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https://github.com/ziglang/zig.git
synced 2025-12-06 06:13:07 +00:00
implicit void statements and all tests pass with type checking
This commit is contained in:
parent
c6a9ab107b
commit
1ed926c321
@ -104,11 +104,7 @@ Type : token(Symbol) | PointerType | token(Unreachable)
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PointerType : token(Star) token(Const) Type | token(Star) token(Mut) Type
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Block : token(LBrace) many(Statement) token(RBrace)
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Statement : ExpressionStatement
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ExpressionStatement : Expression token(Semicolon)
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Block : token(LBrace) list(option(Expression), token(Semicolon)) token(RBrace)
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Expression : BoolOrExpression | ReturnExpression
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@ -270,6 +270,7 @@ static void preview_function_declarations(CodeGen *g, ImportTableEntry *import,
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case NodeTypeNumberLiteral:
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case NodeTypeStringLiteral:
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case NodeTypeUnreachable:
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case NodeTypeVoid:
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case NodeTypeSymbol:
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case NodeTypeCastExpr:
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case NodeTypePrefixOpExpr:
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@ -311,8 +312,12 @@ static TypeTableEntry * analyze_expression(CodeGen *g, ImportTableEntry *import,
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for (int i = 0; i < node->data.block.statements.length; i += 1) {
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AstNode *child = node->data.block.statements.at(i);
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if (return_type == g->builtin_types.entry_unreachable) {
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add_node_error(g, child,
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buf_sprintf("unreachable code"));
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if (child->type == NodeTypeVoid) {
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// {unreachable;void;void} is allowed.
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// ignore void statements once we enter unreachable land.
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continue;
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}
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add_node_error(g, child, buf_sprintf("unreachable code"));
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break;
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}
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return_type = analyze_expression(g, import, context, nullptr, child);
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@ -415,6 +420,10 @@ static TypeTableEntry * analyze_expression(CodeGen *g, ImportTableEntry *import,
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return_type = g->builtin_types.entry_unreachable;
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break;
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case NodeTypeVoid:
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return_type = g->builtin_types.entry_void;
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break;
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case NodeTypeSymbol:
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// look up symbol in symbol table
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zig_panic("TODO");
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@ -439,59 +448,6 @@ static TypeTableEntry * analyze_expression(CodeGen *g, ImportTableEntry *import,
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return return_type;
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}
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static void check_fn_def_control_flow(CodeGen *g, AstNode *node) {
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// Follow the execution flow and make sure the code returns appropriately.
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// * A `return` statement in an unreachable type function should be an error.
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// * Control flow should not be able to reach the end of an unreachable type function.
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// * Functions that have a type other than void should not return without a value.
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// * void functions without explicit return statements at the end need the
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// add_implicit_return flag set on the codegen node.
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assert(node->type == NodeTypeFnDef);
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AstNode *proto_node = node->data.fn_def.fn_proto;
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assert(proto_node->type == NodeTypeFnProto);
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AstNode *return_type_node = proto_node->data.fn_proto.return_type;
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assert(return_type_node->type == NodeTypeType);
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node->codegen_node = allocate<CodeGenNode>(1);
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FnDefNode *codegen_fn_def = &node->codegen_node->data.fn_def_node;
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assert(return_type_node->codegen_node);
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TypeTableEntry *type_entry = return_type_node->codegen_node->data.type_node.entry;
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assert(type_entry);
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AstNode *body_node = node->data.fn_def.body;
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assert(body_node->type == NodeTypeBlock);
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// TODO once we understand types, do this pass after type checking, and
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// if an expression has an unreachable value then stop looking at statements after
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// it. then we can remove the check to `unreachable` in the end of this function.
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bool prev_statement_return = false;
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for (int i = 0; i < body_node->data.block.statements.length; i += 1) {
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AstNode *statement_node = body_node->data.block.statements.at(i);
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if (statement_node->type == NodeTypeReturnExpr) {
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if (type_entry == g->builtin_types.entry_unreachable) {
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add_node_error(g, statement_node,
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buf_sprintf("return statement in function with unreachable return type"));
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return;
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} else {
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prev_statement_return = true;
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}
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} else if (prev_statement_return) {
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add_node_error(g, statement_node,
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buf_sprintf("unreachable code"));
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}
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}
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if (!prev_statement_return) {
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if (type_entry == g->builtin_types.entry_void) {
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codegen_fn_def->add_implicit_return = true;
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} else if (type_entry != g->builtin_types.entry_unreachable) {
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add_node_error(g, node,
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buf_sprintf("control reaches end of non-void function"));
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}
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}
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}
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static void analyze_top_level_declaration(CodeGen *g, ImportTableEntry *import, AstNode *node) {
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switch (node->type) {
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case NodeTypeFnDef:
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@ -512,14 +468,15 @@ static void analyze_top_level_declaration(CodeGen *g, ImportTableEntry *import,
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// TODO: define local variables for parameters
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}
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check_fn_def_control_flow(g, node);
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BlockContext context;
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context.node = node;
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context.root = &context;
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context.parent = nullptr;
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TypeTableEntry *expected_type = fn_proto->return_type->codegen_node->data.type_node.entry;
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analyze_expression(g, import, &context, expected_type, node->data.fn_def.body);
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TypeTableEntry *block_return_type = analyze_expression(g, import, &context, expected_type, node->data.fn_def.body);
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node->codegen_node = allocate<CodeGenNode>(1);
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node->codegen_node->data.fn_def_node.implicit_return_type = block_return_type;
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}
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break;
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@ -548,6 +505,7 @@ static void analyze_top_level_declaration(CodeGen *g, ImportTableEntry *import,
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case NodeTypeNumberLiteral:
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case NodeTypeStringLiteral:
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case NodeTypeUnreachable:
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case NodeTypeVoid:
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case NodeTypeSymbol:
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case NodeTypeCastExpr:
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case NodeTypePrefixOpExpr:
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@ -401,6 +401,8 @@ static LLVMValueRef gen_expr(CodeGen *g, AstNode *node) {
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case NodeTypeUnreachable:
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add_debug_source_node(g, node);
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return LLVMBuildUnreachable(g->builder);
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case NodeTypeVoid:
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return nullptr;
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case NodeTypeNumberLiteral:
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{
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Buf *number_str = &node->data.number;
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@ -441,7 +443,7 @@ static LLVMValueRef gen_expr(CodeGen *g, AstNode *node) {
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zig_unreachable();
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}
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static void gen_block(CodeGen *g, ImportTableEntry *import, AstNode *block_node, bool add_implicit_return) {
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static void gen_block(CodeGen *g, ImportTableEntry *import, AstNode *block_node, TypeTableEntry *implicit_return_type) {
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assert(block_node->type == NodeTypeBlock);
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LLVMZigDILexicalBlock *di_block = LLVMZigCreateLexicalBlock(g->dbuilder, g->block_scopes.last(),
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@ -450,13 +452,16 @@ static void gen_block(CodeGen *g, ImportTableEntry *import, AstNode *block_node,
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add_debug_source_node(g, block_node);
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LLVMValueRef return_value;
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for (int i = 0; i < block_node->data.block.statements.length; i += 1) {
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AstNode *statement_node = block_node->data.block.statements.at(i);
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gen_expr(g, statement_node);
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return_value = gen_expr(g, statement_node);
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}
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if (add_implicit_return) {
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if (implicit_return_type == g->builtin_types.entry_void) {
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LLVMBuildRetVoid(g->builder);
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} else if (implicit_return_type != g->builtin_types.entry_unreachable) {
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LLVMBuildRet(g->builder, return_value);
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}
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g->block_scopes.pop();
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@ -552,8 +557,8 @@ static void do_code_gen(CodeGen *g) {
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codegen_fn_def->params = allocate<LLVMValueRef>(LLVMCountParams(fn));
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LLVMGetParams(fn, codegen_fn_def->params);
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bool add_implicit_return = codegen_fn_def->add_implicit_return;
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gen_block(g, import, fn_def_node->data.fn_def.body, add_implicit_return);
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TypeTableEntry *implicit_return_type = codegen_fn_def->implicit_return_type;
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gen_block(g, import, fn_def_node->data.fn_def.body, implicit_return_type);
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g->block_scopes.pop();
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}
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@ -89,6 +89,8 @@ const char *node_type_str(NodeType node_type) {
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return "PrefixOpExpr";
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case NodeTypeUse:
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return "Use";
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case NodeTypeVoid:
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return "Void";
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}
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zig_unreachable();
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}
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@ -233,6 +235,9 @@ void ast_print(AstNode *node, int indent) {
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case NodeTypeUse:
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fprintf(stderr, "%s '%s'\n", node_type_str(node->type), buf_ptr(&node->data.use.path));
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break;
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case NodeTypeVoid:
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fprintf(stderr, "Void\n");
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break;
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}
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}
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@ -416,6 +421,9 @@ static AstNode *ast_parse_type(ParseContext *pc, int token_index, int *new_token
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if (token->id == TokenIdKeywordUnreachable) {
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node->data.type.type = AstNodeTypeTypePrimitive;
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buf_init_from_str(&node->data.type.primitive_name, "unreachable");
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} else if (token->id == TokenIdKeywordVoid) {
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node->data.type.type = AstNodeTypeTypePrimitive;
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buf_init_from_str(&node->data.type.primitive_name, "void");
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} else if (token->id == TokenIdSymbol) {
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node->data.type.type = AstNodeTypeTypePrimitive;
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ast_buf_from_token(pc, token, &node->data.type.primitive_name);
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@ -569,6 +577,10 @@ static AstNode *ast_parse_primary_expr(ParseContext *pc, int *token_index, bool
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AstNode *node = ast_create_node(pc, NodeTypeUnreachable, token);
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*token_index += 1;
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return node;
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} else if (token->id == TokenIdKeywordVoid) {
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AstNode *node = ast_create_node(pc, NodeTypeVoid, token);
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*token_index += 1;
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return node;
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} else if (token->id == TokenIdSymbol) {
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AstNode *node = ast_create_node(pc, NodeTypeSymbol, token);
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ast_buf_from_token(pc, token, &node->data.symbol);
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@ -1024,50 +1036,42 @@ static AstNode *ast_parse_expression(ParseContext *pc, int *token_index, bool ma
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}
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/*
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ExpressionStatement : Expression token(Semicolon)
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*/
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static AstNode *ast_parse_expression_statement(ParseContext *pc, int *token_index) {
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AstNode *expr_node = ast_parse_expression(pc, token_index, true);
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Token *semicolon = &pc->tokens->at(*token_index);
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*token_index += 1;
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ast_expect_token(pc, semicolon, TokenIdSemicolon);
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return expr_node;
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}
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/*
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Statement : ExpressionStatement
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*/
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static AstNode *ast_parse_statement(ParseContext *pc, int *token_index) {
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return ast_parse_expression_statement(pc, token_index);
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}
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/*
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Block : token(LBrace) many(Statement) token(RBrace);
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Block : token(LBrace) list(option(Expression), token(Semicolon)) token(RBrace)
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*/
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static AstNode *ast_parse_block(ParseContext *pc, int *token_index, bool mandatory) {
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Token *l_brace = &pc->tokens->at(*token_index);
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Token *last_token = &pc->tokens->at(*token_index);
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if (l_brace->id != TokenIdLBrace) {
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if (last_token->id != TokenIdLBrace) {
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if (mandatory) {
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ast_invalid_token_error(pc, l_brace);
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ast_invalid_token_error(pc, last_token);
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} else {
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return nullptr;
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}
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}
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*token_index += 1;
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AstNode *node = ast_create_node(pc, NodeTypeBlock, l_brace);
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AstNode *node = ast_create_node(pc, NodeTypeBlock, last_token);
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// {} -> {void}
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// {;} -> {void;void}
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// {2} -> {2}
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// {2;} -> {2;void}
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// {;2} -> {void;2}
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for (;;) {
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Token *token = &pc->tokens->at(*token_index);
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if (token->id == TokenIdRBrace) {
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AstNode *expression_node = ast_parse_expression(pc, token_index, false);
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if (!expression_node) {
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expression_node = ast_create_node(pc, NodeTypeVoid, last_token);
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}
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node->data.block.statements.append(expression_node);
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last_token = &pc->tokens->at(*token_index);
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if (last_token->id == TokenIdRBrace) {
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*token_index += 1;
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return node;
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} else if (last_token->id == TokenIdSemicolon) {
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*token_index += 1;
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} else {
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AstNode *statement_node = ast_parse_statement(pc, token_index);
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node->data.block.statements.append(statement_node);
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ast_invalid_token_error(pc, last_token);
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}
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}
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zig_unreachable();
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@ -38,6 +38,7 @@ enum NodeType {
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NodeTypePrefixOpExpr,
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NodeTypeFnCallExpr,
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NodeTypeUse,
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NodeTypeVoid,
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};
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struct AstNodeRoot {
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@ -106,7 +106,7 @@ struct TypeNode {
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};
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struct FnDefNode {
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bool add_implicit_return;
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TypeTableEntry *implicit_return_type;
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bool skip;
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LLVMValueRef *params;
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};
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@ -181,6 +181,8 @@ static void end_token(Tokenize *t) {
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t->cur_tok->id = TokenIdKeywordAs;
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} else if (mem_eql_str(token_mem, token_len, "use")) {
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t->cur_tok->id = TokenIdKeywordUse;
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} else if (mem_eql_str(token_mem, token_len, "void")) {
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t->cur_tok->id = TokenIdKeywordVoid;
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}
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t->cur_tok = nullptr;
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@ -574,6 +576,7 @@ static const char * token_name(Token *token) {
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case TokenIdKeywordExport: return "Export";
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case TokenIdKeywordAs: return "As";
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case TokenIdKeywordUse: return "Use";
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case TokenIdKeywordVoid: return "Void";
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case TokenIdLParen: return "LParen";
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case TokenIdRParen: return "RParen";
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case TokenIdComma: return "Comma";
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@ -23,6 +23,7 @@ enum TokenId {
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TokenIdKeywordExport,
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TokenIdKeywordAs,
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TokenIdKeywordUse,
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TokenIdKeywordVoid,
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TokenIdLParen,
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TokenIdRParen,
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TokenIdComma,
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@ -209,11 +209,11 @@ fn a() {}
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add_compile_fail_case("unreachable with return", R"SOURCE(
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fn a() -> unreachable {return;}
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)SOURCE", 1, ".tmp_source.zig:2:24: error: return statement in function with unreachable return type");
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)SOURCE", 1, ".tmp_source.zig:2:24: error: type mismatch. expected unreachable. got void");
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add_compile_fail_case("control reaches end of non-void function", R"SOURCE(
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fn a() -> i32 {}
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)SOURCE", 1, ".tmp_source.zig:2:1: error: control reaches end of non-void function");
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)SOURCE", 1, ".tmp_source.zig:2:15: error: type mismatch. expected i32. got void");
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add_compile_fail_case("undefined function call", R"SOURCE(
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fn a() {
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