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@@ -0,0 +1,492 @@
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+package reflect
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+
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+import rt "core:runtime"
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+import "core:strings"
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+
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+are_types_identical :: proc(a, b: ^rt.Type_Info) -> bool {
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+ if a == b do return true;
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+
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+ if (a == nil && b != nil) ||
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+ (a != nil && b == nil) {
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+ return false;
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+ }
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+
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+
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+ switch {
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+ case a.size != b.size, a.align != b.align:
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+ return false;
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+ }
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+
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+ switch x in a.variant {
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+ case rt.Type_Info_Named:
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+ y, ok := b.variant.(rt.Type_Info_Named);
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+ if !ok do return false;
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+ return x.base == y.base;
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+
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+ case rt.Type_Info_Integer:
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+ y, ok := b.variant.(rt.Type_Info_Integer);
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+ if !ok do return false;
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+ return x.signed == y.signed;
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+
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+ case rt.Type_Info_Rune:
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+ _, ok := b.variant.(rt.Type_Info_Rune);
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+ return ok;
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+
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+ case rt.Type_Info_Float:
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+ _, ok := b.variant.(rt.Type_Info_Float);
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+ return ok;
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+
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+ case rt.Type_Info_Complex:
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+ _, ok := b.variant.(rt.Type_Info_Complex);
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+ return ok;
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+
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+ case rt.Type_Info_String:
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+ _, ok := b.variant.(rt.Type_Info_String);
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+ return ok;
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+
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+ case rt.Type_Info_Boolean:
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+ _, ok := b.variant.(rt.Type_Info_Boolean);
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+ return ok;
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+
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+ case rt.Type_Info_Any:
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+ _, ok := b.variant.(rt.Type_Info_Any);
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+ return ok;
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+
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+ case rt.Type_Info_Pointer:
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+ y, ok := b.variant.(rt.Type_Info_Pointer);
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+ if !ok do return false;
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+ return are_types_identical(x.elem, y.elem);
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+
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+ case rt.Type_Info_Procedure:
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+ y, ok := b.variant.(rt.Type_Info_Procedure);
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+ if !ok do return false;
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+ switch {
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+ case x.variadic != y.variadic,
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+ x.convention != y.convention:
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+ return false;
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+ }
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+
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+ return are_types_identical(x.params, y.params) && are_types_identical(x.results, y.results);
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+
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+ case rt.Type_Info_Array:
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+ y, ok := b.variant.(rt.Type_Info_Array);
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+ if !ok do return false;
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+ if x.count != y.count do return false;
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+ return are_types_identical(x.elem, y.elem);
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+
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+ case rt.Type_Info_Dynamic_Array:
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+ y, ok := b.variant.(rt.Type_Info_Dynamic_Array);
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+ if !ok do return false;
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+ return are_types_identical(x.elem, y.elem);
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+
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+ case rt.Type_Info_Slice:
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+ y, ok := b.variant.(rt.Type_Info_Slice);
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+ if !ok do return false;
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+ return are_types_identical(x.elem, y.elem);
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+
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+ case rt.Type_Info_Tuple:
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+ y, ok := b.variant.(rt.Type_Info_Tuple);
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+ if !ok do return false;
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+ if len(x.types) != len(y.types) do return false;
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+ for _, i in x.types {
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+ xt, yt := x.types[i], y.types[i];
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+ if !are_types_identical(xt, yt) {
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+ return false;
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+ }
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+ }
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+ return true;
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+
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+ case rt.Type_Info_Struct:
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+ y, ok := b.variant.(rt.Type_Info_Struct);
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+ if !ok do return false;
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+ switch {
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+ case len(x.types) != len(y.types),
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+ x.is_packed != y.is_packed,
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+ x.is_raw_union != y.is_raw_union,
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+ x.custom_align != y.custom_align:
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+ return false;
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+ }
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+ for _, i in x.types {
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+ xn, yn := x.names[i], y.names[i];
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+ xt, yt := x.types[i], y.types[i];
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+ xl, yl := x.tags[i], y.tags[i];
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+
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+ if xn != yn do return false;
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+ if !are_types_identical(xt, yt) do return false;
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+ if xl != yl do return false;
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+ }
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+ return true;
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+
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+ case rt.Type_Info_Union:
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+ y, ok := b.variant.(rt.Type_Info_Union);
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+ if !ok do return false;
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+ if len(x.variants) != len(y.variants) do return false;
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+
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+ for _, i in x.variants {
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+ xv, yv := x.variants[i], y.variants[i];
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+ if !are_types_identical(xv, yv) do return false;
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+ }
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+ return true;
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+
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+ case rt.Type_Info_Enum:
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+ // NOTE(bill): Should be handled above
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+ return false;
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+
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+ case rt.Type_Info_Map:
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+ y, ok := b.variant.(rt.Type_Info_Map);
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+ if !ok do return false;
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+ return are_types_identical(x.key, y.key) && are_types_identical(x.value, y.value);
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+
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+ case rt.Type_Info_Bit_Field:
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+ y, ok := b.variant.(rt.Type_Info_Bit_Field);
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+ if !ok do return false;
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+ if len(x.names) != len(y.names) do return false;
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+
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+ for _, i in x.names {
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+ xb, yb := x.bits[i], y.bits[i];
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+ xo, yo := x.offsets[i], y.offsets[i];
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+ xn, yn := x.names[i], y.names[i];
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+
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+ if xb != yb do return false;
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+ if xo != yo do return false;
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+ if xn != yn do return false;
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+ }
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+ return true;
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+
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+ case rt.Type_Info_Bit_Set:
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+ y, ok := b.variant.(rt.Type_Info_Bit_Set);
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+ if !ok do return false;
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+ return x.elem == y.elem && x.lower == y.lower && x.upper == y.upper;
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+
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+ case rt.Type_Info_Opaque:
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+ y, ok := b.variant.(rt.Type_Info_Opaque);
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+ if !ok do return false;
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+ return x.elem == y.elem;
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+ }
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+
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+ return false;
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+}
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+
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+is_signed :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ switch i in rt.type_info_base(info).variant {
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+ case rt.Type_Info_Integer: return i.signed;
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+ case rt.Type_Info_Float: return true;
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+ }
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+ return false;
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+}
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+is_integer :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Integer);
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+ return ok;
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+}
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+is_rune :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Rune);
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+ return ok;
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+}
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+is_float :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Float);
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+ return ok;
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+}
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+is_complex :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Complex);
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+ return ok;
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+}
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+is_any :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Any);
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+ return ok;
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+}
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+is_string :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_String);
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+ return ok;
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+}
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+is_boolean :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Boolean);
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+ return ok;
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+}
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+is_pointer :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Pointer);
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+ return ok;
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+}
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+is_procedure :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Procedure);
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+ return ok;
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+}
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+is_array :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Array);
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+ return ok;
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+}
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+is_dynamic_array :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Dynamic_Array);
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+ return ok;
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+}
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+is_dynamic_map :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Map);
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+ return ok;
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+}
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+is_slice :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Slice);
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+ return ok;
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+}
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+is_tuple :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Tuple);
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+ return ok;
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+}
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+is_struct :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ s, ok := rt.type_info_base(info).variant.(rt.Type_Info_Struct);
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+ return ok && !s.is_raw_union;
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+}
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+is_raw_union :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ s, ok := rt.type_info_base(info).variant.(rt.Type_Info_Struct);
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+ return ok && s.is_raw_union;
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+}
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+is_union :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Union);
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+ return ok;
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+}
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+is_enum :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Enum);
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+ return ok;
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+}
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+is_opaque :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Opaque);
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+ return ok;
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+}
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+is_simd_vector :: proc(info: ^rt.Type_Info) -> bool {
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+ if info == nil do return false;
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+ _, ok := rt.type_info_base(info).variant.(rt.Type_Info_Simd_Vector);
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+ return ok;
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+}
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+
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+
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+
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+
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+
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+
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+write_typeid :: proc(buf: ^strings.Builder, id: typeid) {
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+ write_type(buf, type_info_of(id));
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+}
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+
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+write_type :: proc(buf: ^strings.Builder, ti: ^rt.Type_Info) {
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+ using strings;
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+ if ti == nil {
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+ write_string(buf, "nil");
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+ return;
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+ }
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+
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+ switch info in ti.variant {
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+ case rt.Type_Info_Named:
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+ write_string(buf, info.name);
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+ case rt.Type_Info_Integer:
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+ switch ti.id {
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+ case int: write_string(buf, "int");
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+ case uint: write_string(buf, "uint");
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+ case uintptr: write_string(buf, "uintptr");
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+ case:
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+ write_byte(buf, info.signed ? 'i' : 'u');
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+ write_i64(buf, i64(8*ti.size), 10);
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+ switch info.endianness {
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+ case rt.Type_Info_Endianness.Little:
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+ write_string(buf, "le");
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+ case rt.Type_Info_Endianness.Big:
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+ write_string(buf, "be");
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+ }
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+ }
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+ case rt.Type_Info_Rune:
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+ write_string(buf, "rune");
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+ case rt.Type_Info_Float:
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+ write_byte(buf, 'f');
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+ write_i64(buf, i64(8*ti.size), 10);
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+ case rt.Type_Info_Complex:
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+ write_string(buf, "complex");
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+ write_i64(buf, i64(8*ti.size), 10);
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+ case rt.Type_Info_String:
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+ if info.is_cstring {
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+ write_string(buf, "cstring");
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+ } else {
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+ write_string(buf, "string");
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+ }
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+ case rt.Type_Info_Boolean:
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+ switch ti.id {
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+ case bool: write_string(buf, "bool");
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+ case:
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+ write_byte(buf, 'b');
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+ write_i64(buf, i64(8*ti.size), 10);
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+ }
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+ case rt.Type_Info_Any:
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+ write_string(buf, "any");
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+
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+ case rt.Type_Info_Type_Id:
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+ write_string(buf, "typeid");
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+
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+ case rt.Type_Info_Pointer:
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+ if info.elem == nil {
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+ write_string(buf, "rawptr");
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+ } else {
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+ write_string(buf, "^");
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+ write_type(buf, info.elem);
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+ }
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+ case rt.Type_Info_Procedure:
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+ write_string(buf, "proc");
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+ if info.params == nil {
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+ write_string(buf, "()");
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+ } else {
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+ t := info.params.variant.(rt.Type_Info_Tuple);
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+ write_string(buf, "(");
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+ for t, i in t.types {
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+ if i > 0 do write_string(buf, ", ");
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+ write_type(buf, t);
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+ }
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+ write_string(buf, ")");
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+ }
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+ if info.results != nil {
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+ write_string(buf, " -> ");
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+ write_type(buf, info.results);
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+ }
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+ case rt.Type_Info_Tuple:
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+ count := len(info.names);
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+ if count != 1 do write_string(buf, "(");
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+ for name, i in info.names {
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+ if i > 0 do write_string(buf, ", ");
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+
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+ t := info.types[i];
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+
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+ if len(name) > 0 {
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+ write_string(buf, name);
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+ write_string(buf, ": ");
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+ }
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+ write_type(buf, t);
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+ }
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+ if count != 1 do write_string(buf, ")");
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+
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+ case rt.Type_Info_Array:
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+ write_string(buf, "[");
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+ write_i64(buf, i64(info.count), 10);
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+ write_string(buf, "]");
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+ write_type(buf, info.elem);
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+ case rt.Type_Info_Dynamic_Array:
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+ write_string(buf, "[dynamic]");
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+ write_type(buf, info.elem);
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+ case rt.Type_Info_Slice:
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+ write_string(buf, "[]");
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+ write_type(buf, info.elem);
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+
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+ case rt.Type_Info_Map:
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+ write_string(buf, "map[");
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+ write_type(buf, info.key);
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|
+ write_byte(buf, ']');
|
|
|
+ write_type(buf, info.value);
|
|
|
+
|
|
|
+ case rt.Type_Info_Struct:
|
|
|
+ write_string(buf, "struct ");
|
|
|
+ if info.is_packed do write_string(buf, "#packed ");
|
|
|
+ if info.is_raw_union do write_string(buf, "#raw_union ");
|
|
|
+ if info.custom_align {
|
|
|
+ write_string(buf, "#align ");
|
|
|
+ write_i64(buf, i64(ti.align), 10);
|
|
|
+ write_byte(buf, ' ');
|
|
|
+ }
|
|
|
+ write_byte(buf, '{');
|
|
|
+ for name, i in info.names {
|
|
|
+ if i > 0 do write_string(buf, ", ");
|
|
|
+ write_string(buf, name);
|
|
|
+ write_string(buf, ": ");
|
|
|
+ write_type(buf, info.types[i]);
|
|
|
+ }
|
|
|
+ write_byte(buf, '}');
|
|
|
+
|
|
|
+ case rt.Type_Info_Union:
|
|
|
+ write_string(buf, "union ");
|
|
|
+ if info.custom_align {
|
|
|
+ write_string(buf, "#align ");
|
|
|
+ write_i64(buf, i64(ti.align), 10);
|
|
|
+ write_byte(buf, ' ');
|
|
|
+ }
|
|
|
+ write_byte(buf, '{');
|
|
|
+ for variant, i in info.variants {
|
|
|
+ if i > 0 do write_string(buf, ", ");
|
|
|
+ write_type(buf, variant);
|
|
|
+ }
|
|
|
+ write_byte(buf, '}');
|
|
|
+
|
|
|
+ case rt.Type_Info_Enum:
|
|
|
+ write_string(buf, "enum ");
|
|
|
+ write_type(buf, info.base);
|
|
|
+ write_string(buf, " {");
|
|
|
+ for name, i in info.names {
|
|
|
+ if i > 0 do write_string(buf, ", ");
|
|
|
+ write_string(buf, name);
|
|
|
+ }
|
|
|
+ write_byte(buf, '}');
|
|
|
+
|
|
|
+ case rt.Type_Info_Bit_Field:
|
|
|
+ write_string(buf, "bit_field ");
|
|
|
+ if ti.align != 1 {
|
|
|
+ write_string(buf, "#align ");
|
|
|
+ write_i64(buf, i64(ti.align), 10);
|
|
|
+ write_byte(buf, ' ');
|
|
|
+ }
|
|
|
+ write_string(buf, " {");
|
|
|
+ for name, i in info.names {
|
|
|
+ if i > 0 do write_string(buf, ", ");
|
|
|
+ write_string(buf, name);
|
|
|
+ write_string(buf, ": ");
|
|
|
+ write_i64(buf, i64(info.bits[i]), 10);
|
|
|
+ }
|
|
|
+ write_byte(buf, '}');
|
|
|
+
|
|
|
+ case rt.Type_Info_Bit_Set:
|
|
|
+ write_string(buf, "bit_set[");
|
|
|
+ switch {
|
|
|
+ case is_enum(info.elem):
|
|
|
+ write_type(buf, info.elem);
|
|
|
+ case is_rune(info.elem):
|
|
|
+ write_encoded_rune(buf, rune(info.lower));
|
|
|
+ write_string(buf, "..");
|
|
|
+ write_encoded_rune(buf, rune(info.upper));
|
|
|
+ case:
|
|
|
+ write_i64(buf, info.lower, 10);
|
|
|
+ write_string(buf, "..");
|
|
|
+ write_i64(buf, info.upper, 10);
|
|
|
+ }
|
|
|
+ if info.underlying != nil {
|
|
|
+ write_string(buf, "; ");
|
|
|
+ write_type(buf, info.underlying);
|
|
|
+ }
|
|
|
+ write_byte(buf, ']');
|
|
|
+
|
|
|
+ case rt.Type_Info_Opaque:
|
|
|
+ write_string(buf, "opaque ");
|
|
|
+ write_type(buf, info.elem);
|
|
|
+
|
|
|
+ case rt.Type_Info_Simd_Vector:
|
|
|
+ if info.is_x86_mmx {
|
|
|
+ write_string(buf, "intrinsics.x86_mmx");
|
|
|
+ } else {
|
|
|
+ write_string(buf, "intrinsics.vector(");
|
|
|
+ write_i64(buf, i64(info.count));
|
|
|
+ write_string(buf, ", ");
|
|
|
+ write_type(buf, info.elem);
|
|
|
+ write_byte(buf, ')');
|
|
|
+ }
|
|
|
+ }
|
|
|
+}
|
|
|
+
|