luau/Analysis/src/TypeChecker2.cpp

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#include "Luau/TypeChecker2.h"
#include <algorithm>
#include "Luau/Ast.h"
#include "Luau/AstQuery.h"
#include "Luau/Clone.h"
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#include "Luau/Instantiation.h"
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#include "Luau/Normalize.h"
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#include "Luau/ToString.h"
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#include "Luau/TxnLog.h"
#include "Luau/TypeUtils.h"
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#include "Luau/TypeVar.h"
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#include "Luau/Unifier.h"
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namespace Luau
{
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/* Push a scope onto the end of a stack for the lifetime of the StackPusher instance.
* TypeChecker2 uses this to maintain knowledge about which scope encloses every
* given AstNode.
*/
struct StackPusher
{
std::vector<NotNull<Scope>>* stack;
NotNull<Scope> scope;
explicit StackPusher(std::vector<NotNull<Scope>>& stack, Scope* scope)
: stack(&stack)
, scope(scope)
{
stack.push_back(NotNull{scope});
}
~StackPusher()
{
if (stack)
{
LUAU_ASSERT(stack->back() == scope);
stack->pop_back();
}
}
StackPusher(const StackPusher&) = delete;
StackPusher&& operator=(const StackPusher&) = delete;
StackPusher(StackPusher&& other)
: stack(std::exchange(other.stack, nullptr))
, scope(other.scope)
{
}
};
struct TypeChecker2
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{
const SourceModule* sourceModule;
Module* module;
InternalErrorReporter ice; // FIXME accept a pointer from Frontend
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SingletonTypes& singletonTypes;
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std::vector<NotNull<Scope>> stack;
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TypeChecker2(const SourceModule* sourceModule, Module* module)
: sourceModule(sourceModule)
, module(module)
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, singletonTypes(getSingletonTypes())
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{
}
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std::optional<StackPusher> pushStack(AstNode* node)
{
if (Scope** scope = module->astScopes.find(node))
return StackPusher{stack, *scope};
else
return std::nullopt;
}
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TypePackId lookupPack(AstExpr* expr)
{
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// If a type isn't in the type graph, it probably means that a recursion limit was exceeded.
// We'll just return anyType in these cases. Typechecking against any is very fast and this
// allows us not to think about this very much in the actual typechecking logic.
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TypePackId* tp = module->astTypePacks.find(expr);
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if (tp)
return follow(*tp);
else
return singletonTypes.anyTypePack;
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}
TypeId lookupType(AstExpr* expr)
{
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// If a type isn't in the type graph, it probably means that a recursion limit was exceeded.
// We'll just return anyType in these cases. Typechecking against any is very fast and this
// allows us not to think about this very much in the actual typechecking logic.
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TypeId* ty = module->astTypes.find(expr);
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if (ty)
return follow(*ty);
TypePackId* tp = module->astTypePacks.find(expr);
if (tp)
return flattenPack(*tp);
return singletonTypes.anyType;
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}
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TypeId lookupAnnotation(AstType* annotation)
{
TypeId* ty = module->astResolvedTypes.find(annotation);
LUAU_ASSERT(ty);
return follow(*ty);
}
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TypePackId lookupPackAnnotation(AstTypePack* annotation)
{
TypePackId* tp = module->astResolvedTypePacks.find(annotation);
LUAU_ASSERT(tp);
return follow(*tp);
}
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TypePackId reconstructPack(AstArray<AstExpr*> exprs, TypeArena& arena)
{
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if (exprs.size == 0)
return arena.addTypePack(TypePack{{}, std::nullopt});
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std::vector<TypeId> head;
for (size_t i = 0; i < exprs.size - 1; ++i)
{
head.push_back(lookupType(exprs.data[i]));
}
TypePackId tail = lookupPack(exprs.data[exprs.size - 1]);
return arena.addTypePack(TypePack{head, tail});
}
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Scope* findInnermostScope(Location location)
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{
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Scope* bestScope = module->getModuleScope().get();
Location bestLocation = module->scopes[0].first;
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for (size_t i = 0; i < module->scopes.size(); ++i)
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{
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auto& [scopeBounds, scope] = module->scopes[i];
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if (scopeBounds.encloses(location))
{
if (scopeBounds.begin > bestLocation.begin || scopeBounds.end < bestLocation.end)
{
bestScope = scope.get();
bestLocation = scopeBounds;
}
}
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else if (scopeBounds.begin > location.end)
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{
// TODO: Is this sound? This relies on the fact that scopes are inserted
// into the scope list in the order that they appear in the AST.
break;
}
}
return bestScope;
}
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void visit(AstStat* stat)
{
auto pusher = pushStack(stat);
if (0)
{}
else if (auto s = stat->as<AstStatBlock>())
return visit(s);
else if (auto s = stat->as<AstStatIf>())
return visit(s);
else if (auto s = stat->as<AstStatWhile>())
return visit(s);
else if (auto s = stat->as<AstStatRepeat>())
return visit(s);
else if (auto s = stat->as<AstStatBreak>())
return visit(s);
else if (auto s = stat->as<AstStatContinue>())
return visit(s);
else if (auto s = stat->as<AstStatReturn>())
return visit(s);
else if (auto s = stat->as<AstStatExpr>())
return visit(s);
else if (auto s = stat->as<AstStatLocal>())
return visit(s);
else if (auto s = stat->as<AstStatFor>())
return visit(s);
else if (auto s = stat->as<AstStatForIn>())
return visit(s);
else if (auto s = stat->as<AstStatAssign>())
return visit(s);
else if (auto s = stat->as<AstStatCompoundAssign>())
return visit(s);
else if (auto s = stat->as<AstStatFunction>())
return visit(s);
else if (auto s = stat->as<AstStatLocalFunction>())
return visit(s);
else if (auto s = stat->as<AstStatTypeAlias>())
return visit(s);
else if (auto s = stat->as<AstStatDeclareFunction>())
return visit(s);
else if (auto s = stat->as<AstStatDeclareGlobal>())
return visit(s);
else if (auto s = stat->as<AstStatDeclareClass>())
return visit(s);
else if (auto s = stat->as<AstStatError>())
return visit(s);
else
LUAU_ASSERT(!"TypeChecker2 encountered an unknown node type");
}
void visit(AstStatBlock* block)
{
auto StackPusher = pushStack(block);
for (AstStat* statement : block->body)
visit(statement);
}
void visit(AstStatIf* ifStatement)
{
visit(ifStatement->condition);
visit(ifStatement->thenbody);
if (ifStatement->elsebody)
visit(ifStatement->elsebody);
}
void visit(AstStatWhile* whileStatement)
{
visit(whileStatement->condition);
visit(whileStatement->body);
}
void visit(AstStatRepeat* repeatStatement)
{
visit(repeatStatement->body);
visit(repeatStatement->condition);
}
void visit(AstStatBreak*)
{}
void visit(AstStatContinue*)
{}
void visit(AstStatReturn* ret)
{
Scope* scope = findInnermostScope(ret->location);
TypePackId expectedRetType = scope->returnType;
TypeArena arena;
TypePackId actualRetType = reconstructPack(ret->list, arena);
UnifierSharedState sharedState{&ice};
Unifier u{&arena, Mode::Strict, stack.back(), ret->location, Covariant, sharedState};
u.anyIsTop = true;
u.tryUnify(actualRetType, expectedRetType);
const bool ok = u.errors.empty() && u.log.empty();
if (!ok)
{
for (const TypeError& e : u.errors)
reportError(e);
}
for (AstExpr* expr : ret->list)
visit(expr);
}
void visit(AstStatExpr* expr)
{
visit(expr->expr);
}
void visit(AstStatLocal* local)
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{
for (size_t i = 0; i < local->values.size; ++i)
{
AstExpr* value = local->values.data[i];
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visit(value);
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if (i == local->values.size - 1)
{
if (i < local->values.size)
{
TypePackId valueTypes = lookupPack(value);
auto it = begin(valueTypes);
for (size_t j = i; j < local->vars.size; ++j)
{
if (it == end(valueTypes))
{
break;
}
AstLocal* var = local->vars.data[i];
if (var->annotation)
{
TypeId varType = lookupAnnotation(var->annotation);
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if (!isSubtype(*it, varType, stack.back(), ice))
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{
reportError(TypeMismatch{varType, *it}, value->location);
}
}
++it;
}
}
}
else
{
TypeId valueType = lookupType(value);
AstLocal* var = local->vars.data[i];
if (var->annotation)
{
TypeId varType = lookupAnnotation(var->annotation);
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if (!isSubtype(varType, valueType, stack.back(), ice))
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{
reportError(TypeMismatch{varType, valueType}, value->location);
}
}
}
}
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}
void visit(AstStatFor* forStatement)
{
if (forStatement->var->annotation)
visit(forStatement->var->annotation);
visit(forStatement->from);
visit(forStatement->to);
if (forStatement->step)
visit(forStatement->step);
visit(forStatement->body);
}
void visit(AstStatForIn* forInStatement)
{
for (AstLocal* local : forInStatement->vars)
{
if (local->annotation)
visit(local->annotation);
}
for (AstExpr* expr : forInStatement->values)
visit(expr);
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visit(forInStatement->body);
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}
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void visit(AstStatAssign* assign)
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{
size_t count = std::min(assign->vars.size, assign->values.size);
for (size_t i = 0; i < count; ++i)
{
AstExpr* lhs = assign->vars.data[i];
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visit(lhs);
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TypeId lhsType = lookupType(lhs);
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AstExpr* rhs = assign->values.data[i];
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visit(rhs);
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TypeId rhsType = lookupType(rhs);
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if (!isSubtype(rhsType, lhsType, stack.back(), ice))
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{
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reportError(TypeMismatch{lhsType, rhsType}, rhs->location);
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}
}
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}
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void visit(AstStatCompoundAssign* stat)
{
visit(stat->var);
visit(stat->value);
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}
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void visit(AstStatFunction* stat)
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{
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visit(stat->name);
visit(stat->func);
}
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void visit(AstStatLocalFunction* stat)
{
visit(stat->func);
}
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void visit(const AstTypeList* typeList)
{
for (AstType* ty : typeList->types)
visit(ty);
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if (typeList->tailType)
visit(typeList->tailType);
}
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void visit(AstStatTypeAlias* stat)
{
for (const AstGenericType& el : stat->generics)
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{
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if (el.defaultValue)
visit(el.defaultValue);
}
for (const AstGenericTypePack& el : stat->genericPacks)
{
if (el.defaultValue)
visit(el.defaultValue);
}
visit(stat->type);
}
void visit(AstTypeList types)
{
for (AstType* type : types.types)
visit(type);
if (types.tailType)
visit(types.tailType);
}
void visit(AstStatDeclareFunction* stat)
{
visit(stat->params);
visit(stat->retTypes);
}
void visit(AstStatDeclareGlobal* stat)
{
visit(stat->type);
}
void visit(AstStatDeclareClass* stat)
{
for (const AstDeclaredClassProp& prop : stat->props)
visit(prop.ty);
}
void visit(AstStatError* stat)
{
for (AstExpr* expr : stat->expressions)
visit(expr);
for (AstStat* s : stat->statements)
visit(s);
}
void visit(AstExpr* expr)
{
auto StackPusher = pushStack(expr);
if (0)
{}
else if (auto e = expr->as<AstExprGroup>())
return visit(e);
else if (auto e = expr->as<AstExprConstantNil>())
return visit(e);
else if (auto e = expr->as<AstExprConstantBool>())
return visit(e);
else if (auto e = expr->as<AstExprConstantNumber>())
return visit(e);
else if (auto e = expr->as<AstExprConstantString>())
return visit(e);
else if (auto e = expr->as<AstExprLocal>())
return visit(e);
else if (auto e = expr->as<AstExprGlobal>())
return visit(e);
else if (auto e = expr->as<AstExprVarargs>())
return visit(e);
else if (auto e = expr->as<AstExprCall>())
return visit(e);
else if (auto e = expr->as<AstExprIndexName>())
return visit(e);
else if (auto e = expr->as<AstExprIndexExpr>())
return visit(e);
else if (auto e = expr->as<AstExprFunction>())
return visit(e);
else if (auto e = expr->as<AstExprTable>())
return visit(e);
else if (auto e = expr->as<AstExprUnary>())
return visit(e);
else if (auto e = expr->as<AstExprBinary>())
return visit(e);
else if (auto e = expr->as<AstExprTypeAssertion>())
return visit(e);
else if (auto e = expr->as<AstExprIfElse>())
return visit(e);
else if (auto e = expr->as<AstExprError>())
return visit(e);
else
LUAU_ASSERT(!"TypeChecker2 encountered an unknown expression type");
}
void visit(AstExprGroup* expr)
{
visit(expr->expr);
}
void visit(AstExprConstantNil* expr)
{
// TODO!
}
void visit(AstExprConstantBool* expr)
{
// TODO!
}
void visit(AstExprConstantNumber* number)
{
TypeId actualType = lookupType(number);
TypeId numberType = getSingletonTypes().numberType;
if (!isSubtype(numberType, actualType, stack.back(), ice))
{
reportError(TypeMismatch{actualType, numberType}, number->location);
}
}
void visit(AstExprConstantString* string)
{
TypeId actualType = lookupType(string);
TypeId stringType = getSingletonTypes().stringType;
if (!isSubtype(stringType, actualType, stack.back(), ice))
{
reportError(TypeMismatch{actualType, stringType}, string->location);
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}
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}
void visit(AstExprLocal* expr)
{
// TODO!
}
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void visit(AstExprGlobal* expr)
{
// TODO!
}
void visit(AstExprVarargs* expr)
{
// TODO!
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}
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void visit(AstExprCall* call)
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{
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visit(call->func);
for (AstExpr* arg : call->args)
visit(arg);
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TypeArena arena;
Instantiation instantiation{TxnLog::empty(), &arena, TypeLevel{}};
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TypePackId expectedRetType = lookupPack(call);
TypeId functionType = lookupType(call->func);
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TypeId instantiatedFunctionType = instantiation.substitute(functionType).value_or(nullptr);
LUAU_ASSERT(functionType);
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TypePack args;
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for (AstExpr* arg : call->args)
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{
TypeId argTy = module->astTypes[arg];
LUAU_ASSERT(argTy);
args.head.push_back(argTy);
}
TypePackId argsTp = arena.addTypePack(args);
FunctionTypeVar ftv{argsTp, expectedRetType};
TypeId expectedType = arena.addType(ftv);
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if (!isSubtype(expectedType, instantiatedFunctionType, stack.back(), ice))
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{
unfreeze(module->interfaceTypes);
CloneState cloneState;
expectedType = clone(expectedType, module->interfaceTypes, cloneState);
freeze(module->interfaceTypes);
reportError(TypeMismatch{expectedType, functionType}, call->location);
}
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}
void visit(AstExprIndexName* indexName)
{
TypeId leftType = lookupType(indexName->expr);
TypeId resultType = lookupType(indexName);
// leftType must have a property called indexName->index
std::optional<TypeId> ty = getIndexTypeFromType(module->getModuleScope(), leftType, indexName->index.value, indexName->location, /* addErrors */ true);
if (ty)
{
if (!isSubtype(resultType, *ty, stack.back(), ice))
{
reportError(TypeMismatch{resultType, *ty}, indexName->location);
}
}
}
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void visit(AstExprIndexExpr* indexExpr)
{
// TODO!
visit(indexExpr->expr);
visit(indexExpr->index);
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}
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void visit(AstExprFunction* fn)
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{
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auto StackPusher = pushStack(fn);
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TypeId inferredFnTy = lookupType(fn);
const FunctionTypeVar* inferredFtv = get<FunctionTypeVar>(inferredFnTy);
LUAU_ASSERT(inferredFtv);
auto argIt = begin(inferredFtv->argTypes);
for (const auto& arg : fn->args)
{
if (argIt == end(inferredFtv->argTypes))
break;
if (arg->annotation)
{
TypeId inferredArgTy = *argIt;
TypeId annotatedArgTy = lookupAnnotation(arg->annotation);
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if (!isSubtype(annotatedArgTy, inferredArgTy, stack.back(), ice))
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{
reportError(TypeMismatch{annotatedArgTy, inferredArgTy}, arg->location);
}
}
++argIt;
}
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visit(fn->body);
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}
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void visit(AstExprTable* expr)
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{
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// TODO!
for (const AstExprTable::Item& item : expr->items)
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{
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if (item.key)
visit(item.key);
visit(item.value);
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}
}
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void visit(AstExprUnary* expr)
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{
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// TODO!
visit(expr->expr);
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}
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void visit(AstExprBinary* expr)
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{
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// TODO!
visit(expr->left);
visit(expr->right);
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}
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void visit(AstExprTypeAssertion* expr)
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{
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visit(expr->expr);
visit(expr->annotation);
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TypeId annotationType = lookupAnnotation(expr->annotation);
TypeId computedType = lookupType(expr->expr);
// Note: As an optimization, we try 'number <: number | string' first, as that is the more likely case.
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if (isSubtype(annotationType, computedType, stack.back(), ice))
return;
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if (isSubtype(computedType, annotationType, stack.back(), ice))
return;
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reportError(TypesAreUnrelated{computedType, annotationType}, expr->location);
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}
void visit(AstExprIfElse* expr)
{
// TODO!
visit(expr->condition);
visit(expr->trueExpr);
visit(expr->falseExpr);
}
void visit(AstExprError* expr)
{
// TODO!
for (AstExpr* e : expr->expressions)
visit(e);
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}
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/** Extract a TypeId for the first type of the provided pack.
*
* Note that this may require modifying some types. I hope this doesn't cause problems!
*/
TypeId flattenPack(TypePackId pack)
{
pack = follow(pack);
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while (true)
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{
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auto tp = get<TypePack>(pack);
if (tp && tp->head.empty() && tp->tail)
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pack = *tp->tail;
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else
break;
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}
if (auto ty = first(pack))
return *ty;
else if (auto vtp = get<VariadicTypePack>(pack))
return vtp->ty;
else if (auto ftp = get<FreeTypePack>(pack))
{
TypeId result = module->internalTypes.addType(FreeTypeVar{ftp->scope});
TypePackId freeTail = module->internalTypes.addTypePack(FreeTypePack{ftp->scope});
TypePack& resultPack = asMutable(pack)->ty.emplace<TypePack>();
resultPack.head.assign(1, result);
resultPack.tail = freeTail;
return result;
}
else if (get<Unifiable::Error>(pack))
return singletonTypes.errorRecoveryType();
else
ice.ice("flattenPack got a weird pack!");
}
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void visit(AstType* ty)
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{
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if (auto t = ty->as<AstTypeReference>())
return visit(t);
else if (auto t = ty->as<AstTypeTable>())
return visit(t);
else if (auto t = ty->as<AstTypeFunction>())
return visit(t);
else if (auto t = ty->as<AstTypeTypeof>())
return visit(t);
else if (auto t = ty->as<AstTypeUnion>())
return visit(t);
else if (auto t = ty->as<AstTypeIntersection>())
return visit(t);
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}
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void visit(AstTypeReference* ty)
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{
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for (const AstTypeOrPack& param : ty->parameters)
{
if (param.type)
visit(param.type);
else
visit(param.typePack);
}
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Scope* scope = findInnermostScope(ty->location);
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LUAU_ASSERT(scope);
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// TODO: Imported types
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std::optional<TypeFun> alias = scope->lookupType(ty->name.value);
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if (alias.has_value())
{
size_t typesRequired = alias->typeParams.size();
size_t packsRequired = alias->typePackParams.size();
bool hasDefaultTypes = std::any_of(alias->typeParams.begin(), alias->typeParams.end(), [](auto&& el) {
return el.defaultValue.has_value();
});
bool hasDefaultPacks = std::any_of(alias->typePackParams.begin(), alias->typePackParams.end(), [](auto&& el) {
return el.defaultValue.has_value();
});
if (!ty->hasParameterList)
{
if ((!alias->typeParams.empty() && !hasDefaultTypes) || (!alias->typePackParams.empty() && !hasDefaultPacks))
{
reportError(GenericError{"Type parameter list is required"}, ty->location);
}
}
size_t typesProvided = 0;
size_t extraTypes = 0;
size_t packsProvided = 0;
for (const AstTypeOrPack& p : ty->parameters)
{
if (p.type)
{
if (packsProvided != 0)
{
reportError(GenericError{"Type parameters must come before type pack parameters"}, ty->location);
}
if (typesProvided < typesRequired)
{
typesProvided += 1;
}
else
{
extraTypes += 1;
}
}
else if (p.typePack)
{
TypePackId tp = lookupPackAnnotation(p.typePack);
if (typesProvided < typesRequired && size(tp) == 1 && finite(tp) && first(tp))
{
typesProvided += 1;
}
else
{
packsProvided += 1;
}
}
}
if (extraTypes != 0 && packsProvided == 0)
{
packsProvided += 1;
}
for (size_t i = typesProvided; i < typesRequired; ++i)
{
if (alias->typeParams[i].defaultValue)
{
typesProvided += 1;
}
}
for (size_t i = packsProvided; i < packsProvided; ++i)
{
if (alias->typePackParams[i].defaultValue)
{
packsProvided += 1;
}
}
if (extraTypes == 0 && packsProvided + 1 == packsRequired)
{
packsProvided += 1;
}
if (typesProvided != typesRequired || packsProvided != packsRequired)
{
reportError(IncorrectGenericParameterCount{
/* name */ ty->name.value,
/* typeFun */ *alias,
/* actualParameters */ typesProvided,
/* actualPackParameters */ packsProvided,
},
ty->location);
}
}
else
{
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if (scope->lookupPack(ty->name.value))
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{
reportError(
SwappedGenericTypeParameter{
ty->name.value,
SwappedGenericTypeParameter::Kind::Type,
},
ty->location);
}
else
{
reportError(UnknownSymbol{ty->name.value, UnknownSymbol::Context::Type}, ty->location);
}
}
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}
void visit(AstTypeTable* table)
{
// TODO!
for (const AstTableProp& prop : table->props)
visit(prop.type);
if (table->indexer)
{
visit(table->indexer->indexType);
visit(table->indexer->resultType);
}
}
void visit(AstTypeFunction* ty)
{
// TODO!
visit(ty->argTypes);
visit(ty->returnTypes);
}
void visit(AstTypeTypeof* ty)
{
visit(ty->expr);
}
void visit(AstTypeUnion* ty)
{
// TODO!
for (AstType* type : ty->types)
visit(type);
}
void visit(AstTypeIntersection* ty)
{
// TODO!
for (AstType* type : ty->types)
visit(type);
}
void visit(AstTypePack* pack)
{
if (auto p = pack->as<AstTypePackExplicit>())
return visit(p);
else if (auto p = pack->as<AstTypePackVariadic>())
return visit(p);
else if (auto p = pack->as<AstTypePackGeneric>())
return visit(p);
}
void visit(AstTypePackExplicit* tp)
{
// TODO!
for (AstType* type : tp->typeList.types)
visit(type);
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if (tp->typeList.tailType)
visit(tp->typeList.tailType);
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}
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void visit(AstTypePackVariadic* tp)
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{
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// TODO!
visit(tp->variadicType);
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}
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void visit(AstTypePackGeneric* tp)
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{
Scope* scope = findInnermostScope(tp->location);
LUAU_ASSERT(scope);
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std::optional<TypePackId> alias = scope->lookupPack(tp->genericName.value);
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if (!alias.has_value())
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{
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if (scope->lookupType(tp->genericName.value))
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{
reportError(
SwappedGenericTypeParameter{
tp->genericName.value,
SwappedGenericTypeParameter::Kind::Pack,
},
tp->location);
}
else
{
reportError(UnknownSymbol{tp->genericName.value, UnknownSymbol::Context::Type}, tp->location);
}
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}
}
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void reportError(TypeErrorData&& data, const Location& location)
{
module->errors.emplace_back(location, sourceModule->name, std::move(data));
}
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void reportError(TypeError e)
{
module->errors.emplace_back(std::move(e));
}
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std::optional<TypeId> getIndexTypeFromType(
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const ScopePtr& scope, TypeId type, const std::string& prop, const Location& location, bool addErrors)
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{
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return Luau::getIndexTypeFromType(scope, module->errors, &module->internalTypes, type, prop, location, addErrors, ice);
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}
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};
void check(const SourceModule& sourceModule, Module* module)
{
TypeChecker2 typeChecker{&sourceModule, module};
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typeChecker.visit(sourceModule.root);
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}
} // namespace Luau