mirror of
https://github.com/odin-lang/Odin.git
synced 2025-12-30 01:44:36 +00:00
607 lines
14 KiB
Odin
607 lines
14 KiB
Odin
package json
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import "core:mem"
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import "core:math"
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import "core:reflect"
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import "core:strconv"
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import "core:strings"
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import "base:runtime"
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Unmarshal_Data_Error :: enum {
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Invalid_Data,
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Invalid_Parameter,
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Non_Pointer_Parameter,
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Multiple_Use_Field,
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}
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Unsupported_Type_Error :: struct {
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id: typeid,
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token: Token,
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}
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Unmarshal_Error :: union {
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Error,
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Unmarshal_Data_Error,
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Unsupported_Type_Error,
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}
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unmarshal_any :: proc(data: []byte, v: any, spec := DEFAULT_SPECIFICATION, allocator := context.allocator) -> Unmarshal_Error {
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v := v
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if v == nil || v.id == nil {
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return .Invalid_Parameter
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}
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v = reflect.any_base(v)
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ti := type_info_of(v.id)
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if !reflect.is_pointer(ti) || ti.id == rawptr {
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return .Non_Pointer_Parameter
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}
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PARSE_INTEGERS :: true
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if !is_valid(data, spec, PARSE_INTEGERS) {
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return .Invalid_Data
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}
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p := make_parser(data, spec, PARSE_INTEGERS, allocator)
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data := any{(^rawptr)(v.data)^, ti.variant.(reflect.Type_Info_Pointer).elem.id}
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if v.data == nil {
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return .Invalid_Parameter
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}
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context.allocator = p.allocator
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if p.spec == .MJSON {
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#partial switch p.curr_token.kind {
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case .Ident, .String:
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return unmarshal_object(&p, data, .EOF)
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}
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}
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return unmarshal_value(&p, data)
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}
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unmarshal :: proc(data: []byte, ptr: ^$T, spec := DEFAULT_SPECIFICATION, allocator := context.allocator) -> Unmarshal_Error {
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return unmarshal_any(data, ptr, spec, allocator)
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}
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unmarshal_string :: proc(data: string, ptr: ^$T, spec := DEFAULT_SPECIFICATION, allocator := context.allocator) -> Unmarshal_Error {
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return unmarshal_any(transmute([]byte)data, ptr, spec, allocator)
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}
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@(private)
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assign_bool :: proc(val: any, b: bool) -> bool {
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v := reflect.any_core(val)
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switch &dst in v {
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case bool: dst = bool(b)
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case b8: dst = b8 (b)
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case b16: dst = b16 (b)
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case b32: dst = b32 (b)
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case b64: dst = b64 (b)
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case: return false
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}
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return true
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}
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@(private)
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assign_int :: proc(val: any, i: $T) -> bool {
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v := reflect.any_core(val)
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switch &dst in v {
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case i8: dst = i8 (i)
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case i16: dst = i16 (i)
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case i16le: dst = i16le (i)
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case i16be: dst = i16be (i)
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case i32: dst = i32 (i)
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case i32le: dst = i32le (i)
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case i32be: dst = i32be (i)
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case i64: dst = i64 (i)
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case i64le: dst = i64le (i)
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case i64be: dst = i64be (i)
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case i128: dst = i128 (i)
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case i128le: dst = i128le (i)
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case i128be: dst = i128be (i)
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case u8: dst = u8 (i)
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case u16: dst = u16 (i)
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case u16le: dst = u16le (i)
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case u16be: dst = u16be (i)
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case u32: dst = u32 (i)
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case u32le: dst = u32le (i)
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case u32be: dst = u32be (i)
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case u64: dst = u64 (i)
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case u64le: dst = u64le (i)
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case u64be: dst = u64be (i)
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case u128: dst = u128 (i)
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case u128le: dst = u128le (i)
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case u128be: dst = u128be (i)
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case int: dst = int (i)
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case uint: dst = uint (i)
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case uintptr: dst = uintptr(i)
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case: return false
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}
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return true
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}
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@(private)
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assign_float :: proc(val: any, f: $T) -> bool {
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v := reflect.any_core(val)
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switch &dst in v {
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case f16: dst = f16 (f)
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case f16le: dst = f16le(f)
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case f16be: dst = f16be(f)
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case f32: dst = f32 (f)
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case f32le: dst = f32le(f)
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case f32be: dst = f32be(f)
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case f64: dst = f64 (f)
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case f64le: dst = f64le(f)
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case f64be: dst = f64be(f)
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case complex32: dst = complex(f16(f), 0)
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case complex64: dst = complex(f32(f), 0)
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case complex128: dst = complex(f64(f), 0)
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case quaternion64: dst = quaternion(w=f16(f), x=0, y=0, z=0)
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case quaternion128: dst = quaternion(w=f32(f), x=0, y=0, z=0)
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case quaternion256: dst = quaternion(w=f64(f), x=0, y=0, z=0)
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case: return false
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}
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return true
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}
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@(private)
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unmarshal_string_token :: proc(p: ^Parser, val: any, str: string, ti: ^reflect.Type_Info) -> bool {
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val := val
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switch &dst in val {
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case string:
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dst = str
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return true
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case cstring:
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if str == "" {
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dst = strings.clone_to_cstring("", p.allocator)
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} else {
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// NOTE: This is valid because 'clone_string' appends a NUL terminator
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dst = cstring(raw_data(str))
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}
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return true
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}
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#partial switch variant in ti.variant {
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case reflect.Type_Info_Enum:
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for name, i in variant.names {
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if name == str {
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assign_int(val, variant.values[i])
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return true
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}
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}
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// TODO(bill): should this be an error or not?
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return true
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case reflect.Type_Info_Integer:
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i := strconv.parse_i128(str) or_return
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if assign_int(val, i) {
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return true
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}
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if assign_float(val, i) {
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return true
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}
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case reflect.Type_Info_Float:
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f := strconv.parse_f64(str) or_return
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if assign_int(val, f) {
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return true
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}
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if assign_float(val, f) {
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return true
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}
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}
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return false
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}
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@(private)
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unmarshal_value :: proc(p: ^Parser, v: any) -> (err: Unmarshal_Error) {
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UNSUPPORTED_TYPE := Unsupported_Type_Error{v.id, p.curr_token}
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token := p.curr_token
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v := v
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ti := reflect.type_info_base(type_info_of(v.id))
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if u, ok := ti.variant.(reflect.Type_Info_Union); ok && token.kind != .Null {
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// NOTE: If it's a union with only one variant, then treat it as that variant
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if len(u.variants) == 1 {
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variant := u.variants[0]
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v.id = variant.id
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ti = reflect.type_info_base(variant)
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if !reflect.is_pointer_internally(variant) {
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tag := any{rawptr(uintptr(v.data) + u.tag_offset), u.tag_type.id}
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assign_int(tag, 1)
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}
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} else if v.id != Value {
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for variant, i in u.variants {
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variant_any := any{v.data, variant.id}
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variant_p := p^
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if err = unmarshal_value(&variant_p, variant_any); err == nil {
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p^ = variant_p
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raw_tag := i
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if !u.no_nil { raw_tag += 1 }
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tag := any{rawptr(uintptr(v.data) + u.tag_offset), u.tag_type.id}
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assign_int(tag, raw_tag)
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return
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}
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}
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return UNSUPPORTED_TYPE
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}
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}
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switch &dst in v {
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// Handle json.Value as an unknown type
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case Value:
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dst = parse_value(p) or_return
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return
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}
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#partial switch token.kind {
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case .Null:
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mem.zero(v.data, ti.size)
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advance_token(p)
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return
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case .False, .True:
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advance_token(p)
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if assign_bool(v, token.kind == .True) {
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return
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}
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return UNSUPPORTED_TYPE
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case .Integer:
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advance_token(p)
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i, _ := strconv.parse_i128(token.text)
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if assign_int(v, i) {
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return
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}
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if assign_float(v, i) {
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return
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}
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return UNSUPPORTED_TYPE
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case .Float:
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advance_token(p)
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f, _ := strconv.parse_f64(token.text)
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if assign_float(v, f) {
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return
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}
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if i, fract := math.modf(f); fract == 0 {
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if assign_int(v, i) {
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return
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}
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if assign_float(v, i) {
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return
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}
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}
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return UNSUPPORTED_TYPE
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case .Ident:
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advance_token(p)
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if p.spec == .MJSON {
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if unmarshal_string_token(p, any{v.data, ti.id}, token.text, ti) {
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return nil
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}
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}
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return UNSUPPORTED_TYPE
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case .String:
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advance_token(p)
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str := unquote_string(token, p.spec, p.allocator) or_return
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if unmarshal_string_token(p, any{v.data, ti.id}, str, ti) {
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return nil
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}
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delete(str, p.allocator)
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return UNSUPPORTED_TYPE
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case .Open_Brace:
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return unmarshal_object(p, v, .Close_Brace)
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case .Open_Bracket:
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return unmarshal_array(p, v)
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case:
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if p.spec != .JSON {
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#partial switch token.kind {
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case .Infinity:
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advance_token(p)
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f: f64 = 0h7ff0000000000000
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if token.text[0] == '-' {
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f = 0hfff0000000000000
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}
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if assign_float(v, f) {
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return
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}
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return UNSUPPORTED_TYPE
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case .NaN:
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advance_token(p)
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f: f64 = 0h7ff7ffffffffffff
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if token.text[0] == '-' {
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f = 0hfff7ffffffffffff
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}
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if assign_float(v, f) {
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return
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}
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return UNSUPPORTED_TYPE
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}
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}
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}
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advance_token(p)
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return UNSUPPORTED_TYPE
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}
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@(private)
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unmarshal_expect_token :: proc(p: ^Parser, kind: Token_Kind, loc := #caller_location) -> Token {
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prev := p.curr_token
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err := expect_token(p, kind)
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assert(err == nil, "unmarshal_expect_token")
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return prev
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}
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@(private)
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unmarshal_object :: proc(p: ^Parser, v: any, end_token: Token_Kind) -> (err: Unmarshal_Error) {
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UNSUPPORTED_TYPE := Unsupported_Type_Error{v.id, p.curr_token}
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if end_token == .Close_Brace {
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unmarshal_expect_token(p, .Open_Brace)
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}
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v := v
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v = reflect.any_base(v)
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ti := type_info_of(v.id)
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#partial switch t in ti.variant {
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case reflect.Type_Info_Struct:
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if t.is_raw_union {
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return UNSUPPORTED_TYPE
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}
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struct_loop: for p.curr_token.kind != end_token {
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key, _ := parse_object_key(p, p.allocator)
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defer delete(key, p.allocator)
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unmarshal_expect_token(p, .Colon)
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fields := reflect.struct_fields_zipped(ti.id)
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runtime.DEFAULT_TEMP_ALLOCATOR_TEMP_GUARD(ignore = context.temp_allocator == context.allocator)
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field_used := make([]bool, len(fields), context.temp_allocator)
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use_field_idx := -1
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for field, field_idx in fields {
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tag_value := string(reflect.struct_tag_get(field.tag, "json"))
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if key == tag_value {
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use_field_idx = field_idx
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break
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}
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}
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if use_field_idx < 0 {
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for field, field_idx in fields {
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if key == field.name {
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use_field_idx = field_idx
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break
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}
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}
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}
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if use_field_idx >= 0 {
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if field_used[use_field_idx] {
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return .Multiple_Use_Field
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}
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field_used[use_field_idx] = true
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offset := fields[use_field_idx].offset
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type := fields[use_field_idx].type
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name := fields[use_field_idx].name
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field_ptr := rawptr(uintptr(v.data) + offset)
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field := any{field_ptr, type.id}
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unmarshal_value(p, field) or_return
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if parse_comma(p) {
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break struct_loop
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}
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continue struct_loop
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} else {
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// allows skipping unused struct fields
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parse_value(p) or_return
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if parse_comma(p) {
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break struct_loop
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}
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continue struct_loop
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}
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}
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case reflect.Type_Info_Map:
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if !reflect.is_string(t.key) {
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return UNSUPPORTED_TYPE
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}
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raw_map := (^mem.Raw_Map)(v.data)
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if raw_map.allocator.procedure == nil {
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raw_map.allocator = p.allocator
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}
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elem_backing := bytes_make(t.value.size, t.value.align, p.allocator) or_return
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defer delete(elem_backing, p.allocator)
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map_backing_value := any{raw_data(elem_backing), t.value.id}
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map_loop: for p.curr_token.kind != end_token {
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key, _ := parse_object_key(p, p.allocator)
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unmarshal_expect_token(p, .Colon)
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mem.zero_slice(elem_backing)
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if err := unmarshal_value(p, map_backing_value); err != nil {
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delete(key, p.allocator)
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return err
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}
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key_ptr := rawptr(&key)
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key_cstr: cstring
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if reflect.is_cstring(t.key) {
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key_cstr = cstring(raw_data(key))
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key_ptr = &key_cstr
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}
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set_ptr := runtime.__dynamic_map_set_without_hash(raw_map, t.map_info, key_ptr, map_backing_value.data)
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if set_ptr == nil {
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delete(key, p.allocator)
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}
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if parse_comma(p) {
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break map_loop
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}
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}
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case reflect.Type_Info_Enumerated_Array:
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index_type := reflect.type_info_base(t.index)
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enum_type := index_type.variant.(reflect.Type_Info_Enum)
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enumerated_array_loop: for p.curr_token.kind != end_token {
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key, _ := parse_object_key(p, p.allocator)
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unmarshal_expect_token(p, .Colon)
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defer delete(key, p.allocator)
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index := -1
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for name, i in enum_type.names {
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if key == name {
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index = int(enum_type.values[i] - t.min_value)
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break
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}
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}
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if index < 0 || index >= t.count {
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return UNSUPPORTED_TYPE
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}
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index_ptr := rawptr(uintptr(v.data) + uintptr(index*t.elem_size))
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index_any := any{index_ptr, t.elem.id}
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unmarshal_value(p, index_any) or_return
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if parse_comma(p) {
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break enumerated_array_loop
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}
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}
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return nil
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case:
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return UNSUPPORTED_TYPE
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}
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if end_token == .Close_Brace {
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unmarshal_expect_token(p, .Close_Brace)
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}
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return
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}
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@(private)
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unmarshal_count_array :: proc(p: ^Parser) -> (length: uintptr) {
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p_backup := p^
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p.allocator = mem.nil_allocator()
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unmarshal_expect_token(p, .Open_Bracket)
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array_length_loop: for p.curr_token.kind != .Close_Bracket {
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_, _ = parse_value(p)
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length += 1
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if parse_comma(p) {
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break
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}
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}
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p^ = p_backup
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return
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}
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@(private)
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unmarshal_array :: proc(p: ^Parser, v: any) -> (err: Unmarshal_Error) {
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assign_array :: proc(p: ^Parser, base: rawptr, elem: ^reflect.Type_Info, length: uintptr) -> Unmarshal_Error {
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unmarshal_expect_token(p, .Open_Bracket)
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for idx: uintptr = 0; p.curr_token.kind != .Close_Bracket; idx += 1 {
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assert(idx < length)
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elem_ptr := rawptr(uintptr(base) + idx*uintptr(elem.size))
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elem := any{elem_ptr, elem.id}
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unmarshal_value(p, elem) or_return
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|
|
if parse_comma(p) {
|
|
break
|
|
}
|
|
}
|
|
|
|
unmarshal_expect_token(p, .Close_Bracket)
|
|
|
|
|
|
return nil
|
|
}
|
|
|
|
UNSUPPORTED_TYPE := Unsupported_Type_Error{v.id, p.curr_token}
|
|
|
|
ti := reflect.type_info_base(type_info_of(v.id))
|
|
|
|
length := unmarshal_count_array(p)
|
|
|
|
#partial switch t in ti.variant {
|
|
case reflect.Type_Info_Slice:
|
|
raw := (^mem.Raw_Slice)(v.data)
|
|
data := bytes_make(t.elem.size * int(length), t.elem.align, p.allocator) or_return
|
|
raw.data = raw_data(data)
|
|
raw.len = int(length)
|
|
|
|
return assign_array(p, raw.data, t.elem, length)
|
|
|
|
case reflect.Type_Info_Dynamic_Array:
|
|
raw := (^mem.Raw_Dynamic_Array)(v.data)
|
|
data := bytes_make(t.elem.size * int(length), t.elem.align, p.allocator) or_return
|
|
raw.data = raw_data(data)
|
|
raw.len = int(length)
|
|
raw.cap = int(length)
|
|
raw.allocator = p.allocator
|
|
|
|
return assign_array(p, raw.data, t.elem, length)
|
|
|
|
case reflect.Type_Info_Array:
|
|
// NOTE(bill): Allow lengths which are less than the dst array
|
|
if int(length) > t.count {
|
|
return UNSUPPORTED_TYPE
|
|
}
|
|
|
|
return assign_array(p, v.data, t.elem, length)
|
|
|
|
case reflect.Type_Info_Enumerated_Array:
|
|
// NOTE(bill): Allow lengths which are less than the dst array
|
|
if int(length) > t.count {
|
|
return UNSUPPORTED_TYPE
|
|
}
|
|
|
|
return assign_array(p, v.data, t.elem, length)
|
|
|
|
case reflect.Type_Info_Complex:
|
|
// NOTE(bill): Allow lengths which are less than the dst array
|
|
if int(length) > 2 {
|
|
return UNSUPPORTED_TYPE
|
|
}
|
|
|
|
switch ti.id {
|
|
case complex32: return assign_array(p, v.data, type_info_of(f16), 2)
|
|
case complex64: return assign_array(p, v.data, type_info_of(f32), 2)
|
|
case complex128: return assign_array(p, v.data, type_info_of(f64), 2)
|
|
}
|
|
|
|
return UNSUPPORTED_TYPE
|
|
|
|
}
|
|
|
|
return UNSUPPORTED_TYPE
|
|
}
|