marshal.odin 16 KB

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  1. package json
  2. import "core:mem"
  3. import "core:math/bits"
  4. import "base:runtime"
  5. import "core:strconv"
  6. import "core:strings"
  7. import "core:reflect"
  8. import "core:io"
  9. import "core:slice"
  10. Marshal_Data_Error :: enum {
  11. None,
  12. Unsupported_Type,
  13. }
  14. Marshal_Error :: union #shared_nil {
  15. Marshal_Data_Error,
  16. io.Error,
  17. }
  18. // careful with MJSON maps & non quotes usage as keys with whitespace will lead to bad results
  19. Marshal_Options :: struct {
  20. // output based on spec
  21. spec: Specification,
  22. // Use line breaks & tabs/spaces
  23. pretty: bool,
  24. // Use spaces for indentation instead of tabs
  25. use_spaces: bool,
  26. // Given use_spaces true, use this many spaces per indent level. 0 means 4 spaces.
  27. spaces: int,
  28. // Output uint as hex in JSON5 & MJSON
  29. write_uint_as_hex: bool,
  30. // If spec is MJSON and this is true, then keys will be quoted.
  31. //
  32. // WARNING: If your keys contain whitespace and this is false, then the
  33. // output will be bad.
  34. mjson_keys_use_quotes: bool,
  35. // If spec is MJSON and this is true, then use '=' as delimiter between
  36. // keys and values, otherwise ':' is used.
  37. mjson_keys_use_equal_sign: bool,
  38. // When outputting a map, sort the output by key.
  39. //
  40. // NOTE: This will temp allocate and sort a list for each map.
  41. sort_maps_by_key: bool,
  42. // Output enum value's name instead of its underlying value.
  43. //
  44. // NOTE: If a name isn't found it'll use the underlying value.
  45. use_enum_names: bool,
  46. // Internal state
  47. indentation: int,
  48. mjson_skipped_first_braces_start: bool,
  49. mjson_skipped_first_braces_end: bool,
  50. }
  51. marshal :: proc(v: any, opt: Marshal_Options = {}, allocator := context.allocator) -> (data: []byte, err: Marshal_Error) {
  52. b := strings.builder_make(allocator)
  53. defer if err != nil {
  54. strings.builder_destroy(&b)
  55. }
  56. // temp guard in case we are sorting map keys, which will use temp allocations
  57. runtime.DEFAULT_TEMP_ALLOCATOR_TEMP_GUARD(ignore = allocator == context.temp_allocator)
  58. opt := opt
  59. marshal_to_builder(&b, v, &opt) or_return
  60. if len(b.buf) != 0 {
  61. data = b.buf[:]
  62. }
  63. return data, nil
  64. }
  65. marshal_to_builder :: proc(b: ^strings.Builder, v: any, opt: ^Marshal_Options) -> Marshal_Error {
  66. return marshal_to_writer(strings.to_writer(b), v, opt)
  67. }
  68. marshal_to_writer :: proc(w: io.Writer, v: any, opt: ^Marshal_Options) -> (err: Marshal_Error) {
  69. if v == nil {
  70. io.write_string(w, "null") or_return
  71. return
  72. }
  73. ti := runtime.type_info_base(type_info_of(v.id))
  74. a := any{v.data, ti.id}
  75. switch info in ti.variant {
  76. case runtime.Type_Info_Named:
  77. unreachable()
  78. case runtime.Type_Info_Integer:
  79. buf: [40]byte
  80. u: u128
  81. switch i in a {
  82. case i8: u = u128(i)
  83. case i16: u = u128(i)
  84. case i32: u = u128(i)
  85. case i64: u = u128(i)
  86. case i128: u = u128(i)
  87. case int: u = u128(i)
  88. case u8: u = u128(i)
  89. case u16: u = u128(i)
  90. case u32: u = u128(i)
  91. case u64: u = u128(i)
  92. case u128: u = u128(i)
  93. case uint: u = u128(i)
  94. case uintptr: u = u128(i)
  95. case i16le: u = u128(i)
  96. case i32le: u = u128(i)
  97. case i64le: u = u128(i)
  98. case u16le: u = u128(i)
  99. case u32le: u = u128(i)
  100. case u64le: u = u128(i)
  101. case u128le: u = u128(i)
  102. case i16be: u = u128(i)
  103. case i32be: u = u128(i)
  104. case i64be: u = u128(i)
  105. case u16be: u = u128(i)
  106. case u32be: u = u128(i)
  107. case u64be: u = u128(i)
  108. case u128be: u = u128(i)
  109. }
  110. s: string
  111. // allow uints to be printed as hex
  112. if opt.write_uint_as_hex && (opt.spec == .JSON5 || opt.spec == .MJSON) {
  113. switch i in a {
  114. case u8, u16, u32, u64, u128:
  115. s = strconv.append_bits_128(buf[:], u, 16, info.signed, 8*ti.size, "0123456789abcdef", { .Prefix })
  116. case:
  117. s = strconv.append_bits_128(buf[:], u, 10, info.signed, 8*ti.size, "0123456789", nil)
  118. }
  119. } else {
  120. s = strconv.append_bits_128(buf[:], u, 10, info.signed, 8*ti.size, "0123456789", nil)
  121. }
  122. io.write_string(w, s) or_return
  123. case runtime.Type_Info_Rune:
  124. r := a.(rune)
  125. io.write_byte(w, '"') or_return
  126. io.write_escaped_rune(w, r, '"', true) or_return
  127. io.write_byte(w, '"') or_return
  128. case runtime.Type_Info_Float:
  129. switch f in a {
  130. case f16: io.write_f16(w, f) or_return
  131. case f32: io.write_f32(w, f) or_return
  132. case f64: io.write_f64(w, f) or_return
  133. case: return .Unsupported_Type
  134. }
  135. case runtime.Type_Info_Complex:
  136. r, i: f64
  137. switch z in a {
  138. case complex32: r, i = f64(real(z)), f64(imag(z))
  139. case complex64: r, i = f64(real(z)), f64(imag(z))
  140. case complex128: r, i = f64(real(z)), f64(imag(z))
  141. case: return .Unsupported_Type
  142. }
  143. io.write_byte(w, '[') or_return
  144. io.write_f64(w, r) or_return
  145. io.write_string(w, ", ") or_return
  146. io.write_f64(w, i) or_return
  147. io.write_byte(w, ']') or_return
  148. case runtime.Type_Info_Quaternion:
  149. return .Unsupported_Type
  150. case runtime.Type_Info_String:
  151. switch s in a {
  152. case string: io.write_quoted_string(w, s, '"', nil, true) or_return
  153. case cstring: io.write_quoted_string(w, string(s), '"', nil, true) or_return
  154. }
  155. case runtime.Type_Info_Boolean:
  156. val: bool
  157. switch b in a {
  158. case bool: val = bool(b)
  159. case b8: val = bool(b)
  160. case b16: val = bool(b)
  161. case b32: val = bool(b)
  162. case b64: val = bool(b)
  163. }
  164. io.write_string(w, val ? "true" : "false") or_return
  165. case runtime.Type_Info_Any:
  166. return .Unsupported_Type
  167. case runtime.Type_Info_Type_Id:
  168. return .Unsupported_Type
  169. case runtime.Type_Info_Pointer:
  170. return .Unsupported_Type
  171. case runtime.Type_Info_Multi_Pointer:
  172. return .Unsupported_Type
  173. case runtime.Type_Info_Soa_Pointer:
  174. return .Unsupported_Type
  175. case runtime.Type_Info_Procedure:
  176. return .Unsupported_Type
  177. case runtime.Type_Info_Parameters:
  178. return .Unsupported_Type
  179. case runtime.Type_Info_Simd_Vector:
  180. return .Unsupported_Type
  181. case runtime.Type_Info_Relative_Pointer:
  182. return .Unsupported_Type
  183. case runtime.Type_Info_Relative_Multi_Pointer:
  184. return .Unsupported_Type
  185. case runtime.Type_Info_Matrix:
  186. return .Unsupported_Type
  187. case runtime.Type_Info_Bit_Field:
  188. return .Unsupported_Type
  189. case runtime.Type_Info_Array:
  190. opt_write_start(w, opt, '[') or_return
  191. for i in 0..<info.count {
  192. opt_write_iteration(w, opt, i) or_return
  193. data := uintptr(v.data) + uintptr(i*info.elem_size)
  194. marshal_to_writer(w, any{rawptr(data), info.elem.id}, opt) or_return
  195. }
  196. opt_write_end(w, opt, ']') or_return
  197. case runtime.Type_Info_Enumerated_Array:
  198. opt_write_start(w, opt, '[') or_return
  199. for i in 0..<info.count {
  200. opt_write_iteration(w, opt, i) or_return
  201. data := uintptr(v.data) + uintptr(i*info.elem_size)
  202. marshal_to_writer(w, any{rawptr(data), info.elem.id}, opt) or_return
  203. }
  204. opt_write_end(w, opt, ']') or_return
  205. case runtime.Type_Info_Dynamic_Array:
  206. opt_write_start(w, opt, '[') or_return
  207. array := cast(^mem.Raw_Dynamic_Array)v.data
  208. for i in 0..<array.len {
  209. opt_write_iteration(w, opt, i) or_return
  210. data := uintptr(array.data) + uintptr(i*info.elem_size)
  211. marshal_to_writer(w, any{rawptr(data), info.elem.id}, opt) or_return
  212. }
  213. opt_write_end(w, opt, ']') or_return
  214. case runtime.Type_Info_Slice:
  215. opt_write_start(w, opt, '[') or_return
  216. slice := cast(^mem.Raw_Slice)v.data
  217. for i in 0..<slice.len {
  218. opt_write_iteration(w, opt, i) or_return
  219. data := uintptr(slice.data) + uintptr(i*info.elem_size)
  220. marshal_to_writer(w, any{rawptr(data), info.elem.id}, opt) or_return
  221. }
  222. opt_write_end(w, opt, ']') or_return
  223. case runtime.Type_Info_Map:
  224. m := (^mem.Raw_Map)(v.data)
  225. opt_write_start(w, opt, '{') or_return
  226. if m != nil {
  227. if info.map_info == nil {
  228. return .Unsupported_Type
  229. }
  230. map_cap := uintptr(runtime.map_cap(m^))
  231. ks, vs, hs, _, _ := runtime.map_kvh_data_dynamic(m^, info.map_info)
  232. if !opt.sort_maps_by_key {
  233. i := 0
  234. for bucket_index in 0..<map_cap {
  235. runtime.map_hash_is_valid(hs[bucket_index]) or_continue
  236. opt_write_iteration(w, opt, i) or_return
  237. i += 1
  238. key := rawptr(runtime.map_cell_index_dynamic(ks, info.map_info.ks, bucket_index))
  239. value := rawptr(runtime.map_cell_index_dynamic(vs, info.map_info.vs, bucket_index))
  240. // check for string type
  241. {
  242. kv := any{key, info.key.id}
  243. kti := runtime.type_info_base(type_info_of(kv.id))
  244. ka := any{kv.data, kti.id}
  245. name: string
  246. #partial switch info in kti.variant {
  247. case runtime.Type_Info_String:
  248. switch s in ka {
  249. case string: name = s
  250. case cstring: name = string(s)
  251. }
  252. opt_write_key(w, opt, name) or_return
  253. case: return .Unsupported_Type
  254. }
  255. }
  256. marshal_to_writer(w, any{value, info.value.id}, opt) or_return
  257. }
  258. } else {
  259. Entry :: struct {
  260. key: string,
  261. value: any,
  262. }
  263. // If we are sorting the map by key, then we temp alloc an array
  264. // and sort it, then output the result.
  265. sorted := make([dynamic]Entry, 0, map_cap, context.temp_allocator)
  266. for bucket_index in 0..<map_cap {
  267. runtime.map_hash_is_valid(hs[bucket_index]) or_continue
  268. key := rawptr(runtime.map_cell_index_dynamic(ks, info.map_info.ks, bucket_index))
  269. value := rawptr(runtime.map_cell_index_dynamic(vs, info.map_info.vs, bucket_index))
  270. name: string
  271. // check for string type
  272. {
  273. kv := any{key, info.key.id}
  274. kti := runtime.type_info_base(type_info_of(kv.id))
  275. ka := any{kv.data, kti.id}
  276. #partial switch info in kti.variant {
  277. case runtime.Type_Info_String:
  278. switch s in ka {
  279. case string: name = s
  280. case cstring: name = string(s)
  281. }
  282. case: return .Unsupported_Type
  283. }
  284. }
  285. append(&sorted, Entry { key = name, value = any{value, info.value.id}})
  286. }
  287. slice.sort_by(sorted[:], proc(i, j: Entry) -> bool { return i.key < j.key })
  288. for s, i in sorted {
  289. opt_write_iteration(w, opt, i) or_return
  290. opt_write_key(w, opt, s.key) or_return
  291. marshal_to_writer(w, s.value, opt) or_return
  292. }
  293. }
  294. }
  295. opt_write_end(w, opt, '}') or_return
  296. case runtime.Type_Info_Struct:
  297. marshal_struct_fields :: proc(w: io.Writer, v: any, opt: ^Marshal_Options) -> (err: Marshal_Error) {
  298. ti := runtime.type_info_base(type_info_of(v.id))
  299. info := ti.variant.(runtime.Type_Info_Struct)
  300. for name, i in info.names {
  301. json_name := reflect.struct_tag_get(reflect.Struct_Tag(info.tags[i]), "json")
  302. opt_write_iteration(w, opt, i) or_return
  303. if json_name != "" {
  304. opt_write_key(w, opt, json_name) or_return
  305. } else {
  306. // Marshal the fields of 'using _: T' fields directly into the parent struct
  307. if info.usings[i] && name == "_" {
  308. id := info.types[i].id
  309. data := rawptr(uintptr(v.data) + info.offsets[i])
  310. marshal_struct_fields(w, any{data, id}, opt) or_return
  311. continue
  312. } else {
  313. opt_write_key(w, opt, name) or_return
  314. }
  315. }
  316. id := info.types[i].id
  317. data := rawptr(uintptr(v.data) + info.offsets[i])
  318. marshal_to_writer(w, any{data, id}, opt) or_return
  319. }
  320. return
  321. }
  322. opt_write_start(w, opt, '{') or_return
  323. marshal_struct_fields(w, v, opt) or_return
  324. opt_write_end(w, opt, '}') or_return
  325. case runtime.Type_Info_Union:
  326. if len(info.variants) == 0 || v.data == nil {
  327. io.write_string(w, "null") or_return
  328. return nil
  329. }
  330. tag_ptr := uintptr(v.data) + info.tag_offset
  331. tag_any := any{rawptr(tag_ptr), info.tag_type.id}
  332. tag: i64 = -1
  333. switch i in tag_any {
  334. case u8: tag = i64(i)
  335. case i8: tag = i64(i)
  336. case u16: tag = i64(i)
  337. case i16: tag = i64(i)
  338. case u32: tag = i64(i)
  339. case i32: tag = i64(i)
  340. case u64: tag = i64(i)
  341. case i64: tag = i64(i)
  342. case: panic("Invalid union tag type")
  343. }
  344. if v.data == nil || tag == 0 {
  345. io.write_string(w, "null") or_return
  346. } else {
  347. id := info.variants[tag-1].id
  348. return marshal_to_writer(w, any{v.data, id}, opt)
  349. }
  350. case runtime.Type_Info_Enum:
  351. if !opt.use_enum_names || len(info.names) == 0 {
  352. return marshal_to_writer(w, any{v.data, info.base.id}, opt)
  353. } else {
  354. name, found := reflect.enum_name_from_value_any(v)
  355. if found {
  356. return marshal_to_writer(w, name, opt)
  357. } else {
  358. return marshal_to_writer(w, any{v.data, info.base.id}, opt)
  359. }
  360. }
  361. case runtime.Type_Info_Bit_Set:
  362. is_bit_set_different_endian_to_platform :: proc(ti: ^runtime.Type_Info) -> bool {
  363. if ti == nil {
  364. return false
  365. }
  366. t := runtime.type_info_base(ti)
  367. #partial switch info in t.variant {
  368. case runtime.Type_Info_Integer:
  369. switch info.endianness {
  370. case .Platform: return false
  371. case .Little: return ODIN_ENDIAN != .Little
  372. case .Big: return ODIN_ENDIAN != .Big
  373. }
  374. }
  375. return false
  376. }
  377. bit_data: u64
  378. bit_size := u64(8*ti.size)
  379. do_byte_swap := is_bit_set_different_endian_to_platform(info.underlying)
  380. switch bit_size {
  381. case 0: bit_data = 0
  382. case 8:
  383. x := (^u8)(v.data)^
  384. bit_data = u64(x)
  385. case 16:
  386. x := (^u16)(v.data)^
  387. if do_byte_swap {
  388. x = bits.byte_swap(x)
  389. }
  390. bit_data = u64(x)
  391. case 32:
  392. x := (^u32)(v.data)^
  393. if do_byte_swap {
  394. x = bits.byte_swap(x)
  395. }
  396. bit_data = u64(x)
  397. case 64:
  398. x := (^u64)(v.data)^
  399. if do_byte_swap {
  400. x = bits.byte_swap(x)
  401. }
  402. bit_data = u64(x)
  403. case: panic("unknown bit_size size")
  404. }
  405. io.write_u64(w, bit_data) or_return
  406. return .Unsupported_Type
  407. }
  408. return
  409. }
  410. // write key as quoted string or with optional quotes in mjson
  411. opt_write_key :: proc(w: io.Writer, opt: ^Marshal_Options, name: string) -> (err: io.Error) {
  412. switch opt.spec {
  413. case .JSON, .JSON5:
  414. io.write_quoted_string(w, name) or_return
  415. io.write_string(w, ": " if opt.pretty else ":") or_return
  416. case .MJSON:
  417. if opt.mjson_keys_use_quotes {
  418. io.write_quoted_string(w, name) or_return
  419. } else {
  420. io.write_string(w, name) or_return
  421. }
  422. if opt.mjson_keys_use_equal_sign {
  423. io.write_string(w, " = " if opt.pretty else "=") or_return
  424. } else {
  425. io.write_string(w, ": " if opt.pretty else ":") or_return
  426. }
  427. }
  428. return
  429. }
  430. // insert start byte and increase indentation on pretty
  431. opt_write_start :: proc(w: io.Writer, opt: ^Marshal_Options, c: byte) -> (err: io.Error) {
  432. // Skip MJSON starting braces. We make sure to only do this for c == '{',
  433. // skipping a starting '[' is not allowed.
  434. if opt.spec == .MJSON && !opt.mjson_skipped_first_braces_start && opt.indentation == 0 && c == '{' {
  435. opt.mjson_skipped_first_braces_start = true
  436. return
  437. }
  438. io.write_byte(w, c) or_return
  439. opt.indentation += 1
  440. if opt.pretty {
  441. io.write_byte(w, '\n') or_return
  442. }
  443. return
  444. }
  445. // insert comma separation and write indentations
  446. opt_write_iteration :: proc(w: io.Writer, opt: ^Marshal_Options, iteration: int) -> (err: io.Error) {
  447. switch opt.spec {
  448. case .JSON, .JSON5:
  449. if iteration > 0 {
  450. io.write_byte(w, ',') or_return
  451. if opt.pretty {
  452. io.write_byte(w, '\n') or_return
  453. }
  454. }
  455. opt_write_indentation(w, opt) or_return
  456. case .MJSON:
  457. if iteration > 0 {
  458. // on pretty no commas necessary
  459. if opt.pretty {
  460. io.write_byte(w, '\n') or_return
  461. } else {
  462. // comma separation necessary for non pretty output!
  463. io.write_byte(w, ',') or_return
  464. }
  465. }
  466. opt_write_indentation(w, opt) or_return
  467. }
  468. return
  469. }
  470. // decrease indent, write spacing and insert end byte
  471. opt_write_end :: proc(w: io.Writer, opt: ^Marshal_Options, c: byte) -> (err: io.Error) {
  472. if opt.spec == .MJSON && opt.mjson_skipped_first_braces_start && !opt.mjson_skipped_first_braces_end && opt.indentation == 0 && c == '}' {
  473. opt.mjson_skipped_first_braces_end = true
  474. return
  475. }
  476. opt.indentation -= 1
  477. if opt.pretty {
  478. io.write_byte(w, '\n') or_return
  479. opt_write_indentation(w, opt) or_return
  480. }
  481. io.write_byte(w, c) or_return
  482. return
  483. }
  484. // writes current indentation level based on options
  485. opt_write_indentation :: proc(w: io.Writer, opt: ^Marshal_Options) -> (err: io.Error) {
  486. if !opt.pretty {
  487. return
  488. }
  489. if opt.use_spaces {
  490. spaces := opt.spaces == 0 ? 4 : opt.spaces
  491. for _ in 0..<opt.indentation * spaces {
  492. io.write_byte(w, ' ') or_return
  493. }
  494. } else {
  495. for _ in 0..<opt.indentation {
  496. io.write_byte(w, '\t') or_return
  497. }
  498. }
  499. return
  500. }