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- // Part of the Carbon Language project, under the Apache License v2.0 with LLVM
- // Exceptions. See /LICENSE for license information.
- // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
- #include "executable_semantics/interpreter/interpreter.h"
- #include <iterator>
- #include <map>
- #include <optional>
- #include <utility>
- #include <variant>
- #include <vector>
- #include "common/check.h"
- #include "executable_semantics/ast/expression.h"
- #include "executable_semantics/ast/function_definition.h"
- #include "executable_semantics/common/arena.h"
- #include "executable_semantics/common/error.h"
- #include "executable_semantics/common/tracing_flag.h"
- #include "executable_semantics/interpreter/action.h"
- #include "executable_semantics/interpreter/frame.h"
- #include "executable_semantics/interpreter/stack.h"
- #include "llvm/ADT/ScopeExit.h"
- #include "llvm/ADT/StringExtras.h"
- #include "llvm/Support/Casting.h"
- using llvm::cast;
- using llvm::dyn_cast;
- namespace Carbon {
- //
- // Auxiliary Functions
- //
- void Interpreter::PrintEnv(Env values, llvm::raw_ostream& out) {
- llvm::ListSeparator sep;
- for (const auto& [name, address] : values) {
- out << sep << name << ": ";
- heap.PrintAddress(address, out);
- }
- }
- //
- // State Operations
- //
- auto Interpreter::CurrentEnv() -> Env {
- Nonnull<Frame*> frame = stack.Top();
- return frame->scopes.Top()->values;
- }
- // Returns the given name from the environment, printing an error if not found.
- auto Interpreter::GetFromEnv(SourceLocation source_loc, const std::string& name)
- -> Address {
- std::optional<Address> pointer = CurrentEnv().Get(name);
- if (!pointer) {
- FATAL_RUNTIME_ERROR(source_loc) << "could not find `" << name << "`";
- }
- return *pointer;
- }
- void Interpreter::PrintState(llvm::raw_ostream& out) {
- out << "{\nstack: ";
- llvm::ListSeparator sep(" :: ");
- for (const auto& frame : stack) {
- out << sep << *frame;
- }
- out << "\nheap: " << heap;
- if (!stack.IsEmpty() && !stack.Top()->scopes.IsEmpty()) {
- out << "\nvalues: ";
- PrintEnv(CurrentEnv(), out);
- }
- out << "\n}\n";
- }
- auto Interpreter::EvalPrim(Operator op,
- const std::vector<Nonnull<const Value*>>& args,
- SourceLocation source_loc) -> Nonnull<const Value*> {
- switch (op) {
- case Operator::Neg:
- return arena->New<IntValue>(-cast<IntValue>(*args[0]).Val());
- case Operator::Add:
- return arena->New<IntValue>(cast<IntValue>(*args[0]).Val() +
- cast<IntValue>(*args[1]).Val());
- case Operator::Sub:
- return arena->New<IntValue>(cast<IntValue>(*args[0]).Val() -
- cast<IntValue>(*args[1]).Val());
- case Operator::Mul:
- return arena->New<IntValue>(cast<IntValue>(*args[0]).Val() *
- cast<IntValue>(*args[1]).Val());
- case Operator::Not:
- return arena->New<BoolValue>(!cast<BoolValue>(*args[0]).Val());
- case Operator::And:
- return arena->New<BoolValue>(cast<BoolValue>(*args[0]).Val() &&
- cast<BoolValue>(*args[1]).Val());
- case Operator::Or:
- return arena->New<BoolValue>(cast<BoolValue>(*args[0]).Val() ||
- cast<BoolValue>(*args[1]).Val());
- case Operator::Eq:
- return arena->New<BoolValue>(ValueEqual(args[0], args[1], source_loc));
- case Operator::Ptr:
- return arena->New<PointerType>(args[0]);
- case Operator::Deref:
- FATAL() << "dereference not implemented yet";
- }
- }
- void Interpreter::InitEnv(const Declaration& d, Env* env) {
- switch (d.kind()) {
- case Declaration::Kind::FunctionDeclaration: {
- const FunctionDefinition& func_def =
- cast<FunctionDeclaration>(d).definition();
- Env new_env = *env;
- // Bring the deduced parameters into scope.
- for (const auto& deduced : func_def.deduced_parameters()) {
- Address a = heap.AllocateValue(arena->New<VariableType>(deduced.name));
- new_env.Set(deduced.name, a);
- }
- auto pt = InterpPattern(new_env, &func_def.param_pattern());
- auto f = arena->New<FunctionValue>(func_def.name(), pt, func_def.body());
- Address a = heap.AllocateValue(f);
- env->Set(func_def.name(), a);
- break;
- }
- case Declaration::Kind::ClassDeclaration: {
- const ClassDefinition& class_def = cast<ClassDeclaration>(d).definition();
- VarValues fields;
- VarValues methods;
- for (Nonnull<const Member*> m : class_def.members()) {
- switch (m->kind()) {
- case Member::Kind::FieldMember: {
- Nonnull<const BindingPattern*> binding =
- cast<FieldMember>(*m).Binding();
- Nonnull<const Expression*> type_expression =
- cast<ExpressionPattern>(*binding->Type()).Expression();
- auto type = InterpExp(Env(arena), type_expression);
- fields.push_back(make_pair(*binding->Name(), type));
- break;
- }
- }
- }
- auto st = arena->New<NominalClassType>(
- class_def.name(), std::move(fields), std::move(methods));
- auto a = heap.AllocateValue(st);
- env->Set(class_def.name(), a);
- break;
- }
- case Declaration::Kind::ChoiceDeclaration: {
- const auto& choice = cast<ChoiceDeclaration>(d);
- VarValues alts;
- for (const auto& alternative : choice.alternatives()) {
- auto t = InterpExp(Env(arena), &alternative.signature());
- alts.push_back(make_pair(alternative.name(), t));
- }
- auto ct = arena->New<ChoiceType>(choice.name(), std::move(alts));
- auto a = heap.AllocateValue(ct);
- env->Set(choice.name(), a);
- break;
- }
- case Declaration::Kind::VariableDeclaration: {
- const auto& var = cast<VariableDeclaration>(d);
- // Adds an entry in `globals` mapping the variable's name to the
- // result of evaluating the initializer.
- auto v = InterpExp(*env, &var.initializer());
- Address a = heap.AllocateValue(v);
- env->Set(*var.binding().Name(), a);
- break;
- }
- }
- }
- void Interpreter::InitGlobals(llvm::ArrayRef<Nonnull<Declaration*>> fs) {
- for (const auto d : fs) {
- InitEnv(*d, &globals);
- }
- }
- void Interpreter::DeallocateScope(Nonnull<Scope*> scope) {
- for (const auto& l : scope->locals) {
- std::optional<Address> a = scope->values.Get(l);
- CHECK(a);
- heap.Deallocate(*a);
- }
- }
- void Interpreter::DeallocateLocals(Nonnull<Frame*> frame) {
- while (!frame->scopes.IsEmpty()) {
- DeallocateScope(frame->scopes.Top());
- frame->scopes.Pop();
- }
- }
- auto Interpreter::CreateTuple(Nonnull<Action*> act,
- Nonnull<const Expression*> exp)
- -> Nonnull<const Value*> {
- // { { (v1,...,vn) :: C, E, F} :: S, H}
- // -> { { `(v1,...,vn) :: C, E, F} :: S, H}
- const auto& tup_lit = cast<TupleLiteral>(*exp);
- CHECK(act->results().size() == tup_lit.fields().size());
- std::vector<TupleElement> elements;
- for (size_t i = 0; i < act->results().size(); ++i) {
- elements.push_back(
- {.name = tup_lit.fields()[i].name(), .value = act->results()[i]});
- }
- return arena->New<TupleValue>(std::move(elements));
- }
- auto Interpreter::CreateStruct(const std::vector<FieldInitializer>& fields,
- const std::vector<Nonnull<const Value*>>& values)
- -> Nonnull<const Value*> {
- CHECK(fields.size() == values.size());
- std::vector<TupleElement> elements;
- for (size_t i = 0; i < fields.size(); ++i) {
- elements.push_back({.name = fields[i].name(), .value = values[i]});
- }
- return arena->New<StructValue>(std::move(elements));
- }
- auto Interpreter::PatternMatch(Nonnull<const Value*> p, Nonnull<const Value*> v,
- SourceLocation source_loc)
- -> std::optional<Env> {
- switch (p->kind()) {
- case Value::Kind::BindingPlaceholderValue: {
- const auto& placeholder = cast<BindingPlaceholderValue>(*p);
- Env values(arena);
- if (placeholder.Name().has_value()) {
- Address a = heap.AllocateValue(CopyVal(arena, v, source_loc));
- values.Set(*placeholder.Name(), a);
- }
- return values;
- }
- case Value::Kind::TupleValue:
- switch (v->kind()) {
- case Value::Kind::TupleValue: {
- const auto& p_tup = cast<TupleValue>(*p);
- const auto& v_tup = cast<TupleValue>(*v);
- if (p_tup.Elements().size() != v_tup.Elements().size()) {
- FATAL_PROGRAM_ERROR(source_loc)
- << "arity mismatch in tuple pattern match:\n pattern: "
- << p_tup << "\n value: " << v_tup;
- }
- Env values(arena);
- for (size_t i = 0; i < p_tup.Elements().size(); ++i) {
- if (p_tup.Elements()[i].name != v_tup.Elements()[i].name) {
- FATAL_PROGRAM_ERROR(source_loc)
- << "Tuple field name '" << v_tup.Elements()[i].name
- << "' does not match pattern field name '"
- << p_tup.Elements()[i].name << "'";
- }
- std::optional<Env> matches =
- PatternMatch(p_tup.Elements()[i].value,
- v_tup.Elements()[i].value, source_loc);
- if (!matches) {
- return std::nullopt;
- }
- for (const auto& [name, value] : *matches) {
- values.Set(name, value);
- }
- } // for
- return values;
- }
- default:
- FATAL() << "expected a tuple value in pattern, not " << *v;
- }
- case Value::Kind::StructValue: {
- const auto& p_struct = cast<StructValue>(*p);
- const auto& v_struct = cast<StructValue>(*v);
- CHECK(p_struct.elements().size() == v_struct.elements().size());
- Env values(arena);
- for (size_t i = 0; i < p_struct.elements().size(); ++i) {
- CHECK(p_struct.elements()[i].name == v_struct.elements()[i].name);
- std::optional<Env> matches =
- PatternMatch(p_struct.elements()[i].value,
- v_struct.elements()[i].value, source_loc);
- if (!matches) {
- return std::nullopt;
- }
- for (const auto& [name, value] : *matches) {
- values.Set(name, value);
- }
- }
- return values;
- }
- case Value::Kind::AlternativeValue:
- switch (v->kind()) {
- case Value::Kind::AlternativeValue: {
- const auto& p_alt = cast<AlternativeValue>(*p);
- const auto& v_alt = cast<AlternativeValue>(*v);
- if (p_alt.ChoiceName() != v_alt.ChoiceName() ||
- p_alt.AltName() != v_alt.AltName()) {
- return std::nullopt;
- }
- return PatternMatch(p_alt.Argument(), v_alt.Argument(), source_loc);
- }
- default:
- FATAL() << "expected a choice alternative in pattern, not " << *v;
- }
- case Value::Kind::FunctionType:
- switch (v->kind()) {
- case Value::Kind::FunctionType: {
- const auto& p_fn = cast<FunctionType>(*p);
- const auto& v_fn = cast<FunctionType>(*v);
- std::optional<Env> param_matches =
- PatternMatch(p_fn.Param(), v_fn.Param(), source_loc);
- if (!param_matches) {
- return std::nullopt;
- }
- std::optional<Env> ret_matches =
- PatternMatch(p_fn.Ret(), v_fn.Ret(), source_loc);
- if (!ret_matches) {
- return std::nullopt;
- }
- Env values = *param_matches;
- for (const auto& [name, value] : *ret_matches) {
- values.Set(name, value);
- }
- return values;
- }
- default:
- return std::nullopt;
- }
- case Value::Kind::AutoType:
- // `auto` matches any type, without binding any new names. We rely
- // on the typechecker to ensure that `v` is a type.
- return Env(arena);
- default:
- if (ValueEqual(p, v, source_loc)) {
- return Env(arena);
- } else {
- return std::nullopt;
- }
- }
- }
- void Interpreter::PatternAssignment(Nonnull<const Value*> pat,
- Nonnull<const Value*> val,
- SourceLocation source_loc) {
- switch (pat->kind()) {
- case Value::Kind::PointerValue:
- heap.Write(cast<PointerValue>(*pat).Val(),
- CopyVal(arena, val, source_loc), source_loc);
- break;
- case Value::Kind::TupleValue: {
- switch (val->kind()) {
- case Value::Kind::TupleValue: {
- const auto& pat_tup = cast<TupleValue>(*pat);
- const auto& val_tup = cast<TupleValue>(*val);
- if (pat_tup.Elements().size() != val_tup.Elements().size()) {
- FATAL_RUNTIME_ERROR(source_loc)
- << "arity mismatch in tuple pattern assignment:\n pattern: "
- << pat_tup << "\n value: " << val_tup;
- }
- for (const TupleElement& pattern_element : pat_tup.Elements()) {
- std::optional<Nonnull<const Value*>> value_field =
- val_tup.FindField(pattern_element.name);
- if (!value_field) {
- FATAL_RUNTIME_ERROR(source_loc)
- << "field " << pattern_element.name << "not in " << *val;
- }
- PatternAssignment(pattern_element.value, *value_field, source_loc);
- }
- break;
- }
- default:
- FATAL() << "expected a tuple value on right-hand-side, not " << *val;
- }
- break;
- }
- case Value::Kind::AlternativeValue: {
- switch (val->kind()) {
- case Value::Kind::AlternativeValue: {
- const auto& pat_alt = cast<AlternativeValue>(*pat);
- const auto& val_alt = cast<AlternativeValue>(*val);
- CHECK(val_alt.ChoiceName() == pat_alt.ChoiceName() &&
- val_alt.AltName() == pat_alt.AltName())
- << "internal error in pattern assignment";
- PatternAssignment(pat_alt.Argument(), val_alt.Argument(), source_loc);
- break;
- }
- default:
- FATAL() << "expected an alternative in left-hand-side, not " << *val;
- }
- break;
- }
- default:
- CHECK(ValueEqual(pat, val, source_loc))
- << "internal error in pattern assignment";
- }
- }
- auto Interpreter::StepLvalue() -> Transition {
- Nonnull<Action*> act = stack.Top()->todo.Top();
- Nonnull<const Expression*> exp = cast<LValAction>(*act).Exp();
- if (tracing_output) {
- llvm::outs() << "--- step lvalue " << *exp << " (" << exp->source_loc()
- << ") --->\n";
- }
- switch (exp->kind()) {
- case Expression::Kind::IdentifierExpression: {
- // { {x :: C, E, F} :: S, H}
- // -> { {E(x) :: C, E, F} :: S, H}
- Address pointer = GetFromEnv(exp->source_loc(),
- cast<IdentifierExpression>(*exp).name());
- Nonnull<const Value*> v = arena->New<PointerValue>(pointer);
- return Done{v};
- }
- case Expression::Kind::FieldAccessExpression: {
- if (act->pos() == 0) {
- // { {e.f :: C, E, F} :: S, H}
- // -> { e :: [].f :: C, E, F} :: S, H}
- return Spawn{arena->New<LValAction>(
- &cast<FieldAccessExpression>(*exp).aggregate())};
- } else {
- // { v :: [].f :: C, E, F} :: S, H}
- // -> { { &v.f :: C, E, F} :: S, H }
- Address aggregate = cast<PointerValue>(*act->results()[0]).Val();
- Address field = aggregate.SubobjectAddress(
- cast<FieldAccessExpression>(*exp).field());
- return Done{arena->New<PointerValue>(field)};
- }
- }
- case Expression::Kind::IndexExpression: {
- if (act->pos() == 0) {
- // { {e[i] :: C, E, F} :: S, H}
- // -> { e :: [][i] :: C, E, F} :: S, H}
- return Spawn{
- arena->New<LValAction>(&cast<IndexExpression>(*exp).aggregate())};
- } else if (act->pos() == 1) {
- return Spawn{arena->New<ExpressionAction>(
- &cast<IndexExpression>(*exp).offset())};
- } else {
- // { v :: [][i] :: C, E, F} :: S, H}
- // -> { { &v[i] :: C, E, F} :: S, H }
- Address aggregate = cast<PointerValue>(*act->results()[0]).Val();
- std::string f =
- std::to_string(cast<IntValue>(*act->results()[1]).Val());
- Address field = aggregate.SubobjectAddress(f);
- return Done{arena->New<PointerValue>(field)};
- }
- }
- case Expression::Kind::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 Spawn{arena->New<LValAction>(
- &cast<TupleLiteral>(*exp).fields()[act->pos()].expression())};
- } else {
- return Done{CreateTuple(act, exp)};
- }
- }
- case Expression::Kind::StructLiteral:
- case Expression::Kind::StructTypeLiteral:
- case Expression::Kind::IntLiteral:
- case Expression::Kind::BoolLiteral:
- case Expression::Kind::CallExpression:
- case Expression::Kind::PrimitiveOperatorExpression:
- case Expression::Kind::IntTypeLiteral:
- case Expression::Kind::BoolTypeLiteral:
- case Expression::Kind::TypeTypeLiteral:
- case Expression::Kind::FunctionTypeLiteral:
- case Expression::Kind::ContinuationTypeLiteral:
- case Expression::Kind::StringLiteral:
- case Expression::Kind::StringTypeLiteral:
- case Expression::Kind::IntrinsicExpression:
- FATAL_RUNTIME_ERROR_NO_LINE()
- << "Can't treat expression as lvalue: " << *exp;
- }
- }
- auto Interpreter::StepExp() -> Transition {
- Nonnull<Action*> act = stack.Top()->todo.Top();
- Nonnull<const Expression*> exp = cast<ExpressionAction>(*act).Exp();
- if (tracing_output) {
- llvm::outs() << "--- step exp " << *exp << " (" << exp->source_loc()
- << ") --->\n";
- }
- switch (exp->kind()) {
- case Expression::Kind::IndexExpression: {
- if (act->pos() == 0) {
- // { { e[i] :: C, E, F} :: S, H}
- // -> { { e :: [][i] :: C, E, F} :: S, H}
- return Spawn{arena->New<ExpressionAction>(
- &cast<IndexExpression>(*exp).aggregate())};
- } else if (act->pos() == 1) {
- return Spawn{arena->New<ExpressionAction>(
- &cast<IndexExpression>(*exp).offset())};
- } else {
- // { { v :: [][i] :: C, E, F} :: S, H}
- // -> { { v_i :: C, E, F} : S, H}
- auto* tuple = dyn_cast<TupleValue>(act->results()[0]);
- if (tuple == nullptr) {
- FATAL_RUNTIME_ERROR_NO_LINE()
- << "expected a tuple in field access, not " << *act->results()[0];
- }
- std::string f =
- std::to_string(cast<IntValue>(*act->results()[1]).Val());
- std::optional<Nonnull<const Value*>> field = tuple->FindField(f);
- if (!field) {
- FATAL_RUNTIME_ERROR_NO_LINE()
- << "field " << f << " not in " << *tuple;
- }
- return Done{*field};
- }
- }
- case Expression::Kind::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 Spawn{arena->New<ExpressionAction>(
- &cast<TupleLiteral>(*exp).fields()[act->pos()].expression())};
- } else {
- return Done{CreateTuple(act, exp)};
- }
- }
- case Expression::Kind::StructLiteral: {
- const auto& literal = cast<StructLiteral>(*exp);
- if (act->pos() < static_cast<int>(literal.fields().size())) {
- return Spawn{arena->New<ExpressionAction>(
- &literal.fields()[act->pos()].expression())};
- } else {
- return Done{CreateStruct(literal.fields(), act->results())};
- }
- }
- case Expression::Kind::StructTypeLiteral: {
- const auto& struct_type = cast<StructTypeLiteral>(*exp);
- if (act->pos() < static_cast<int>(struct_type.fields().size())) {
- return Spawn{arena->New<ExpressionAction>(
- &struct_type.fields()[act->pos()].expression())};
- } else {
- VarValues fields;
- for (size_t i = 0; i < struct_type.fields().size(); ++i) {
- fields.push_back({struct_type.fields()[i].name(), act->results()[i]});
- }
- return Done{arena->New<StructType>(std::move(fields))};
- }
- }
- case Expression::Kind::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 Spawn{arena->New<ExpressionAction>(&access.aggregate())};
- } else {
- // { { v :: [].f :: C, E, F} :: S, H}
- // -> { { v_f :: C, E, F} : S, H}
- return Done{act->results()[0]->GetField(
- arena, FieldPath(access.field()), exp->source_loc())};
- }
- }
- case Expression::Kind::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}
- Address pointer = GetFromEnv(exp->source_loc(), ident.name());
- return Done{heap.Read(pointer, exp->source_loc())};
- }
- case Expression::Kind::IntLiteral:
- CHECK(act->pos() == 0);
- // { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
- return Done{arena->New<IntValue>(cast<IntLiteral>(*exp).value())};
- case Expression::Kind::BoolLiteral:
- CHECK(act->pos() == 0);
- // { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
- return Done{arena->New<BoolValue>(cast<BoolLiteral>(*exp).value())};
- case Expression::Kind::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()];
- return Spawn{arena->New<ExpressionAction>(arg)};
- } else {
- // { {v :: op(vs,[]) :: C, E, F} :: S, H}
- // -> { {eval_prim(op, (vs,v)) :: C, E, F} :: S, H}
- return Done{EvalPrim(op.op(), act->results(), exp->source_loc())};
- }
- }
- case Expression::Kind::CallExpression:
- if (act->pos() == 0) {
- // { {e1(e2) :: C, E, F} :: S, H}
- // -> { {e1 :: [](e2) :: C, E, F} :: S, H}
- return Spawn{arena->New<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 Spawn{arena->New<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::NominalClassType: {
- Nonnull<const Value*> arg =
- CopyVal(arena, act->results()[1], exp->source_loc());
- return Done{arena->New<NominalClassValue>(act->results()[0], arg)};
- }
- case Value::Kind::AlternativeConstructorValue: {
- const auto& alt =
- cast<AlternativeConstructorValue>(*act->results()[0]);
- Nonnull<const Value*> arg =
- CopyVal(arena, act->results()[1], exp->source_loc());
- return Done{arena->New<AlternativeValue>(alt.AltName(),
- alt.ChoiceName(), arg)};
- }
- case Value::Kind::FunctionValue:
- return CallFunction{
- // TODO: Think about a cleaner way to cast between Ptr types.
- // (multiple TODOs)
- .function = Nonnull<const FunctionValue*>(
- cast<FunctionValue>(act->results()[0])),
- .args = act->results()[1],
- .source_loc = exp->source_loc()};
- default:
- FATAL_RUNTIME_ERROR(exp->source_loc())
- << "in call, expected a function, not " << *act->results()[0];
- }
- } else {
- FATAL() << "in handle_value with Call pos " << act->pos();
- }
- case Expression::Kind::IntrinsicExpression:
- CHECK(act->pos() == 0);
- // { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
- switch (cast<IntrinsicExpression>(*exp).intrinsic()) {
- case IntrinsicExpression::Intrinsic::Print:
- Address pointer = GetFromEnv(exp->source_loc(), "format_str");
- Nonnull<const Value*> pointee = heap.Read(pointer, exp->source_loc());
- CHECK(pointee->kind() == Value::Kind::StringValue);
- // TODO: This could eventually use something like llvm::formatv.
- llvm::outs() << cast<StringValue>(*pointee).Val();
- return Done{TupleValue::Empty()};
- }
- case Expression::Kind::IntTypeLiteral: {
- CHECK(act->pos() == 0);
- return Done{arena->New<IntType>()};
- }
- case Expression::Kind::BoolTypeLiteral: {
- CHECK(act->pos() == 0);
- return Done{arena->New<BoolType>()};
- }
- case Expression::Kind::TypeTypeLiteral: {
- CHECK(act->pos() == 0);
- return Done{arena->New<TypeType>()};
- }
- case Expression::Kind::FunctionTypeLiteral: {
- if (act->pos() == 0) {
- return Spawn{arena->New<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 Spawn{arena->New<ExpressionAction>(
- &cast<FunctionTypeLiteral>(*exp).return_type())};
- } else {
- // { { rt :: fn pt -> [] :: C, E, F} :: S, H}
- // -> { fn pt -> rt :: {C, E, F} :: S, H}
- return Done{arena->New<FunctionType>(std::vector<GenericBinding>(),
- act->results()[0],
- act->results()[1])};
- }
- }
- case Expression::Kind::ContinuationTypeLiteral: {
- CHECK(act->pos() == 0);
- return Done{arena->New<ContinuationType>()};
- }
- case Expression::Kind::StringLiteral:
- CHECK(act->pos() == 0);
- // { {n :: C, E, F} :: S, H} -> { {n' :: C, E, F} :: S, H}
- return Done{arena->New<StringValue>(cast<StringLiteral>(*exp).value())};
- case Expression::Kind::StringTypeLiteral: {
- CHECK(act->pos() == 0);
- return Done{arena->New<StringType>()};
- }
- } // switch (exp->kind)
- }
- auto Interpreter::StepPattern() -> Transition {
- Nonnull<Action*> act = stack.Top()->todo.Top();
- Nonnull<const Pattern*> pattern = cast<PatternAction>(*act).Pat();
- if (tracing_output) {
- llvm::outs() << "--- step pattern " << *pattern << " ("
- << pattern->source_loc() << ") --->\n";
- }
- switch (pattern->kind()) {
- case Pattern::Kind::AutoPattern: {
- CHECK(act->pos() == 0);
- return Done{arena->New<AutoType>()};
- }
- case Pattern::Kind::BindingPattern: {
- const auto& binding = cast<BindingPattern>(*pattern);
- if (act->pos() == 0) {
- return Spawn{arena->New<PatternAction>(binding.Type())};
- } else {
- return Done{arena->New<BindingPlaceholderValue>(binding.Name(),
- act->results()[0])};
- }
- }
- case Pattern::Kind::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 Spawn{
- arena->New<PatternAction>(tuple.Fields()[act->pos()].pattern)};
- } else {
- std::vector<TupleElement> elements;
- for (size_t i = 0; i < tuple.Fields().size(); ++i) {
- elements.push_back(
- {.name = tuple.Fields()[i].name, .value = act->results()[i]});
- }
- return Done{arena->New<TupleValue>(std::move(elements))};
- }
- }
- case Pattern::Kind::AlternativePattern: {
- const auto& alternative = cast<AlternativePattern>(*pattern);
- if (act->pos() == 0) {
- return Spawn{arena->New<ExpressionAction>(alternative.ChoiceType())};
- } else if (act->pos() == 1) {
- return Spawn{arena->New<PatternAction>(alternative.Arguments())};
- } else {
- CHECK(act->pos() == 2);
- const auto& choice_type = cast<ChoiceType>(*act->results()[0]);
- return Done{arena->New<AlternativeValue>(alternative.AlternativeName(),
- choice_type.Name(),
- act->results()[1])};
- }
- }
- case Pattern::Kind::ExpressionPattern:
- return Delegate{arena->New<ExpressionAction>(
- cast<ExpressionPattern>(*pattern).Expression())};
- }
- }
- static auto IsWhileAct(Nonnull<Action*> act) -> bool {
- switch (act->kind()) {
- case Action::Kind::StatementAction:
- switch (cast<StatementAction>(*act).Stmt()->kind()) {
- case Statement::Kind::While:
- return true;
- default:
- return false;
- }
- default:
- return false;
- }
- }
- static auto HasLocalScope(Nonnull<Action*> act) -> bool {
- switch (act->kind()) {
- case Action::Kind::StatementAction:
- switch (cast<StatementAction>(*act).Stmt()->kind()) {
- case Statement::Kind::Block:
- case Statement::Kind::Match:
- return true;
- default:
- return false;
- }
- default:
- return false;
- }
- }
- auto Interpreter::StepStmt() -> Transition {
- Nonnull<Frame*> frame = stack.Top();
- Nonnull<Action*> act = frame->todo.Top();
- Nonnull<const Statement*> stmt = cast<StatementAction>(*act).Stmt();
- if (tracing_output) {
- llvm::outs() << "--- step stmt ";
- stmt->PrintDepth(1, llvm::outs());
- llvm::outs() << " (" << stmt->source_loc() << ") --->\n";
- }
- switch (stmt->kind()) {
- case Statement::Kind::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}
- frame->scopes.Push(arena->New<Scope>(CurrentEnv()));
- return Spawn{arena->New<ExpressionAction>(&match_stmt.expression())};
- } else {
- // Regarding act->pos():
- // * odd: start interpreting the pattern of a clause
- // * even: finished interpreting the pattern, now try to match
- //
- // Regarding act->results():
- // * 0: the value that we're matching
- // * 1: the pattern for clause 0
- // * 2: the pattern for clause 1
- // * ...
- auto clause_num = (act->pos() - 1) / 2;
- if (clause_num >= static_cast<int>(match_stmt.clauses().size())) {
- DeallocateScope(frame->scopes.Top());
- frame->scopes.Pop();
- return Done{};
- }
- auto c = match_stmt.clauses()[clause_num];
- if (act->pos() % 2 == 1) {
- // start interpreting the pattern of the clause
- // { {v :: (match ([]) ...) :: C, E, F} :: S, H}
- // -> { {pi :: (match ([]) ...) :: C, E, F} :: S, H}
- return Spawn{arena->New<PatternAction>(&c.pattern())};
- } else { // try to match
- auto v = act->results()[0];
- auto pat = act->results()[clause_num + 1];
- std::optional<Env> matches = PatternMatch(pat, v, stmt->source_loc());
- if (matches) { // we have a match, start the body
- // Ensure we don't process any more clauses.
- act->set_pos(2 * match_stmt.clauses().size() + 1);
- for (const auto& [name, value] : *matches) {
- frame->scopes.Top()->values.Set(name, value);
- frame->scopes.Top()->locals.push_back(name);
- }
- return Spawn{arena->New<StatementAction>(&c.statement())};
- } else {
- return RunAgain{};
- }
- }
- }
- }
- case Statement::Kind::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 Spawn{arena->New<ExpressionAction>(cast<While>(*stmt).Cond())};
- } else if (cast<BoolValue>(*act->results().back()).Val()) {
- // { {true :: (while ([]) s) :: C, E, F} :: S, H}
- // -> { { s :: (while (e) s) :: C, E, F } :: S, H}
- return Spawn{arena->New<StatementAction>(cast<While>(*stmt).Body())};
- } else {
- // { {false :: (while ([]) s) :: C, E, F} :: S, H}
- // -> { { C, E, F } :: S, H}
- return Done{};
- }
- case Statement::Kind::Break: {
- CHECK(act->pos() == 0);
- // { { break; :: ... :: (while (e) s) :: C, E, F} :: S, H}
- // -> { { C, E', F} :: S, H}
- auto it =
- std::find_if(frame->todo.begin(), frame->todo.end(), &IsWhileAct);
- if (it == frame->todo.end()) {
- FATAL_RUNTIME_ERROR(stmt->source_loc())
- << "`break` not inside `while` statement";
- }
- ++it;
- return UnwindTo{*it};
- }
- case Statement::Kind::Continue: {
- CHECK(act->pos() == 0);
- // { { continue; :: ... :: (while (e) s) :: C, E, F} :: S, H}
- // -> { { (while (e) s) :: C, E', F} :: S, H}
- auto it =
- std::find_if(frame->todo.begin(), frame->todo.end(), &IsWhileAct);
- if (it == frame->todo.end()) {
- FATAL_RUNTIME_ERROR(stmt->source_loc())
- << "`continue` not inside `while` statement";
- }
- return UnwindTo{*it};
- }
- case Statement::Kind::Block: {
- if (act->pos() == 0) {
- const auto& block = cast<Block>(*stmt);
- if (block.Stmt()) {
- frame->scopes.Push(arena->New<Scope>(CurrentEnv()));
- return Spawn{arena->New<StatementAction>(*block.Stmt())};
- } else {
- return Done{};
- }
- } else {
- Nonnull<Scope*> scope = frame->scopes.Top();
- DeallocateScope(scope);
- frame->scopes.Pop(1);
- return Done{};
- }
- }
- case Statement::Kind::VariableDefinition:
- if (act->pos() == 0) {
- // { {(var x = e) :: C, E, F} :: S, H}
- // -> { {e :: (var x = []) :: C, E, F} :: S, H}
- return Spawn{arena->New<ExpressionAction>(
- cast<VariableDefinition>(*stmt).Init())};
- } else if (act->pos() == 1) {
- return Spawn{
- arena->New<PatternAction>(cast<VariableDefinition>(*stmt).Pat())};
- } else {
- // { { v :: (x = []) :: C, E, F} :: S, H}
- // -> { { C, E(x := a), F} :: S, H(a := copy(v))}
- Nonnull<const Value*> v = act->results()[0];
- Nonnull<const Value*> p = act->results()[1];
- std::optional<Env> matches = PatternMatch(p, v, stmt->source_loc());
- CHECK(matches)
- << stmt->source_loc()
- << ": internal error in variable definition, match failed";
- for (const auto& [name, value] : *matches) {
- frame->scopes.Top()->values.Set(name, value);
- frame->scopes.Top()->locals.push_back(name);
- }
- return Done{};
- }
- case Statement::Kind::ExpressionStatement:
- if (act->pos() == 0) {
- // { {e :: C, E, F} :: S, H}
- // -> { {e :: C, E, F} :: S, H}
- return Spawn{arena->New<ExpressionAction>(
- cast<ExpressionStatement>(*stmt).Exp())};
- } else {
- return Done{};
- }
- case Statement::Kind::Assign:
- if (act->pos() == 0) {
- // { {(lv = e) :: C, E, F} :: S, H}
- // -> { {lv :: ([] = e) :: C, E, F} :: S, H}
- return Spawn{arena->New<LValAction>(cast<Assign>(*stmt).Lhs())};
- } else if (act->pos() == 1) {
- // { { a :: ([] = e) :: C, E, F} :: S, H}
- // -> { { e :: (a = []) :: C, E, F} :: S, H}
- return Spawn{arena->New<ExpressionAction>(cast<Assign>(*stmt).Rhs())};
- } else {
- // { { v :: (a = []) :: C, E, F} :: S, H}
- // -> { { C, E, F} :: S, H(a := v)}
- auto pat = act->results()[0];
- auto val = act->results()[1];
- PatternAssignment(pat, val, stmt->source_loc());
- return Done{};
- }
- case Statement::Kind::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 Spawn{arena->New<ExpressionAction>(cast<If>(*stmt).Cond())};
- } else if (cast<BoolValue>(*act->results()[0]).Val()) {
- // { {true :: if ([]) then_stmt else else_stmt :: C, E, F} ::
- // S, H}
- // -> { { then_stmt :: C, E, F } :: S, H}
- return Delegate{
- arena->New<StatementAction>(cast<If>(*stmt).ThenStmt())};
- } else if (cast<If>(*stmt).ElseStmt()) {
- // { {false :: if ([]) then_stmt else else_stmt :: C, E, F} ::
- // S, H}
- // -> { { else_stmt :: C, E, F } :: S, H}
- return Delegate{
- arena->New<StatementAction>(*cast<If>(*stmt).ElseStmt())};
- } else {
- return Done{};
- }
- case Statement::Kind::Return:
- if (act->pos() == 0) {
- // { {return e :: C, E, F} :: S, H}
- // -> { {e :: return [] :: C, E, F} :: S, H}
- return Spawn{arena->New<ExpressionAction>(cast<Return>(*stmt).Exp())};
- } else {
- // { {v :: return [] :: C, E, F} :: {C', E', F'} :: S, H}
- // -> { {v :: C', E', F'} :: S, H}
- Nonnull<const Value*> ret_val =
- CopyVal(arena, act->results()[0], stmt->source_loc());
- return UnwindFunctionCall{ret_val};
- }
- case Statement::Kind::Sequence: {
- // { { (s1,s2) :: C, E, F} :: S, H}
- // -> { { s1 :: s2 :: C, E, F} :: S, H}
- const auto& seq = cast<Sequence>(*stmt);
- if (act->pos() == 0) {
- return Spawn{arena->New<StatementAction>(seq.Stmt())};
- } else {
- if (seq.Next()) {
- return Delegate{
- arena->New<StatementAction>(*cast<Sequence>(*stmt).Next())};
- } else {
- return Done{};
- }
- }
- }
- case Statement::Kind::Continuation: {
- CHECK(act->pos() == 0);
- // Create a continuation object by creating a frame similar the
- // way one is created in a function call.
- auto scopes = Stack<Nonnull<Scope*>>(arena->New<Scope>(CurrentEnv()));
- Stack<Nonnull<Action*>> todo;
- todo.Push(arena->New<StatementAction>(
- arena->New<Return>(arena, stmt->source_loc())));
- todo.Push(arena->New<StatementAction>(cast<Continuation>(*stmt).Body()));
- auto continuation_stack = arena->New<std::vector<Nonnull<Frame*>>>();
- auto continuation_frame =
- arena->New<Frame>("__continuation", scopes, todo);
- continuation_stack->push_back(continuation_frame);
- Address continuation_address =
- heap.AllocateValue(arena->New<ContinuationValue>(continuation_stack));
- // Store the continuation's address in the frame.
- continuation_frame->continuation = continuation_address;
- // Bind the continuation object to the continuation variable
- frame->scopes.Top()->values.Set(
- cast<Continuation>(*stmt).ContinuationVariable(),
- continuation_address);
- // Pop the continuation statement.
- frame->todo.Pop();
- return ManualTransition{};
- }
- case Statement::Kind::Run:
- if (act->pos() == 0) {
- // Evaluate the argument of the run statement.
- return Spawn{arena->New<ExpressionAction>(cast<Run>(*stmt).Argument())};
- } else {
- frame->todo.Pop(1);
- // Push an expression statement action to ignore the result
- // value from the continuation.
- auto ignore_result =
- arena->New<StatementAction>(arena->New<ExpressionStatement>(
- stmt->source_loc(),
- arena->New<TupleLiteral>(stmt->source_loc())));
- frame->todo.Push(ignore_result);
- // Push the continuation onto the current stack.
- std::vector<Nonnull<Frame*>>& continuation_vector =
- *cast<ContinuationValue>(*act->results()[0]).Stack();
- while (!continuation_vector.empty()) {
- stack.Push(continuation_vector.back());
- continuation_vector.pop_back();
- }
- return ManualTransition{};
- }
- case Statement::Kind::Await:
- CHECK(act->pos() == 0);
- // Pause the current continuation
- frame->todo.Pop();
- std::vector<Nonnull<Frame*>> paused;
- do {
- paused.push_back(stack.Pop());
- } while (paused.back()->continuation == std::nullopt);
- // Update the continuation with the paused stack.
- const auto& continuation = cast<ContinuationValue>(
- *heap.Read(*paused.back()->continuation, stmt->source_loc()));
- CHECK(continuation.Stack()->empty());
- *continuation.Stack() = std::move(paused);
- return ManualTransition{};
- }
- }
- class Interpreter::DoTransition {
- public:
- // Does not take ownership of interpreter.
- explicit DoTransition(Interpreter* interpreter) : interpreter(interpreter) {}
- void operator()(const Done& done) {
- Nonnull<Frame*> frame = interpreter->stack.Top();
- if (frame->todo.Top()->kind() != Action::Kind::StatementAction) {
- CHECK(done.result);
- frame->todo.Pop();
- if (frame->todo.IsEmpty()) {
- interpreter->program_value = *done.result;
- } else {
- frame->todo.Top()->AddResult(*done.result);
- }
- } else {
- CHECK(!done.result);
- frame->todo.Pop();
- }
- }
- void operator()(const Spawn& spawn) {
- Nonnull<Frame*> frame = interpreter->stack.Top();
- Nonnull<Action*> action = frame->todo.Top();
- action->set_pos(action->pos() + 1);
- frame->todo.Push(spawn.child);
- }
- void operator()(const Delegate& delegate) {
- Nonnull<Frame*> frame = interpreter->stack.Top();
- frame->todo.Pop();
- frame->todo.Push(delegate.delegate);
- }
- void operator()(const RunAgain&) {
- Nonnull<Action*> action = interpreter->stack.Top()->todo.Top();
- action->set_pos(action->pos() + 1);
- }
- void operator()(const UnwindTo& unwind_to) {
- Nonnull<Frame*> frame = interpreter->stack.Top();
- while (frame->todo.Top() != unwind_to.new_top) {
- if (HasLocalScope(frame->todo.Top())) {
- interpreter->DeallocateScope(frame->scopes.Top());
- frame->scopes.Pop();
- }
- frame->todo.Pop();
- }
- }
- void operator()(const UnwindFunctionCall& unwind) {
- interpreter->DeallocateLocals(interpreter->stack.Top());
- interpreter->stack.Pop();
- if (interpreter->stack.Top()->todo.IsEmpty()) {
- interpreter->program_value = unwind.return_val;
- } else {
- interpreter->stack.Top()->todo.Top()->AddResult(unwind.return_val);
- }
- }
- void operator()(const CallFunction& call) {
- interpreter->stack.Top()->todo.Pop();
- std::optional<Env> matches = interpreter->PatternMatch(
- call.function->Param(), call.args, call.source_loc);
- CHECK(matches.has_value())
- << "internal error in call_function, pattern match failed";
- // Create the new frame and push it on the stack
- Env values = interpreter->globals;
- std::vector<std::string> params;
- for (const auto& [name, value] : *matches) {
- values.Set(name, value);
- params.push_back(name);
- }
- auto scopes =
- Stack<Nonnull<Scope*>>(interpreter->arena->New<Scope>(values, params));
- CHECK(call.function->Body()) << "Calling a function that's missing a body";
- auto todo = Stack<Nonnull<Action*>>(
- interpreter->arena->New<StatementAction>(*call.function->Body()));
- auto frame =
- interpreter->arena->New<Frame>(call.function->Name(), scopes, todo);
- interpreter->stack.Push(frame);
- }
- void operator()(const ManualTransition&) {}
- private:
- Nonnull<Interpreter*> interpreter;
- };
- // State transition.
- void Interpreter::Step() {
- Nonnull<Frame*> frame = stack.Top();
- if (frame->todo.IsEmpty()) {
- std::visit(DoTransition(this),
- Transition{UnwindFunctionCall{TupleValue::Empty()}});
- return;
- }
- Nonnull<Action*> act = frame->todo.Top();
- switch (act->kind()) {
- case Action::Kind::LValAction:
- std::visit(DoTransition(this), StepLvalue());
- break;
- case Action::Kind::ExpressionAction:
- std::visit(DoTransition(this), StepExp());
- break;
- case Action::Kind::PatternAction:
- std::visit(DoTransition(this), StepPattern());
- break;
- case Action::Kind::StatementAction:
- std::visit(DoTransition(this), StepStmt());
- break;
- } // switch
- }
- auto Interpreter::InterpProgram(llvm::ArrayRef<Nonnull<Declaration*>> fs,
- Nonnull<const Expression*> call_main) -> int {
- // Check that the interpreter is in a clean state.
- CHECK(globals.IsEmpty());
- CHECK(stack.IsEmpty());
- CHECK(program_value == std::nullopt);
- if (tracing_output) {
- llvm::outs() << "********** initializing globals **********\n";
- }
- InitGlobals(fs);
- auto todo = Stack<Nonnull<Action*>>(arena->New<ExpressionAction>(call_main));
- auto scopes = Stack<Nonnull<Scope*>>(arena->New<Scope>(globals));
- stack = Stack<Nonnull<Frame*>>(arena->New<Frame>("top", scopes, todo));
- if (tracing_output) {
- llvm::outs() << "********** calling main function **********\n";
- PrintState(llvm::outs());
- }
- while (stack.Count() > 1 || !stack.Top()->todo.IsEmpty()) {
- Step();
- if (tracing_output) {
- PrintState(llvm::outs());
- }
- }
- return cast<IntValue>(**program_value).Val();
- }
- auto Interpreter::InterpExp(Env values, Nonnull<const Expression*> e)
- -> Nonnull<const Value*> {
- CHECK(program_value == std::nullopt);
- auto program_value_guard =
- llvm::make_scope_exit([&] { program_value = std::nullopt; });
- auto todo = Stack<Nonnull<Action*>>(arena->New<ExpressionAction>(e));
- auto scopes = Stack<Nonnull<Scope*>>(arena->New<Scope>(values));
- stack = Stack<Nonnull<Frame*>>(arena->New<Frame>("InterpExp", scopes, todo));
- while (stack.Count() > 1 || !stack.Top()->todo.IsEmpty()) {
- Step();
- }
- CHECK(program_value != std::nullopt);
- return *program_value;
- }
- auto Interpreter::InterpPattern(Env values, Nonnull<const Pattern*> p)
- -> Nonnull<const Value*> {
- CHECK(program_value == std::nullopt);
- auto program_value_guard =
- llvm::make_scope_exit([&] { program_value = std::nullopt; });
- auto todo = Stack<Nonnull<Action*>>(arena->New<PatternAction>(p));
- auto scopes = Stack<Nonnull<Scope*>>(arena->New<Scope>(values));
- stack =
- Stack<Nonnull<Frame*>>(arena->New<Frame>("InterpPattern", scopes, todo));
- while (stack.Count() > 1 || !stack.Top()->todo.IsEmpty()) {
- Step();
- }
- CHECK(program_value != std::nullopt);
- return *program_value;
- }
- } // namespace Carbon
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