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stage2: fix some generics issues
* std.meta: correct use of `default_value` in reification. stage1 accepted a wrong type for `null`. * Sema: after instantiating a generic function, if the return type ends up being a comptime-known type, then we return an error, undoing the generic function instantiation, and making a comptime function call instead. - We also needed to clean up the dependency graph in this case. * Sema: reified enums set tag_ty_inferred to false since an integer tag type is provided. This is a limitation of the `@Type` builtin which will be addressed with #10710. * Sema: fix resolveInferredErrorSet incorrectly calling ensureFuncBodyAnalyzed on generic functions.
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@ -569,10 +569,10 @@ test "std.meta.fieldNames" {
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}
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pub fn FieldEnum(comptime T: type) type {
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const fieldInfos = fields(T);
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var enumFields: [fieldInfos.len]std.builtin.Type.EnumField = undefined;
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const field_infos = fields(T);
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var enumFields: [field_infos.len]std.builtin.Type.EnumField = undefined;
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var decls = [_]std.builtin.Type.Declaration{};
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inline for (fieldInfos) |field, i| {
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inline for (field_infos) |field, i| {
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enumFields[i] = .{
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.name = field.name,
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.value = i,
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@ -581,7 +581,7 @@ pub fn FieldEnum(comptime T: type) type {
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return @Type(.{
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.Enum = .{
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.layout = .Auto,
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.tag_type = std.math.IntFittingRange(0, fieldInfos.len - 1),
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.tag_type = std.math.IntFittingRange(0, field_infos.len - 1),
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.fields = &enumFields,
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.decls = &decls,
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.is_exhaustive = true,
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@ -966,7 +966,7 @@ pub fn ArgsTuple(comptime Function: type) type {
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argument_field_list[i] = .{
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.name = std.fmt.bufPrint(&num_buf, "{d}", .{i}) catch unreachable,
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.field_type = T,
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.default_value = @as(?T, null),
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.default_value = null,
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.is_comptime = false,
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.alignment = if (@sizeOf(T) > 0) @alignOf(T) else 0,
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};
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@ -997,7 +997,7 @@ pub fn Tuple(comptime types: []const type) type {
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tuple_fields[i] = .{
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.name = std.fmt.bufPrint(&num_buf, "{d}", .{i}) catch unreachable,
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.field_type = T,
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.default_value = @as(?T, null),
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.default_value = null,
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.is_comptime = false,
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.alignment = if (@sizeOf(T) > 0) @alignOf(T) else 0,
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};
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@ -781,11 +781,11 @@ pub const Decl = struct {
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return &decl_plus_emit_h.emit_h;
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}
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fn removeDependant(decl: *Decl, other: *Decl) void {
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pub fn removeDependant(decl: *Decl, other: *Decl) void {
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assert(decl.dependants.swapRemove(other));
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}
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fn removeDependency(decl: *Decl, other: *Decl) void {
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pub fn removeDependency(decl: *Decl, other: *Decl) void {
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assert(decl.dependencies.swapRemove(other));
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}
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57
src/Sema.zig
57
src/Sema.zig
@ -4688,7 +4688,7 @@ fn analyzeCall(
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const gpa = sema.gpa;
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const is_comptime_call = block.is_comptime or modifier == .compile_time or
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var is_comptime_call = block.is_comptime or modifier == .compile_time or
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try sema.typeRequiresComptime(block, func_src, func_ty_info.return_type);
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var is_inline_call = is_comptime_call or modifier == .always_inline or
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func_ty_info.cc == .Inline;
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@ -4706,7 +4706,13 @@ fn analyzeCall(
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)) |some| {
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return some;
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} else |err| switch (err) {
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error.GenericPoison => is_inline_call = true,
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error.GenericPoison => {
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is_inline_call = true;
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},
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error.ComptimeReturn => {
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is_inline_call = true;
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is_comptime_call = true;
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},
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else => |e| return e,
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}
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}
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@ -5149,7 +5155,13 @@ fn instantiateGenericCall(
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// of each of its instantiations.
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assert(new_decl.dependencies.keys().len == 0);
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try mod.declareDeclDependency(new_decl, module_fn.owner_decl);
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errdefer assert(module_fn.owner_decl.dependants.orderedRemove(new_decl));
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// Resolving the new function type below will possibly declare more decl dependencies
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// and so we remove them all here in case of error.
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errdefer {
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for (new_decl.dependencies.keys()) |dep| {
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dep.removeDependant(new_decl);
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}
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}
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var new_decl_arena = std.heap.ArenaAllocator.init(sema.gpa);
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errdefer new_decl_arena.deinit();
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@ -5285,8 +5297,17 @@ fn instantiateGenericCall(
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// Populate the Decl ty/val with the function and its type.
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new_decl.ty = try child_sema.typeOf(new_func_inst).copy(new_decl_arena_allocator);
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// If the call evaluated to a generic type return errror and call inline.
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if (new_decl.ty.fnInfo().is_generic) return error.GenericPoison;
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// If the call evaluated to a return type that requires comptime, never mind
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// our generic instantiation. Instead we need to perform a comptime call.
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const new_fn_info = new_decl.ty.fnInfo();
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if (try sema.typeRequiresComptime(block, call_src, new_fn_info.return_type)) {
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return error.ComptimeReturn;
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}
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// Similarly, if the call evaluated to a generic type we need to instead
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// call it inline.
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if (new_fn_info.is_generic or new_fn_info.cc == .Inline) {
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return error.GenericPoison;
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}
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new_decl.val = try Value.Tag.function.create(new_decl_arena_allocator, new_func);
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new_decl.has_tv = true;
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@ -12978,10 +12999,14 @@ fn zirReify(sema: *Sema, block: *Block, inst: Zir.Inst.Index) CompileError!Air.I
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new_decl.owns_tv = true;
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errdefer mod.abortAnonDecl(new_decl);
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// Enum tag type
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var buffer: Value.ToTypeBuffer = undefined;
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const int_tag_ty = try tag_type_val.toType(&buffer).copy(new_decl_arena_allocator);
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enum_obj.* = .{
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.owner_decl = new_decl,
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.tag_ty = Type.@"null",
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.tag_ty_inferred = true,
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.tag_ty = int_tag_ty,
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.tag_ty_inferred = false,
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.fields = .{},
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.values = .{},
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.node_offset = src.node_offset,
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@ -12992,10 +13017,6 @@ fn zirReify(sema: *Sema, block: *Block, inst: Zir.Inst.Index) CompileError!Air.I
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},
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};
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// Enum tag type
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var buffer: Value.ToTypeBuffer = undefined;
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enum_obj.tag_ty = try tag_type_val.toType(&buffer).copy(new_decl_arena_allocator);
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// Fields
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const fields_len = try sema.usizeCast(block, src, fields_val.sliceLen(target));
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if (fields_len > 0) {
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@ -21111,8 +21132,18 @@ fn resolveInferredErrorSet(
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return sema.fail(block, src, "unable to resolve inferred error set", .{});
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}
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// To ensure that all dependencies are properly added to the set.
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try sema.ensureFuncBodyAnalyzed(ies.func);
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// In order to ensure that all dependencies are properly added to the set, we
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// need to ensure the function body is analyzed of the inferred error set.
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// However, in the case of comptime/inline function calls with inferred error sets,
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// each call gets a new InferredErrorSet object, which points to the same
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// `*Module.Fn`. Not only is the function not relevant to the inferred error set
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// in this case, it may be a generic function which would cause an assertion failure
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// if we called `ensureFuncBodyAnalyzed` on it here.
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if (ies.func.owner_decl.ty.fnInfo().return_type.errorUnionSet().castTag(.error_set_inferred).?.data == ies) {
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// In this case we are dealing with the actual InferredErrorSet object that
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// corresponds to the function, not one created to track an inline/comptime call.
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try sema.ensureFuncBodyAnalyzed(ies.func);
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}
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ies.is_resolved = true;
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@ -241,3 +241,39 @@ test "function parameter is generic" {
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var rng: u32 = 2;
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S.init(rng, S.fill);
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}
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test "generic function instantiation turns into comptime call" {
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if (builtin.zig_backend == .stage2_x86_64) return error.SkipZigTest; // TODO
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if (builtin.zig_backend == .stage2_aarch64) return error.SkipZigTest; // TODO
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if (builtin.zig_backend == .stage2_arm) return error.SkipZigTest; // TODO
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const S = struct {
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fn doTheTest() !void {
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const E1 = enum { A };
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const e1f = fieldInfo(E1, .A);
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try expect(std.mem.eql(u8, e1f.name, "A"));
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}
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pub fn fieldInfo(comptime T: type, comptime field: FieldEnum(T)) switch (@typeInfo(T)) {
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.Enum => std.builtin.Type.EnumField,
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else => void,
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} {
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return @typeInfo(T).Enum.fields[@enumToInt(field)];
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}
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pub fn FieldEnum(comptime T: type) type {
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_ = T;
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var enumFields: [1]std.builtin.Type.EnumField = .{.{ .name = "A", .value = 0 }};
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return @Type(.{
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.Enum = .{
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.layout = .Auto,
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.tag_type = u0,
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.fields = &enumFields,
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.decls = &.{},
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.is_exhaustive = true,
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},
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});
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}
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};
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try S.doTheTest();
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}
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