena, bool trace)
|
|
-> Nonnull<const Value*> {
|
|
Interpreter interpreter(Phase::CompileTime, arena, trace);
|
|
interpreter.RunAllSteps(std::make_unique<PatternAction>(p));
|
|
return interpreter.result();
|
|
}
|
|
|
|
} // namespace Carbon
|