fmt.odin 58 KB

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  1. package fmt
  2. import "core:math/bits"
  3. import "core:mem"
  4. import "core:io"
  5. import "core:reflect"
  6. import "core:runtime"
  7. import "core:strconv"
  8. import "core:strings"
  9. import "core:time"
  10. import "core:unicode/utf8"
  11. import "core:intrinsics"
  12. // Internal data structure that stores the required information for formatted printing
  13. Info :: struct {
  14. minus: bool,
  15. plus: bool,
  16. space: bool,
  17. zero: bool,
  18. hash: bool,
  19. width_set: bool,
  20. prec_set: bool,
  21. width: int,
  22. prec: int,
  23. indent: int,
  24. reordered: bool,
  25. good_arg_index: bool,
  26. ignore_user_formatters: bool,
  27. in_bad: bool,
  28. writer: io.Writer,
  29. arg: any, // Temporary
  30. indirection_level: int,
  31. record_level: int,
  32. optional_len: Maybe(int),
  33. use_nul_termination: bool,
  34. n: int, // bytes written
  35. }
  36. // Custom formatter signature. It returns true if the formatting was successful and false when it could not be done
  37. User_Formatter :: #type proc(fi: ^Info, arg: any, verb: rune) -> bool
  38. Register_User_Formatter_Error :: enum {
  39. None,
  40. No_User_Formatter,
  41. Formatter_Previously_Found,
  42. }
  43. // NOTE(bill): This is a pointer to prevent accidental additions
  44. // it is prefixed with `_` rather than marked with a private attribute so that users can access it if necessary
  45. _user_formatters: ^map[typeid]User_Formatter
  46. // set_user_formatters assigns m to a global value allowing the user have custom print formatting for specific
  47. // types
  48. set_user_formatters :: proc(m: ^map[typeid]User_Formatter) {
  49. _user_formatters = m
  50. }
  51. // register_user_formatter assigns a formatter to a specific typeid. set_user_formatters must be called
  52. // before any use of this procedure.
  53. register_user_formatter :: proc(id: typeid, formatter: User_Formatter) -> Register_User_Formatter_Error {
  54. if _user_formatters == nil {
  55. return .No_User_Formatter
  56. }
  57. if prev, found := _user_formatters[id]; found && prev != nil {
  58. return .Formatter_Previously_Found
  59. }
  60. _user_formatters[id] = formatter
  61. return .None
  62. }
  63. // aprint procedure return a string that was allocated with the current context
  64. // They must be freed accordingly
  65. aprint :: proc(args: ..any, sep := " ") -> string {
  66. str: strings.Builder
  67. strings.builder_init(&str)
  68. sbprint(buf=&str, args=args, sep=sep)
  69. return strings.to_string(str)
  70. }
  71. // aprintln procedure return a string that was allocated with the current context
  72. // They must be freed accordingly
  73. aprintln :: proc(args: ..any, sep := " ") -> string {
  74. str: strings.Builder
  75. strings.builder_init(&str)
  76. sbprintln(buf=&str, args=args, sep=sep)
  77. return strings.to_string(str)
  78. }
  79. // aprintf procedure return a string that was allocated with the current context
  80. // They must be freed accordingly
  81. aprintf :: proc(fmt: string, args: ..any) -> string {
  82. str: strings.Builder
  83. strings.builder_init(&str)
  84. sbprintf(&str, fmt, ..args)
  85. return strings.to_string(str)
  86. }
  87. // tprint procedure return a string that was allocated with the current context's temporary allocator
  88. tprint :: proc(args: ..any, sep := " ") -> string {
  89. str: strings.Builder
  90. strings.builder_init(&str, context.temp_allocator)
  91. sbprint(buf=&str, args=args, sep=sep)
  92. return strings.to_string(str)
  93. }
  94. // tprintln procedure return a string that was allocated with the current context's temporary allocator
  95. tprintln :: proc(args: ..any, sep := " ") -> string {
  96. str: strings.Builder
  97. strings.builder_init(&str, context.temp_allocator)
  98. sbprintln(buf=&str, args=args, sep=sep)
  99. return strings.to_string(str)
  100. }
  101. // tprintf procedure return a string that was allocated with the current context's temporary allocator
  102. tprintf :: proc(fmt: string, args: ..any) -> string {
  103. str: strings.Builder
  104. strings.builder_init(&str, context.temp_allocator)
  105. sbprintf(&str, fmt, ..args)
  106. return strings.to_string(str)
  107. }
  108. // bprint procedures return a string using a buffer from an array
  109. bprint :: proc(buf: []byte, args: ..any, sep := " ") -> string {
  110. sb := strings.builder_from_bytes(buf[0:len(buf)])
  111. return sbprint(buf=&sb, args=args, sep=sep)
  112. }
  113. // bprintln procedures return a string using a buffer from an array
  114. bprintln :: proc(buf: []byte, args: ..any, sep := " ") -> string {
  115. sb := strings.builder_from_bytes(buf[0:len(buf)])
  116. return sbprintln(buf=&sb, args=args, sep=sep)
  117. }
  118. // bprintf procedures return a string using a buffer from an array
  119. bprintf :: proc(buf: []byte, fmt: string, args: ..any) -> string {
  120. sb := strings.builder_from_bytes(buf[0:len(buf)])
  121. return sbprintf(&sb, fmt, ..args)
  122. }
  123. // formatted assert
  124. assertf :: proc(condition: bool, fmt: string, args: ..any, loc := #caller_location) -> bool {
  125. if !condition {
  126. p := context.assertion_failure_proc
  127. if p == nil {
  128. p = runtime.default_assertion_failure_proc
  129. }
  130. message := tprintf(fmt, ..args)
  131. p("Runtime assertion", message, loc)
  132. }
  133. return condition
  134. }
  135. // formatted panic
  136. panicf :: proc(fmt: string, args: ..any, loc := #caller_location) -> ! {
  137. p := context.assertion_failure_proc
  138. if p == nil {
  139. p = runtime.default_assertion_failure_proc
  140. }
  141. message := tprintf(fmt, ..args)
  142. p("Panic", message, loc)
  143. }
  144. // formatted printing for cstrings
  145. caprintf :: proc(format: string, args: ..any) -> cstring {
  146. str: strings.Builder
  147. strings.builder_init(&str)
  148. sbprintf(&str, format, ..args)
  149. strings.write_byte(&str, 0)
  150. s := strings.to_string(str)
  151. return cstring(raw_data(s))
  152. }
  153. // c string with temp allocator
  154. ctprintf :: proc(format: string, args: ..any) -> cstring {
  155. str: strings.Builder
  156. strings.builder_init(&str, context.temp_allocator)
  157. sbprintf(&str, format, ..args)
  158. strings.write_byte(&str, 0)
  159. s := strings.to_string(str)
  160. return cstring(raw_data(s))
  161. }
  162. // sbprint formats using the default print settings and writes to buf
  163. sbprint :: proc(buf: ^strings.Builder, args: ..any, sep := " ") -> string {
  164. wprint(w=strings.to_writer(buf), args=args, sep=sep)
  165. return strings.to_string(buf^)
  166. }
  167. // sbprintln formats using the default print settings and writes to buf
  168. sbprintln :: proc(buf: ^strings.Builder, args: ..any, sep := " ") -> string {
  169. wprintln(w=strings.to_writer(buf), args=args, sep=sep)
  170. return strings.to_string(buf^)
  171. }
  172. // sbprintf formats according to the specififed format string and writes to buf
  173. sbprintf :: proc(buf: ^strings.Builder, fmt: string, args: ..any) -> string {
  174. wprintf(w=strings.to_writer(buf), fmt=fmt, args=args)
  175. return strings.to_string(buf^)
  176. }
  177. // wprint formats using the default print settings and writes to w
  178. wprint :: proc(w: io.Writer, args: ..any, sep := " ") -> int {
  179. fi: Info
  180. fi.writer = w
  181. // NOTE(bill): Old approach
  182. // prev_string := false;
  183. // for arg, i in args {
  184. // is_string := arg != nil && reflect.is_string(type_info_of(arg.id));
  185. // if i > 0 && !is_string && !prev_string {
  186. // io.write_byte(writer, ' ');
  187. // }
  188. // fmt_value(&fi, args[i], 'v');
  189. // prev_string = is_string;
  190. // }
  191. // NOTE(bill, 2020-06-19): I have found that the previous approach was not what people were expecting
  192. // and were expecting `*print` to be the same `*println` except for the added newline
  193. // so I am going to keep the same behaviour as `*println` for `*print`
  194. for _, i in args {
  195. if i > 0 {
  196. io.write_string(fi.writer, sep, &fi.n)
  197. }
  198. fmt_value(&fi, args[i], 'v')
  199. }
  200. io.flush(auto_cast w)
  201. return fi.n
  202. }
  203. // wprintln formats using the default print settings and writes to w
  204. wprintln :: proc(w: io.Writer, args: ..any, sep := " ") -> int {
  205. fi: Info
  206. fi.writer = w
  207. for _, i in args {
  208. if i > 0 {
  209. io.write_string(fi.writer, sep, &fi.n)
  210. }
  211. fmt_value(&fi, args[i], 'v')
  212. }
  213. io.write_byte(fi.writer, '\n', &fi.n)
  214. io.flush(auto_cast w)
  215. return fi.n
  216. }
  217. // wprintf formats according to the specififed format string and writes to w
  218. wprintf :: proc(w: io.Writer, fmt: string, args: ..any) -> int {
  219. fi: Info
  220. arg_index: int = 0
  221. end := len(fmt)
  222. was_prev_index := false
  223. loop: for i := 0; i < end; /**/ {
  224. fi = Info{writer = w, good_arg_index = true, reordered = fi.reordered, n = fi.n}
  225. prev_i := i
  226. for i < end && !(fmt[i] == '%' || fmt[i] == '{' || fmt[i] == '}') {
  227. i += 1
  228. }
  229. if i > prev_i {
  230. io.write_string(fi.writer, fmt[prev_i:i], &fi.n)
  231. }
  232. if i >= end {
  233. break loop
  234. }
  235. char := fmt[i]
  236. // Process a "char"
  237. i += 1
  238. if char == '}' {
  239. if i < end && fmt[i] == char {
  240. // Skip extra one
  241. i += 1
  242. }
  243. io.write_byte(fi.writer, char, &fi.n)
  244. continue loop
  245. } else if char == '{' {
  246. if i < end && fmt[i] == char {
  247. // Skip extra one
  248. i += 1
  249. io.write_byte(fi.writer, char, &fi.n)
  250. continue loop
  251. }
  252. }
  253. if char == '%' {
  254. prefix_loop: for ; i < end; i += 1 {
  255. switch fmt[i] {
  256. case '+':
  257. fi.plus = true
  258. case '-':
  259. fi.minus = true
  260. fi.zero = false
  261. case ' ':
  262. fi.space = true
  263. case '#':
  264. fi.hash = true
  265. case '0':
  266. fi.zero = !fi.minus
  267. case:
  268. break prefix_loop
  269. }
  270. }
  271. arg_index, i, was_prev_index = _arg_number(&fi, arg_index, fmt, i, len(args))
  272. // Width
  273. if i < end && fmt[i] == '*' {
  274. i += 1
  275. fi.width, arg_index, fi.width_set = int_from_arg(args, arg_index)
  276. if !fi.width_set {
  277. io.write_string(w, "%!(BAD WIDTH)", &fi.n)
  278. }
  279. if fi.width < 0 {
  280. fi.width = -fi.width
  281. fi.minus = true
  282. fi.zero = false
  283. }
  284. was_prev_index = false
  285. } else {
  286. fi.width, i, fi.width_set = _parse_int(fmt, i)
  287. if was_prev_index && fi.width_set { // %[6]2d
  288. fi.good_arg_index = false
  289. }
  290. }
  291. // Precision
  292. if i < end && fmt[i] == '.' {
  293. i += 1
  294. if was_prev_index { // %[6].2d
  295. fi.good_arg_index = false
  296. }
  297. if i < end && fmt[i] == '*' {
  298. arg_index, i, was_prev_index = _arg_number(&fi, arg_index, fmt, i, len(args))
  299. i += 1
  300. fi.prec, arg_index, fi.prec_set = int_from_arg(args, arg_index)
  301. if fi.prec < 0 {
  302. fi.prec = 0
  303. fi.prec_set = false
  304. }
  305. if !fi.prec_set {
  306. io.write_string(fi.writer, "%!(BAD PRECISION)", &fi.n)
  307. }
  308. was_prev_index = false
  309. } else {
  310. fi.prec, i, fi.prec_set = _parse_int(fmt, i)
  311. }
  312. }
  313. if !was_prev_index {
  314. arg_index, i, was_prev_index = _arg_number(&fi, arg_index, fmt, i, len(args))
  315. }
  316. if i >= end {
  317. io.write_string(fi.writer, "%!(NO VERB)", &fi.n)
  318. break loop
  319. }
  320. verb, w := utf8.decode_rune_in_string(fmt[i:])
  321. i += w
  322. switch {
  323. case verb == '%':
  324. io.write_byte(fi.writer, '%', &fi.n)
  325. case !fi.good_arg_index:
  326. io.write_string(fi.writer, "%!(BAD ARGUMENT NUMBER)", &fi.n)
  327. case arg_index >= len(args):
  328. io.write_string(fi.writer, "%!(MISSING ARGUMENT)", &fi.n)
  329. case:
  330. fmt_arg(&fi, args[arg_index], verb)
  331. arg_index += 1
  332. }
  333. } else if char == '{' {
  334. if i < end && fmt[i] != '}' && fmt[i] != ':' {
  335. new_arg_index, new_i, ok := _parse_int(fmt, i)
  336. if ok {
  337. fi.reordered = true
  338. was_prev_index = true
  339. arg_index = new_arg_index
  340. i = new_i
  341. } else {
  342. io.write_string(fi.writer, "%!(BAD ARGUMENT NUMBER ", &fi.n)
  343. // Skip over the bad argument
  344. start_index := i
  345. for i < end && fmt[i] != '}' && fmt[i] != ':' {
  346. i += 1
  347. }
  348. fmt_arg(&fi, fmt[start_index:i], 'v')
  349. io.write_string(fi.writer, ")", &fi.n)
  350. }
  351. }
  352. verb: rune = 'v'
  353. if i < end && fmt[i] == ':' {
  354. i += 1
  355. prefix_loop_percent: for ; i < end; i += 1 {
  356. switch fmt[i] {
  357. case '+':
  358. fi.plus = true
  359. case '-':
  360. fi.minus = true
  361. fi.zero = false
  362. case ' ':
  363. fi.space = true
  364. case '#':
  365. fi.hash = true
  366. case '0':
  367. fi.zero = !fi.minus
  368. case:
  369. break prefix_loop_percent
  370. }
  371. }
  372. arg_index, i, was_prev_index = _arg_number(&fi, arg_index, fmt, i, len(args))
  373. // Width
  374. if i < end && fmt[i] == '*' {
  375. i += 1
  376. fi.width, arg_index, fi.width_set = int_from_arg(args, arg_index)
  377. if !fi.width_set {
  378. io.write_string(fi.writer, "%!(BAD WIDTH)", &fi.n)
  379. }
  380. if fi.width < 0 {
  381. fi.width = -fi.width
  382. fi.minus = true
  383. fi.zero = false
  384. }
  385. was_prev_index = false
  386. } else {
  387. fi.width, i, fi.width_set = _parse_int(fmt, i)
  388. if was_prev_index && fi.width_set { // %[6]2d
  389. fi.good_arg_index = false
  390. }
  391. }
  392. // Precision
  393. if i < end && fmt[i] == '.' {
  394. i += 1
  395. if was_prev_index { // %[6].2d
  396. fi.good_arg_index = false
  397. }
  398. if i < end && fmt[i] == '*' {
  399. arg_index, i, was_prev_index = _arg_number(&fi, arg_index, fmt, i, len(args))
  400. i += 1
  401. fi.prec, arg_index, fi.prec_set = int_from_arg(args, arg_index)
  402. if fi.prec < 0 {
  403. fi.prec = 0
  404. fi.prec_set = false
  405. }
  406. if !fi.prec_set {
  407. io.write_string(fi.writer, "%!(BAD PRECISION)", &fi.n)
  408. }
  409. was_prev_index = false
  410. } else {
  411. fi.prec, i, fi.prec_set = _parse_int(fmt, i)
  412. }
  413. }
  414. if !was_prev_index {
  415. arg_index, i, was_prev_index = _arg_number(&fi, arg_index, fmt, i, len(args))
  416. }
  417. if i >= end {
  418. io.write_string(fi.writer, "%!(NO VERB)", &fi.n)
  419. break loop
  420. }
  421. w: int = 1
  422. verb, w = utf8.decode_rune_in_string(fmt[i:])
  423. i += w
  424. }
  425. if i >= end {
  426. io.write_string(fi.writer, "%!(MISSING CLOSE BRACE)", &fi.n)
  427. break loop
  428. }
  429. brace, w := utf8.decode_rune_in_string(fmt[i:])
  430. i += w
  431. switch {
  432. case brace != '}':
  433. io.write_string(fi.writer, "%!(MISSING CLOSE BRACE)", &fi.n)
  434. case !fi.good_arg_index:
  435. io.write_string(fi.writer, "%!(BAD ARGUMENT NUMBER)", &fi.n)
  436. case arg_index >= len(args):
  437. io.write_string(fi.writer, "%!(MISSING ARGUMENT)", &fi.n)
  438. case:
  439. fmt_arg(&fi, args[arg_index], verb)
  440. arg_index += 1
  441. }
  442. }
  443. }
  444. if !fi.reordered && arg_index < len(args) {
  445. io.write_string(fi.writer, "%!(EXTRA ", &fi.n)
  446. for arg, index in args[arg_index:] {
  447. if index > 0 {
  448. io.write_string(fi.writer, ", ", &fi.n)
  449. }
  450. if arg == nil {
  451. io.write_string(fi.writer, "<nil>", &fi.n)
  452. } else {
  453. fmt_arg(&fi, args[index], 'v')
  454. }
  455. }
  456. io.write_string(fi.writer, ")", &fi.n)
  457. }
  458. io.flush(auto_cast w)
  459. return fi.n
  460. }
  461. // wprint_type is a utility procedure to write a ^runtime.Type_Info value to w
  462. wprint_type :: proc(w: io.Writer, info: ^runtime.Type_Info) -> (int, io.Error) {
  463. n, err := reflect.write_type(w, info)
  464. io.flush(auto_cast w)
  465. return n, err
  466. }
  467. // wprint_typeid is a utility procedure to write a typeid value to w
  468. wprint_typeid :: proc(w: io.Writer, id: typeid) -> (int, io.Error) {
  469. n, err := reflect.write_type(w, type_info_of(id))
  470. io.flush(auto_cast w)
  471. return n, err
  472. }
  473. _parse_int :: proc(s: string, offset: int) -> (result: int, new_offset: int, ok: bool) {
  474. is_digit :: #force_inline proc(r: byte) -> bool { return '0' <= r && r <= '9' }
  475. new_offset = offset
  476. for new_offset <= len(s) {
  477. c := s[new_offset]
  478. if !is_digit(c) {
  479. break
  480. }
  481. new_offset += 1
  482. result *= 10
  483. result += int(c)-'0'
  484. }
  485. ok = new_offset > offset
  486. return
  487. }
  488. _arg_number :: proc(fi: ^Info, arg_index: int, format: string, offset, arg_count: int) -> (index, new_offset: int, ok: bool) {
  489. parse_arg_number :: proc(format: string) -> (int, int, bool) {
  490. if len(format) < 3 {
  491. return 0, 1, false
  492. }
  493. for i in 1..<len(format) {
  494. if format[i] == ']' {
  495. width, new_index, ok := _parse_int(format, 1)
  496. if !ok || new_index != i {
  497. return 0, i+1, false
  498. }
  499. return width-1, i+1, true
  500. }
  501. }
  502. return 0, 1, false
  503. }
  504. if len(format) <= offset || format[offset] != '[' {
  505. return arg_index, offset, false
  506. }
  507. fi.reordered = true
  508. width: int
  509. index, width, ok = parse_arg_number(format[offset:])
  510. if ok && 0 <= index && index < arg_count {
  511. return index, offset+width, true
  512. }
  513. fi.good_arg_index = false
  514. return arg_index, offset+width, false
  515. }
  516. int_from_arg :: proc(args: []any, arg_index: int) -> (int, int, bool) {
  517. num := 0
  518. new_arg_index := arg_index
  519. ok := true
  520. if arg_index < len(args) {
  521. num, ok = reflect.as_int(args[arg_index])
  522. }
  523. if ok {
  524. new_arg_index += 1
  525. }
  526. return num, new_arg_index, ok
  527. }
  528. fmt_bad_verb :: proc(using fi: ^Info, verb: rune) {
  529. prev_in_bad := fi.in_bad
  530. defer fi.in_bad = prev_in_bad
  531. fi.in_bad = true
  532. io.write_string(writer, "%!", &fi.n)
  533. io.write_rune(writer, verb, &fi.n)
  534. io.write_byte(writer, '(', &fi.n)
  535. if arg.id != nil {
  536. reflect.write_typeid(writer, arg.id, &fi.n)
  537. io.write_byte(writer, '=', &fi.n)
  538. fmt_value(fi, arg, 'v')
  539. } else {
  540. io.write_string(writer, "<nil>", &fi.n)
  541. }
  542. io.write_byte(writer, ')', &fi.n)
  543. }
  544. fmt_bool :: proc(using fi: ^Info, b: bool, verb: rune) {
  545. switch verb {
  546. case 't', 'v':
  547. fmt_string(fi, b ? "true" : "false", 's')
  548. case:
  549. fmt_bad_verb(fi, verb)
  550. }
  551. }
  552. fmt_write_padding :: proc(fi: ^Info, width: int) {
  553. if width <= 0 {
  554. return
  555. }
  556. pad_byte: byte = ' '
  557. if !fi.space {
  558. pad_byte = '0'
  559. }
  560. for i := 0; i < width; i += 1 {
  561. io.write_byte(fi.writer, pad_byte, &fi.n)
  562. }
  563. }
  564. _fmt_int :: proc(fi: ^Info, u: u64, base: int, is_signed: bool, bit_size: int, digits: string) {
  565. _, neg := strconv.is_integer_negative(u, is_signed, bit_size)
  566. BUF_SIZE :: 256
  567. if fi.width_set || fi.prec_set {
  568. width := fi.width + fi.prec + 3 // 3 extra bytes for sign and prefix
  569. if width > BUF_SIZE {
  570. // TODO(bill):????
  571. panic("_fmt_int: buffer overrun. Width and precision too big")
  572. }
  573. }
  574. prec := 0
  575. if fi.prec_set {
  576. prec = fi.prec
  577. if prec == 0 && u == 0 {
  578. prev_zero := fi.zero
  579. fi.zero = false
  580. fmt_write_padding(fi, fi.width)
  581. fi.zero = prev_zero
  582. return
  583. }
  584. } else if fi.zero && fi.width_set {
  585. prec = fi.width
  586. if neg || fi.plus || fi.space {
  587. // There needs to be space for the "sign"
  588. prec -= 1
  589. }
  590. }
  591. switch base {
  592. case 2, 8, 10, 12, 16:
  593. break
  594. case:
  595. panic("_fmt_int: unknown base, whoops")
  596. }
  597. buf: [256]byte
  598. start := 0
  599. flags: strconv.Int_Flags
  600. if fi.hash && !fi.zero { flags |= {.Prefix} }
  601. if fi.plus { flags |= {.Plus} }
  602. if fi.space { flags |= {.Space} }
  603. s := strconv.append_bits(buf[start:], u, base, is_signed, bit_size, digits, flags)
  604. if fi.hash && fi.zero && fi.indent == 0 {
  605. c: byte = 0
  606. switch base {
  607. case 2: c = 'b'
  608. case 8: c = 'o'
  609. case 12: c = 'z'
  610. case 16: c = 'x'
  611. }
  612. if c != 0 {
  613. io.write_byte(fi.writer, '0', &fi.n)
  614. io.write_byte(fi.writer, c, &fi.n)
  615. }
  616. }
  617. prev_zero := fi.zero
  618. defer fi.zero = prev_zero
  619. fi.zero = false
  620. _pad(fi, s)
  621. }
  622. _fmt_int_128 :: proc(fi: ^Info, u: u128, base: int, is_signed: bool, bit_size: int, digits: string) {
  623. _, neg := strconv.is_integer_negative_128(u, is_signed, bit_size)
  624. BUF_SIZE :: 256
  625. if fi.width_set || fi.prec_set {
  626. width := fi.width + fi.prec + 3 // 3 extra bytes for sign and prefix
  627. if width > BUF_SIZE {
  628. // TODO(bill):????
  629. panic("_fmt_int: buffer overrun. Width and precision too big")
  630. }
  631. }
  632. prec := 0
  633. if fi.prec_set {
  634. prec = fi.prec
  635. if prec == 0 && u == 0 {
  636. prev_zero := fi.zero
  637. fi.zero = false
  638. fmt_write_padding(fi, fi.width)
  639. fi.zero = prev_zero
  640. return
  641. }
  642. } else if fi.zero && fi.width_set {
  643. prec = fi.width
  644. if neg || fi.plus || fi.space {
  645. // There needs to be space for the "sign"
  646. prec -= 1
  647. }
  648. }
  649. switch base {
  650. case 2, 8, 10, 12, 16:
  651. break
  652. case:
  653. panic("_fmt_int: unknown base, whoops")
  654. }
  655. buf: [256]byte
  656. start := 0
  657. flags: strconv.Int_Flags
  658. if fi.hash && !fi.zero { flags |= {.Prefix} }
  659. if fi.plus { flags |= {.Plus} }
  660. if fi.space { flags |= {.Space} }
  661. s := strconv.append_bits_128(buf[start:], u, base, is_signed, bit_size, digits, flags)
  662. if fi.hash && fi.zero && fi.indent == 0 {
  663. c: byte = 0
  664. switch base {
  665. case 2: c = 'b'
  666. case 8: c = 'o'
  667. case 12: c = 'z'
  668. case 16: c = 'x'
  669. }
  670. if c != 0 {
  671. io.write_byte(fi.writer, '0', &fi.n)
  672. io.write_byte(fi.writer, c, &fi.n)
  673. }
  674. }
  675. prev_zero := fi.zero
  676. defer fi.zero = prev_zero
  677. fi.zero = false
  678. _pad(fi, s)
  679. }
  680. __DIGITS_LOWER := "0123456789abcdefx"
  681. __DIGITS_UPPER := "0123456789ABCDEFX"
  682. fmt_rune :: proc(fi: ^Info, r: rune, verb: rune) {
  683. switch verb {
  684. case 'c', 'r', 'v':
  685. io.write_rune(fi.writer, r, &fi.n)
  686. case 'q':
  687. fi.n += io.write_quoted_rune(fi.writer, r)
  688. case:
  689. fmt_int(fi, u64(r), false, 32, verb)
  690. }
  691. }
  692. fmt_int :: proc(fi: ^Info, u: u64, is_signed: bool, bit_size: int, verb: rune) {
  693. switch verb {
  694. case 'v': _fmt_int(fi, u, 10, is_signed, bit_size, __DIGITS_LOWER)
  695. case 'b': _fmt_int(fi, u, 2, is_signed, bit_size, __DIGITS_LOWER)
  696. case 'o': _fmt_int(fi, u, 8, is_signed, bit_size, __DIGITS_LOWER)
  697. case 'i', 'd': _fmt_int(fi, u, 10, is_signed, bit_size, __DIGITS_LOWER)
  698. case 'z': _fmt_int(fi, u, 12, is_signed, bit_size, __DIGITS_LOWER)
  699. case 'x': _fmt_int(fi, u, 16, is_signed, bit_size, __DIGITS_LOWER)
  700. case 'X': _fmt_int(fi, u, 16, is_signed, bit_size, __DIGITS_UPPER)
  701. case 'c', 'r':
  702. fmt_rune(fi, rune(u), verb)
  703. case 'U':
  704. r := rune(u)
  705. if r < 0 || r > utf8.MAX_RUNE {
  706. fmt_bad_verb(fi, verb)
  707. } else {
  708. io.write_string(fi.writer, "U+", &fi.n)
  709. _fmt_int(fi, u, 16, false, bit_size, __DIGITS_UPPER)
  710. }
  711. case:
  712. fmt_bad_verb(fi, verb)
  713. }
  714. }
  715. fmt_int_128 :: proc(fi: ^Info, u: u128, is_signed: bool, bit_size: int, verb: rune) {
  716. switch verb {
  717. case 'v': _fmt_int_128(fi, u, 10, is_signed, bit_size, __DIGITS_LOWER)
  718. case 'b': _fmt_int_128(fi, u, 2, is_signed, bit_size, __DIGITS_LOWER)
  719. case 'o': _fmt_int_128(fi, u, 8, is_signed, bit_size, __DIGITS_LOWER)
  720. case 'i', 'd': _fmt_int_128(fi, u, 10, is_signed, bit_size, __DIGITS_LOWER)
  721. case 'z': _fmt_int_128(fi, u, 12, is_signed, bit_size, __DIGITS_LOWER)
  722. case 'x': _fmt_int_128(fi, u, 16, is_signed, bit_size, __DIGITS_LOWER)
  723. case 'X': _fmt_int_128(fi, u, 16, is_signed, bit_size, __DIGITS_UPPER)
  724. case 'c', 'r':
  725. fmt_rune(fi, rune(u), verb)
  726. case 'U':
  727. r := rune(u)
  728. if r < 0 || r > utf8.MAX_RUNE {
  729. fmt_bad_verb(fi, verb)
  730. } else {
  731. io.write_string(fi.writer, "U+", &fi.n)
  732. _fmt_int_128(fi, u, 16, false, bit_size, __DIGITS_UPPER)
  733. }
  734. case:
  735. fmt_bad_verb(fi, verb)
  736. }
  737. }
  738. _pad :: proc(fi: ^Info, s: string) {
  739. if !fi.width_set {
  740. io.write_string(fi.writer, s, &fi.n)
  741. return
  742. }
  743. width := fi.width - utf8.rune_count_in_string(s)
  744. if fi.minus { // right pad
  745. io.write_string(fi.writer, s, &fi.n)
  746. fmt_write_padding(fi, width)
  747. } else { // left pad
  748. fmt_write_padding(fi, width)
  749. io.write_string(fi.writer, s, &fi.n)
  750. }
  751. }
  752. fmt_float :: proc(fi: ^Info, v: f64, bit_size: int, verb: rune) {
  753. switch verb {
  754. case 'f', 'F', 'g', 'G', 'v':
  755. prec: int = 3
  756. if fi.prec_set {
  757. prec = fi.prec
  758. }
  759. buf: [386]byte
  760. str := strconv.append_float(buf[1:], v, 'f', prec, bit_size)
  761. b := buf[:len(str)+1]
  762. if b[1] == '+' || b[1] == '-' {
  763. b = b[1:]
  764. } else {
  765. b[0] = '+'
  766. }
  767. if fi.space && !fi.plus && b[0] == '+' {
  768. b[0] = ' '
  769. }
  770. if len(b) > 1 && (b[1] == 'N' || b[1] == 'I') {
  771. io.write_string(fi.writer, string(b), &fi.n)
  772. return
  773. }
  774. if fi.plus || b[0] != '+' {
  775. if fi.zero && fi.width_set && fi.width > len(b) {
  776. io.write_byte(fi.writer, b[0], &fi.n)
  777. fmt_write_padding(fi, fi.width - len(b))
  778. io.write_string(fi.writer, string(b[1:]), &fi.n)
  779. } else {
  780. _pad(fi, string(b))
  781. }
  782. } else {
  783. _pad(fi, string(b[1:]))
  784. }
  785. case 'e', 'E':
  786. prec: int = 3
  787. if fi.prec_set {
  788. prec = fi.prec
  789. }
  790. buf: [386]byte
  791. str := strconv.append_float(buf[1:], v, 'e', prec, bit_size)
  792. b := buf[:len(str)+1]
  793. if b[1] == '+' || b[1] == '-' {
  794. b = b[1:]
  795. } else {
  796. b[0] = '+'
  797. }
  798. if fi.space && !fi.plus && b[0] == '+' {
  799. b[0] = ' '
  800. }
  801. if len(b) > 1 && (b[1] == 'N' || b[1] == 'I') {
  802. io.write_string(fi.writer, string(b), &fi.n)
  803. return
  804. }
  805. if fi.plus || str[0] != '+' {
  806. if fi.zero && fi.width_set && fi.width > len(b) {
  807. io.write_byte(fi.writer, b[0], &fi.n)
  808. fmt_write_padding(fi, fi.width - len(b))
  809. io.write_string(fi.writer, string(b[1:]), &fi.n)
  810. } else {
  811. _pad(fi, string(b))
  812. }
  813. } else {
  814. _pad(fi, string(b[1:]))
  815. }
  816. case 'h', 'H':
  817. prev_fi := fi^
  818. defer fi^ = prev_fi
  819. fi.hash = false
  820. fi.width = bit_size
  821. fi.zero = true
  822. fi.plus = false
  823. u: u64
  824. switch bit_size {
  825. case 16: u = u64(transmute(u16)f16(v))
  826. case 32: u = u64(transmute(u32)f32(v))
  827. case 64: u = transmute(u64)v
  828. case: panic("Unhandled float size")
  829. }
  830. io.write_string(fi.writer, "0h", &fi.n)
  831. _fmt_int(fi, u, 16, false, bit_size, __DIGITS_LOWER if verb == 'h' else __DIGITS_UPPER)
  832. case:
  833. fmt_bad_verb(fi, verb)
  834. }
  835. }
  836. fmt_string :: proc(fi: ^Info, s: string, verb: rune) {
  837. s, verb := s, verb
  838. if ol, ok := fi.optional_len.?; ok {
  839. s = s[:clamp(ol, 0, len(s))]
  840. }
  841. if !fi.in_bad && fi.record_level > 0 && verb == 'v' {
  842. verb = 'q'
  843. }
  844. switch verb {
  845. case 's', 'v':
  846. if fi.width_set {
  847. if fi.width > len(s) {
  848. if fi.minus {
  849. io.write_string(fi.writer, s, &fi.n)
  850. }
  851. for _ in 0..<fi.width - len(s) {
  852. io.write_byte(fi.writer, ' ', &fi.n)
  853. }
  854. if !fi.minus {
  855. io.write_string(fi.writer, s, &fi.n)
  856. }
  857. }
  858. else {
  859. io.write_string(fi.writer, s, &fi.n)
  860. }
  861. }
  862. else
  863. {
  864. io.write_string(fi.writer, s, &fi.n)
  865. }
  866. case 'q': // quoted string
  867. io.write_quoted_string(fi.writer, s, '"', &fi.n)
  868. case 'x', 'X':
  869. space := fi.space
  870. fi.space = false
  871. defer fi.space = space
  872. for i in 0..<len(s) {
  873. if i > 0 && space {
  874. io.write_byte(fi.writer, ' ', &fi.n)
  875. }
  876. char_set := __DIGITS_UPPER
  877. if verb == 'x' {
  878. char_set = __DIGITS_LOWER
  879. }
  880. _fmt_int(fi, u64(s[i]), 16, false, 8, char_set)
  881. }
  882. case:
  883. fmt_bad_verb(fi, verb)
  884. }
  885. }
  886. fmt_cstring :: proc(fi: ^Info, s: cstring, verb: rune) {
  887. fmt_string(fi, string(s), verb)
  888. }
  889. fmt_pointer :: proc(fi: ^Info, p: rawptr, verb: rune) {
  890. u := u64(uintptr(p))
  891. switch verb {
  892. case 'p', 'v':
  893. if !fi.hash && verb == 'v' {
  894. io.write_string(fi.writer, "0x", &fi.n)
  895. }
  896. _fmt_int(fi, u, 16, false, 8*size_of(rawptr), __DIGITS_UPPER)
  897. case 'b': _fmt_int(fi, u, 2, false, 8*size_of(rawptr), __DIGITS_UPPER)
  898. case 'o': _fmt_int(fi, u, 8, false, 8*size_of(rawptr), __DIGITS_UPPER)
  899. case 'i', 'd': _fmt_int(fi, u, 10, false, 8*size_of(rawptr), __DIGITS_UPPER)
  900. case 'z': _fmt_int(fi, u, 12, false, 8*size_of(rawptr), __DIGITS_UPPER)
  901. case 'x': _fmt_int(fi, u, 16, false, 8*size_of(rawptr), __DIGITS_UPPER)
  902. case 'X': _fmt_int(fi, u, 16, false, 8*size_of(rawptr), __DIGITS_UPPER)
  903. case:
  904. fmt_bad_verb(fi, verb)
  905. }
  906. }
  907. fmt_soa_pointer :: proc(fi: ^Info, p: runtime.Raw_Soa_Pointer, verb: rune) {
  908. io.write_string(fi.writer, "#soa{data=0x", &fi.n)
  909. _fmt_int(fi, u64(uintptr(p.data)), 16, false, 8*size_of(rawptr), __DIGITS_UPPER)
  910. io.write_string(fi.writer, ", index=", &fi.n)
  911. _fmt_int(fi, u64(p.index), 10, false, 8*size_of(rawptr), __DIGITS_UPPER)
  912. io.write_string(fi.writer, "}", &fi.n)
  913. }
  914. enum_value_to_string :: proc(val: any) -> (string, bool) {
  915. v := val
  916. v.id = runtime.typeid_base(v.id)
  917. type_info := type_info_of(v.id)
  918. #partial switch e in type_info.variant {
  919. case: return "", false
  920. case runtime.Type_Info_Enum:
  921. Enum_Value :: runtime.Type_Info_Enum_Value
  922. ev_, ok := reflect.as_i64(val)
  923. ev := Enum_Value(ev_)
  924. if ok {
  925. if len(e.values) == 0 {
  926. return "", true
  927. } else {
  928. for val, idx in e.values {
  929. if val == ev {
  930. return e.names[idx], true
  931. }
  932. }
  933. }
  934. return "", false
  935. }
  936. }
  937. return "", false
  938. }
  939. string_to_enum_value :: proc($T: typeid, s: string) -> (T, bool) {
  940. ti := runtime.type_info_base(type_info_of(T))
  941. if e, ok := ti.variant.(runtime.Type_Info_Enum); ok {
  942. for str, idx in e.names {
  943. if s == str {
  944. // NOTE(bill): Unsafe cast
  945. ptr := cast(^T)&e.values[idx]
  946. return ptr^, true
  947. }
  948. }
  949. }
  950. return T{}, false
  951. }
  952. fmt_enum :: proc(fi: ^Info, v: any, verb: rune) {
  953. if v.id == nil || v.data == nil {
  954. io.write_string(fi.writer, "<nil>", &fi.n)
  955. return
  956. }
  957. type_info := type_info_of(v.id)
  958. #partial switch e in type_info.variant {
  959. case: fmt_bad_verb(fi, verb)
  960. case runtime.Type_Info_Enum:
  961. switch verb {
  962. case: fmt_bad_verb(fi, verb)
  963. case 'i', 'd', 'f':
  964. fmt_arg(fi, any{v.data, runtime.type_info_base(e.base).id}, verb)
  965. case 's', 'v', 'q':
  966. if str, ok := enum_value_to_string(v); ok {
  967. fmt_string(fi, str, verb)
  968. } else {
  969. io.write_string(fi.writer, "%!(BAD ENUM VALUE=", &fi.n)
  970. fmt_arg(fi, any{v.data, runtime.type_info_base(e.base).id}, 'i')
  971. io.write_string(fi.writer, ")", &fi.n)
  972. }
  973. }
  974. }
  975. }
  976. stored_enum_value_to_string :: proc(enum_type: ^runtime.Type_Info, ev: runtime.Type_Info_Enum_Value, offset: int = 0) -> (string, bool) {
  977. et := runtime.type_info_base(enum_type)
  978. ev := ev
  979. ev += runtime.Type_Info_Enum_Value(offset)
  980. #partial switch e in et.variant {
  981. case: return "", false
  982. case runtime.Type_Info_Enum:
  983. if reflect.is_string(e.base) {
  984. for val, idx in e.values {
  985. if val == ev {
  986. return e.names[idx], true
  987. }
  988. }
  989. } else if len(e.values) == 0 {
  990. return "", true
  991. } else {
  992. for val, idx in e.values {
  993. if val == ev {
  994. return e.names[idx], true
  995. }
  996. }
  997. }
  998. return "", false
  999. }
  1000. return "", false
  1001. }
  1002. fmt_bit_set :: proc(fi: ^Info, v: any, name: string = "") {
  1003. is_bit_set_different_endian_to_platform :: proc(ti: ^runtime.Type_Info) -> bool {
  1004. if ti == nil {
  1005. return false
  1006. }
  1007. t := runtime.type_info_base(ti)
  1008. #partial switch info in t.variant {
  1009. case runtime.Type_Info_Integer:
  1010. switch info.endianness {
  1011. case .Platform: return false
  1012. case .Little: return ODIN_ENDIAN != .Little
  1013. case .Big: return ODIN_ENDIAN != .Big
  1014. }
  1015. }
  1016. return false
  1017. }
  1018. byte_swap :: bits.byte_swap
  1019. type_info := type_info_of(v.id)
  1020. #partial switch info in type_info.variant {
  1021. case runtime.Type_Info_Named:
  1022. val := v
  1023. val.id = info.base.id
  1024. fmt_bit_set(fi, val, info.name)
  1025. case runtime.Type_Info_Bit_Set:
  1026. bits: u128
  1027. bit_size := u128(8*type_info.size)
  1028. do_byte_swap := is_bit_set_different_endian_to_platform(info.underlying)
  1029. switch bit_size {
  1030. case 0: bits = 0
  1031. case 8:
  1032. x := (^u8)(v.data)^
  1033. bits = u128(x)
  1034. case 16:
  1035. x := (^u16)(v.data)^
  1036. if do_byte_swap { x = byte_swap(x) }
  1037. bits = u128(x)
  1038. case 32:
  1039. x := (^u32)(v.data)^
  1040. if do_byte_swap { x = byte_swap(x) }
  1041. bits = u128(x)
  1042. case 64:
  1043. x := (^u64)(v.data)^
  1044. if do_byte_swap { x = byte_swap(x) }
  1045. bits = u128(x)
  1046. case 128:
  1047. x := (^u128)(v.data)^
  1048. if do_byte_swap { x = byte_swap(x) }
  1049. bits = x
  1050. case: panic("unknown bit_size size")
  1051. }
  1052. et := runtime.type_info_base(info.elem)
  1053. if name != "" {
  1054. io.write_string(fi.writer, name, &fi.n)
  1055. } else {
  1056. reflect.write_type(fi.writer, type_info, &fi.n)
  1057. }
  1058. io.write_byte(fi.writer, '{', &fi.n)
  1059. defer io.write_byte(fi.writer, '}', &fi.n)
  1060. e, is_enum := et.variant.(runtime.Type_Info_Enum)
  1061. commas := 0
  1062. loop: for i in 0 ..< bit_size {
  1063. if bits & (1<<i) == 0 {
  1064. continue loop
  1065. }
  1066. if commas > 0 {
  1067. io.write_string(fi.writer, ", ", &fi.n)
  1068. }
  1069. if is_enum {
  1070. for ev, evi in e.values {
  1071. v := u64(ev)
  1072. if v == u64(i) {
  1073. io.write_string(fi.writer, e.names[evi], &fi.n)
  1074. commas += 1
  1075. continue loop
  1076. }
  1077. }
  1078. }
  1079. v := i64(i) + info.lower
  1080. io.write_i64(fi.writer, v, 10, &fi.n)
  1081. commas += 1
  1082. }
  1083. }
  1084. }
  1085. fmt_write_indent :: proc(fi: ^Info) {
  1086. for in 0..<fi.indent {
  1087. io.write_byte(fi.writer, '\t', &fi.n)
  1088. }
  1089. }
  1090. fmt_write_array :: proc(fi: ^Info, array_data: rawptr, count: int, elem_size: int, elem_id: typeid, verb: rune) {
  1091. io.write_byte(fi.writer, '[', &fi.n)
  1092. defer io.write_byte(fi.writer, ']', &fi.n)
  1093. if count <= 0 {
  1094. return
  1095. }
  1096. fi.record_level += 1
  1097. defer fi.record_level -= 1
  1098. if fi.hash {
  1099. io.write_byte(fi.writer, '\n', &fi.n)
  1100. defer fmt_write_indent(fi)
  1101. indent := fi.indent
  1102. fi.indent += 1
  1103. defer fi.indent = indent
  1104. for i in 0..<count {
  1105. fmt_write_indent(fi)
  1106. data := uintptr(array_data) + uintptr(i*elem_size)
  1107. fmt_arg(fi, any{rawptr(data), elem_id}, verb)
  1108. io.write_string(fi.writer, ",\n", &fi.n)
  1109. }
  1110. } else {
  1111. for i in 0..<count {
  1112. if i > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1113. data := uintptr(array_data) + uintptr(i*elem_size)
  1114. fmt_arg(fi, any{rawptr(data), elem_id}, verb)
  1115. }
  1116. }
  1117. }
  1118. @(private)
  1119. handle_tag :: proc(data: rawptr, info: reflect.Type_Info_Struct, idx: int, verb: ^rune, optional_len: ^int, use_nul_termination: ^bool) -> (do_continue: bool) {
  1120. handle_optional_len :: proc(data: rawptr, info: reflect.Type_Info_Struct, field_name: string, optional_len: ^int) {
  1121. if optional_len == nil {
  1122. return
  1123. }
  1124. for f, i in info.names {
  1125. if f != field_name {
  1126. continue
  1127. }
  1128. ptr := rawptr(uintptr(data) + info.offsets[i])
  1129. field := any{ptr, info.types[i].id}
  1130. if new_len, iok := reflect.as_int(field); iok {
  1131. optional_len^ = max(new_len, 0)
  1132. }
  1133. break
  1134. }
  1135. }
  1136. tag := info.tags[idx]
  1137. if vt, ok := reflect.struct_tag_lookup(reflect.Struct_Tag(tag), "fmt"); ok {
  1138. value := strings.trim_space(string(vt))
  1139. switch value {
  1140. case "": return false
  1141. case "-": return true
  1142. }
  1143. r, w := utf8.decode_rune_in_string(value)
  1144. value = value[w:]
  1145. if value == "" || value[0] == ',' {
  1146. verb^ = r
  1147. if len(value) > 0 && value[0] == ',' {
  1148. field_name := value[1:]
  1149. if field_name == "0" {
  1150. if use_nul_termination != nil {
  1151. use_nul_termination^ = true
  1152. }
  1153. } else {
  1154. switch r {
  1155. case 's', 'q':
  1156. handle_optional_len(data, info, field_name, optional_len)
  1157. case 'v':
  1158. #partial switch reflect.type_kind(info.types[idx].id) {
  1159. case .String, .Multi_Pointer, .Array, .Slice, .Dynamic_Array:
  1160. handle_optional_len(data, info, field_name, optional_len)
  1161. }
  1162. }
  1163. }
  1164. }
  1165. }
  1166. }
  1167. return false
  1168. }
  1169. fmt_struct :: proc(fi: ^Info, v: any, the_verb: rune, info: runtime.Type_Info_Struct, type_name: string) {
  1170. if the_verb != 'v' {
  1171. fmt_bad_verb(fi, the_verb)
  1172. return
  1173. }
  1174. if info.is_raw_union {
  1175. if type_name == "" {
  1176. io.write_string(fi.writer, "(raw union)", &fi.n)
  1177. } else {
  1178. io.write_string(fi.writer, type_name, &fi.n)
  1179. io.write_string(fi.writer, "{}", &fi.n)
  1180. }
  1181. return
  1182. }
  1183. is_soa := info.soa_kind != .None
  1184. io.write_string(fi.writer, type_name, &fi.n)
  1185. io.write_byte(fi.writer, '[' if is_soa else '{', &fi.n)
  1186. fi.record_level += 1
  1187. defer fi.record_level -= 1
  1188. hash := fi.hash; defer fi.hash = hash
  1189. indent := fi.indent; defer fi.indent -= 1
  1190. do_trailing_comma := hash
  1191. // fi.hash = false;
  1192. fi.indent += 1
  1193. if hash {
  1194. io.write_byte(fi.writer, '\n', &fi.n)
  1195. }
  1196. defer {
  1197. if hash {
  1198. for in 0..<indent { io.write_byte(fi.writer, '\t', &fi.n) }
  1199. }
  1200. io.write_byte(fi.writer, ']' if is_soa else '}', &fi.n)
  1201. }
  1202. if is_soa {
  1203. fi.indent += 1
  1204. defer fi.indent -= 1
  1205. base_type_name: string
  1206. if v, ok := info.soa_base_type.variant.(runtime.Type_Info_Named); ok {
  1207. base_type_name = v.name
  1208. }
  1209. actual_field_count := len(info.names)
  1210. n := uintptr(info.soa_len)
  1211. if info.soa_kind == .Slice {
  1212. actual_field_count = len(info.names)-1 // len
  1213. n = uintptr((^int)(uintptr(v.data) + info.offsets[actual_field_count])^)
  1214. } else if info.soa_kind == .Dynamic {
  1215. actual_field_count = len(info.names)-3 // len, cap, allocator
  1216. n = uintptr((^int)(uintptr(v.data) + info.offsets[actual_field_count])^)
  1217. }
  1218. for index in 0..<n {
  1219. if !hash && index > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1220. field_count := -1
  1221. if !hash && field_count > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1222. io.write_string(fi.writer, base_type_name, &fi.n)
  1223. io.write_byte(fi.writer, '{', &fi.n)
  1224. defer io.write_byte(fi.writer, '}', &fi.n)
  1225. fi.record_level += 1
  1226. defer fi.record_level -= 1
  1227. for i in 0..<actual_field_count {
  1228. verb := 'v'
  1229. name := info.names[i]
  1230. field_count += 1
  1231. if !hash && field_count > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1232. if hash {
  1233. fmt_write_indent(fi)
  1234. }
  1235. io.write_string(fi.writer, name, &fi.n)
  1236. io.write_string(fi.writer, " = ", &fi.n)
  1237. if info.soa_kind == .Fixed {
  1238. t := info.types[i].variant.(runtime.Type_Info_Array).elem
  1239. t_size := uintptr(t.size)
  1240. if reflect.is_any(t) {
  1241. io.write_string(fi.writer, "any{}", &fi.n)
  1242. } else {
  1243. data := rawptr(uintptr(v.data) + info.offsets[i] + index*t_size)
  1244. fmt_arg(fi, any{data, t.id}, verb)
  1245. }
  1246. } else {
  1247. t := info.types[i].variant.(runtime.Type_Info_Pointer).elem
  1248. t_size := uintptr(t.size)
  1249. if reflect.is_any(t) {
  1250. io.write_string(fi.writer, "any{}", &fi.n)
  1251. } else {
  1252. field_ptr := (^^byte)(uintptr(v.data) + info.offsets[i])^
  1253. data := rawptr(uintptr(field_ptr) + index*t_size)
  1254. fmt_arg(fi, any{data, t.id}, verb)
  1255. }
  1256. }
  1257. if hash { io.write_string(fi.writer, ",\n", &fi.n) }
  1258. }
  1259. }
  1260. } else {
  1261. field_count := -1
  1262. for name, i in info.names {
  1263. optional_len: int = -1
  1264. use_nul_termination: bool = false
  1265. verb := 'v'
  1266. if handle_tag(v.data, info, i, &verb, &optional_len, &use_nul_termination) {
  1267. continue
  1268. }
  1269. field_count += 1
  1270. if optional_len >= 0 {
  1271. fi.optional_len = optional_len
  1272. }
  1273. defer if optional_len >= 0 {
  1274. fi.optional_len = nil
  1275. }
  1276. fi.use_nul_termination = use_nul_termination
  1277. defer fi.use_nul_termination = false
  1278. if !do_trailing_comma && field_count > 0 { io.write_string(fi.writer, ", ") }
  1279. if hash {
  1280. fmt_write_indent(fi)
  1281. }
  1282. io.write_string(fi.writer, name, &fi.n)
  1283. io.write_string(fi.writer, " = ", &fi.n)
  1284. if t := info.types[i]; reflect.is_any(t) {
  1285. io.write_string(fi.writer, "any{}", &fi.n)
  1286. } else {
  1287. data := rawptr(uintptr(v.data) + info.offsets[i])
  1288. fmt_arg(fi, any{data, t.id}, verb)
  1289. }
  1290. if do_trailing_comma { io.write_string(fi.writer, ",\n", &fi.n) }
  1291. }
  1292. }
  1293. }
  1294. @(private)
  1295. search_nul_termination :: proc(ptr: rawptr, elem_size: int, max_n: int) -> (n: int) {
  1296. for p := uintptr(ptr); max_n < 0 || n < max_n; p += uintptr(elem_size) {
  1297. if mem.check_zero_ptr(rawptr(p), elem_size) {
  1298. break
  1299. }
  1300. n += 1
  1301. }
  1302. return n
  1303. }
  1304. fmt_array_nul_terminated :: proc(fi: ^Info, data: rawptr, max_n: int, elem_size: int, elem: ^reflect.Type_Info, verb: rune) {
  1305. if data == nil {
  1306. io.write_string(fi.writer, "<nil>", &fi.n)
  1307. return
  1308. }
  1309. n := search_nul_termination(data, elem_size, max_n)
  1310. fmt_array(fi, data, n, elem_size, elem, verb)
  1311. }
  1312. fmt_array :: proc(fi: ^Info, data: rawptr, n: int, elem_size: int, elem: ^reflect.Type_Info, verb: rune) {
  1313. if data == nil && n > 0 {
  1314. io.write_string(fi.writer, "nil")
  1315. return
  1316. }
  1317. if verb == 's' || verb == 'q' {
  1318. print_utf16 :: proc(fi: ^Info, s: []$T) where size_of(T) == 2, intrinsics.type_is_integer(T) {
  1319. REPLACEMENT_CHAR :: '\ufffd'
  1320. _surr1 :: 0xd800
  1321. _surr2 :: 0xdc00
  1322. _surr3 :: 0xe000
  1323. _surr_self :: 0x10000
  1324. for i := 0; i < len(s); i += 1 {
  1325. r := rune(REPLACEMENT_CHAR)
  1326. switch c := s[i]; {
  1327. case c < _surr1, _surr3 <= c:
  1328. r = rune(c)
  1329. case _surr1 <= c && c < _surr2 && i+1 < len(s) &&
  1330. _surr2 <= s[i+1] && s[i+1] < _surr3:
  1331. r1, r2 := rune(c), rune(s[i+1])
  1332. if _surr1 <= r1 && r1 < _surr2 && _surr2 <= r2 && r2 < _surr3 {
  1333. r = (r1-_surr1)<<10 | (r2 - _surr2) + _surr_self
  1334. }
  1335. i += 1
  1336. }
  1337. io.write_rune(fi.writer, r, &fi.n)
  1338. }
  1339. }
  1340. print_utf32 :: proc(fi: ^Info, s: []$T) where size_of(T) == 4 {
  1341. for r in s {
  1342. io.write_rune(fi.writer, rune(r), &fi.n)
  1343. }
  1344. }
  1345. switch reflect.type_info_base(elem).id {
  1346. case byte: fmt_string(fi, string(([^]byte)(data)[:n]), verb); return
  1347. case u16: print_utf16(fi, ([^]u16)(data)[:n]); return
  1348. case u16le: print_utf16(fi, ([^]u16le)(data)[:n]); return
  1349. case u16be: print_utf16(fi, ([^]u16be)(data)[:n]); return
  1350. case u32: print_utf32(fi, ([^]u32)(data)[:n]); return
  1351. case u32le: print_utf32(fi, ([^]u32le)(data)[:n]); return
  1352. case u32be: print_utf32(fi, ([^]u32be)(data)[:n]); return
  1353. case rune: print_utf32(fi, ([^]rune)(data)[:n]); return
  1354. }
  1355. }
  1356. if verb == 'p' {
  1357. fmt_pointer(fi, data, 'p')
  1358. } else {
  1359. fmt_write_array(fi, data, n, elem_size, elem.id, verb)
  1360. }
  1361. }
  1362. fmt_named :: proc(fi: ^Info, v: any, verb: rune, info: runtime.Type_Info_Named) {
  1363. write_padded_number :: proc(fi: ^Info, i: i64, width: int) {
  1364. n := width-1
  1365. for x := i; x >= 10; x /= 10 {
  1366. n -= 1
  1367. }
  1368. for in 0..<n {
  1369. io.write_byte(fi.writer, '0', &fi.n)
  1370. }
  1371. io.write_i64(fi.writer, i, 10, &fi.n)
  1372. }
  1373. // Built-in Custom Formatters for core library types
  1374. switch a in v {
  1375. case runtime.Source_Code_Location:
  1376. io.write_string(fi.writer, a.file_path, &fi.n)
  1377. io.write_byte(fi.writer, '(', &fi.n)
  1378. io.write_int(fi.writer, int(a.line), 10, &fi.n)
  1379. io.write_byte(fi.writer, ':', &fi.n)
  1380. io.write_int(fi.writer, int(a.column), 10, &fi.n)
  1381. io.write_byte(fi.writer, ')', &fi.n)
  1382. return
  1383. case time.Duration:
  1384. ffrac :: proc(buf: []byte, v: u64, prec: int) -> (nw: int, nv: u64) {
  1385. v := v
  1386. w := len(buf)
  1387. print := false
  1388. for in 0..<prec {
  1389. digit := v % 10
  1390. print = print || digit != 0
  1391. if print {
  1392. w -= 1
  1393. buf[w] = byte(digit) + '0'
  1394. }
  1395. v /= 10
  1396. }
  1397. if print {
  1398. w -= 1
  1399. buf[w] = '.'
  1400. }
  1401. return w, v
  1402. }
  1403. fint :: proc(buf: []byte, v: u64) -> int {
  1404. v := v
  1405. w := len(buf)
  1406. if v == 0 {
  1407. w -= 1
  1408. buf[w] = '0'
  1409. } else {
  1410. for v > 0 {
  1411. w -= 1
  1412. buf[w] = byte(v%10) + '0'
  1413. v /= 10
  1414. }
  1415. }
  1416. return w
  1417. }
  1418. buf: [32]byte
  1419. w := len(buf)
  1420. u := u64(a)
  1421. neg := a < 0
  1422. if neg {
  1423. u = -u
  1424. }
  1425. if u < u64(time.Second) {
  1426. prec: int
  1427. w -= 1
  1428. buf[w] = 's'
  1429. w -= 1
  1430. switch {
  1431. case u == 0:
  1432. io.write_string(fi.writer, "0s", &fi.n)
  1433. return
  1434. case u < u64(time.Microsecond):
  1435. prec = 0
  1436. buf[w] = 'n'
  1437. case u < u64(time.Millisecond):
  1438. prec = 3
  1439. // U+00B5 'µ' micro sign == 0xC2 0xB5
  1440. w -= 1 // Need room for two bytes
  1441. copy(buf[w:], "µ")
  1442. case:
  1443. prec = 6
  1444. buf[w] = 'm'
  1445. }
  1446. w, u = ffrac(buf[:w], u, prec)
  1447. w = fint(buf[:w], u)
  1448. } else {
  1449. w -= 1
  1450. buf[w] = 's'
  1451. w, u = ffrac(buf[:w], u, 9)
  1452. w = fint(buf[:w], u%60)
  1453. u /= 60
  1454. if u > 0 {
  1455. w -= 1
  1456. buf[w] = 'm'
  1457. w = fint(buf[:w], u%60)
  1458. u /= 60
  1459. if u > 0 {
  1460. w -= 1
  1461. buf[w] = 'h'
  1462. w = fint(buf[:w], u)
  1463. }
  1464. }
  1465. }
  1466. if neg {
  1467. w -= 1
  1468. buf[w] = '-'
  1469. }
  1470. io.write_string(fi.writer, string(buf[w:]), &fi.n)
  1471. return
  1472. case time.Time:
  1473. t := a
  1474. y, mon, d := time.date(t)
  1475. h, min, s := time.clock(t)
  1476. ns := (t._nsec - (t._nsec/1e9 + time.UNIX_TO_ABSOLUTE)*1e9) % 1e9
  1477. write_padded_number(fi, i64(y), 4)
  1478. io.write_byte(fi.writer, '-', &fi.n)
  1479. write_padded_number(fi, i64(mon), 2)
  1480. io.write_byte(fi.writer, '-', &fi.n)
  1481. write_padded_number(fi, i64(d), 2)
  1482. io.write_byte(fi.writer, ' ', &fi.n)
  1483. write_padded_number(fi, i64(h), 2)
  1484. io.write_byte(fi.writer, ':', &fi.n)
  1485. write_padded_number(fi, i64(min), 2)
  1486. io.write_byte(fi.writer, ':', &fi.n)
  1487. write_padded_number(fi, i64(s), 2)
  1488. io.write_byte(fi.writer, '.', &fi.n)
  1489. write_padded_number(fi, (ns), 9)
  1490. io.write_string(fi.writer, " +0000 UTC", &fi.n)
  1491. return
  1492. }
  1493. #partial switch b in info.base.variant {
  1494. case runtime.Type_Info_Struct:
  1495. fmt_struct(fi, v, verb, b, info.name)
  1496. case runtime.Type_Info_Bit_Set:
  1497. fmt_bit_set(fi, v)
  1498. case:
  1499. fmt_value(fi, any{v.data, info.base.id}, verb)
  1500. }
  1501. }
  1502. fmt_union :: proc(fi: ^Info, v: any, verb: rune, info: runtime.Type_Info_Union, type_size: int) {
  1503. if type_size == 0 {
  1504. io.write_string(fi.writer, "nil", &fi.n)
  1505. return
  1506. }
  1507. if reflect.type_info_union_is_pure_maybe(info) {
  1508. if v.data == nil {
  1509. io.write_string(fi.writer, "nil", &fi.n)
  1510. } else {
  1511. id := info.variants[0].id
  1512. fmt_arg(fi, any{v.data, id}, verb)
  1513. }
  1514. return
  1515. }
  1516. tag: i64 = -1
  1517. tag_ptr := uintptr(v.data) + info.tag_offset
  1518. tag_any := any{rawptr(tag_ptr), info.tag_type.id}
  1519. switch i in tag_any {
  1520. case u8: tag = i64(i)
  1521. case i8: tag = i64(i)
  1522. case u16: tag = i64(i)
  1523. case i16: tag = i64(i)
  1524. case u32: tag = i64(i)
  1525. case i32: tag = i64(i)
  1526. case u64: tag = i64(i)
  1527. case i64: tag = i
  1528. case: panic("Invalid union tag type")
  1529. }
  1530. assert(tag >= 0)
  1531. if v.data == nil {
  1532. io.write_string(fi.writer, "nil", &fi.n)
  1533. } else if info.no_nil {
  1534. id := info.variants[tag].id
  1535. fmt_arg(fi, any{v.data, id}, verb)
  1536. } else if tag == 0 {
  1537. io.write_string(fi.writer, "nil", &fi.n)
  1538. } else {
  1539. id := info.variants[tag-1].id
  1540. fmt_arg(fi, any{v.data, id}, verb)
  1541. }
  1542. }
  1543. fmt_matrix :: proc(fi: ^Info, v: any, verb: rune, info: runtime.Type_Info_Matrix) {
  1544. io.write_string(fi.writer, "matrix[", &fi.n)
  1545. defer io.write_byte(fi.writer, ']', &fi.n)
  1546. fi.indent += 1
  1547. if fi.hash {
  1548. // Printed as it is written
  1549. io.write_byte(fi.writer, '\n', &fi.n)
  1550. for row in 0..<info.row_count {
  1551. fmt_write_indent(fi)
  1552. for col in 0..<info.column_count {
  1553. if col > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1554. offset := (row + col*info.elem_stride)*info.elem_size
  1555. data := uintptr(v.data) + uintptr(offset)
  1556. fmt_arg(fi, any{rawptr(data), info.elem.id}, verb)
  1557. }
  1558. io.write_string(fi.writer, ",\n", &fi.n)
  1559. }
  1560. } else {
  1561. // Printed in Row-Major layout to match text layout
  1562. for row in 0..<info.row_count {
  1563. if row > 0 { io.write_string(fi.writer, "; ", &fi.n) }
  1564. for col in 0..<info.column_count {
  1565. if col > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1566. offset := (row + col*info.elem_stride)*info.elem_size
  1567. data := uintptr(v.data) + uintptr(offset)
  1568. fmt_arg(fi, any{rawptr(data), info.elem.id}, verb)
  1569. }
  1570. }
  1571. }
  1572. fi.indent -= 1
  1573. if fi.hash {
  1574. fmt_write_indent(fi)
  1575. }
  1576. }
  1577. fmt_value :: proc(fi: ^Info, v: any, verb: rune) {
  1578. if v.data == nil || v.id == nil {
  1579. io.write_string(fi.writer, "<nil>", &fi.n)
  1580. return
  1581. }
  1582. if _user_formatters != nil && !fi.ignore_user_formatters {
  1583. formatter := _user_formatters[v.id]
  1584. if formatter != nil {
  1585. fi.ignore_user_formatters = false
  1586. if ok := formatter(fi, v, verb); !ok {
  1587. fi.ignore_user_formatters = true
  1588. fmt_bad_verb(fi, verb)
  1589. }
  1590. return
  1591. }
  1592. }
  1593. fi.ignore_user_formatters = false
  1594. type_info := type_info_of(v.id)
  1595. switch info in type_info.variant {
  1596. case runtime.Type_Info_Any: // Ignore
  1597. case runtime.Type_Info_Tuple: // Ignore
  1598. case runtime.Type_Info_Named:
  1599. fmt_named(fi, v, verb, info)
  1600. case runtime.Type_Info_Boolean: fmt_arg(fi, v, verb)
  1601. case runtime.Type_Info_Integer: fmt_arg(fi, v, verb)
  1602. case runtime.Type_Info_Rune: fmt_arg(fi, v, verb)
  1603. case runtime.Type_Info_Float: fmt_arg(fi, v, verb)
  1604. case runtime.Type_Info_Complex: fmt_arg(fi, v, verb)
  1605. case runtime.Type_Info_Quaternion: fmt_arg(fi, v, verb)
  1606. case runtime.Type_Info_String: fmt_arg(fi, v, verb)
  1607. case runtime.Type_Info_Pointer:
  1608. if v.id == typeid_of(^runtime.Type_Info) {
  1609. reflect.write_type(fi.writer, (^^runtime.Type_Info)(v.data)^, &fi.n)
  1610. } else {
  1611. ptr := (^rawptr)(v.data)^
  1612. if verb != 'p' && info.elem != nil {
  1613. a := any{ptr, info.elem.id}
  1614. elem := runtime.type_info_base(info.elem)
  1615. if elem != nil {
  1616. #partial switch e in elem.variant {
  1617. case runtime.Type_Info_Array,
  1618. runtime.Type_Info_Slice,
  1619. runtime.Type_Info_Dynamic_Array,
  1620. runtime.Type_Info_Map:
  1621. if ptr == nil {
  1622. io.write_string(fi.writer, "<nil>", &fi.n)
  1623. return
  1624. }
  1625. if fi.indirection_level < 1 {
  1626. fi.indirection_level += 1
  1627. defer fi.indirection_level -= 1
  1628. io.write_byte(fi.writer, '&')
  1629. fmt_value(fi, a, verb)
  1630. return
  1631. }
  1632. case runtime.Type_Info_Struct,
  1633. runtime.Type_Info_Union:
  1634. if ptr == nil {
  1635. io.write_string(fi.writer, "<nil>", &fi.n)
  1636. return
  1637. }
  1638. if fi.indirection_level < 1 {
  1639. fi.indirection_level += 1
  1640. defer fi.indirection_level -= 1
  1641. io.write_byte(fi.writer, '&', &fi.n)
  1642. fmt_value(fi, a, verb)
  1643. return
  1644. }
  1645. }
  1646. }
  1647. }
  1648. fmt_pointer(fi, ptr, verb)
  1649. }
  1650. case runtime.Type_Info_Soa_Pointer:
  1651. ptr := (^runtime.Raw_Soa_Pointer)(v.data)^
  1652. fmt_soa_pointer(fi, ptr, verb)
  1653. case runtime.Type_Info_Multi_Pointer:
  1654. ptr := (^rawptr)(v.data)^
  1655. if ptr == nil {
  1656. io.write_string(fi.writer, "<nil>", &fi.n)
  1657. return
  1658. }
  1659. if verb != 'p' && info.elem != nil {
  1660. a := any{ptr, info.elem.id}
  1661. elem := runtime.type_info_base(info.elem)
  1662. if elem != nil {
  1663. if n, ok := fi.optional_len.?; ok {
  1664. fmt_array(fi, ptr, n, elem.size, elem, verb)
  1665. return
  1666. } else if fi.use_nul_termination {
  1667. fmt_array_nul_terminated(fi, ptr, -1, elem.size, elem, verb)
  1668. return
  1669. }
  1670. #partial switch e in elem.variant {
  1671. case runtime.Type_Info_Integer:
  1672. switch verb {
  1673. case 's', 'q':
  1674. switch elem.id {
  1675. case u8:
  1676. fmt_cstring(fi, cstring(ptr), verb)
  1677. return
  1678. case u16, u32, rune:
  1679. n := search_nul_termination(ptr, elem.size, -1)
  1680. fmt_array(fi, ptr, n, elem.size, elem, verb)
  1681. return
  1682. }
  1683. }
  1684. case runtime.Type_Info_Array,
  1685. runtime.Type_Info_Slice,
  1686. runtime.Type_Info_Dynamic_Array,
  1687. runtime.Type_Info_Map:
  1688. if fi.indirection_level < 1 {
  1689. fi.indirection_level += 1
  1690. defer fi.indirection_level -= 1
  1691. io.write_byte(fi.writer, '&', &fi.n)
  1692. fmt_value(fi, a, verb)
  1693. return
  1694. }
  1695. case runtime.Type_Info_Struct,
  1696. runtime.Type_Info_Union:
  1697. if fi.indirection_level < 1 {
  1698. fi.indirection_level += 1
  1699. defer fi.indirection_level -= 1
  1700. io.write_byte(fi.writer, '&', &fi.n)
  1701. fmt_value(fi, a, verb)
  1702. return
  1703. }
  1704. }
  1705. }
  1706. }
  1707. fmt_pointer(fi, ptr, verb)
  1708. case runtime.Type_Info_Enumerated_Array:
  1709. fi.record_level += 1
  1710. defer fi.record_level -= 1
  1711. if fi.hash {
  1712. io.write_string(fi.writer, "[\n", &fi.n)
  1713. defer {
  1714. io.write_byte(fi.writer, '\n', &fi.n)
  1715. fmt_write_indent(fi)
  1716. io.write_byte(fi.writer, ']', &fi.n)
  1717. }
  1718. indent := fi.indent
  1719. fi.indent += 1
  1720. defer fi.indent = indent
  1721. for i in 0..<info.count {
  1722. fmt_write_indent(fi)
  1723. idx, ok := stored_enum_value_to_string(info.index, info.min_value, i)
  1724. if ok {
  1725. io.write_byte(fi.writer, '.', &fi.n)
  1726. io.write_string(fi.writer, idx, &fi.n)
  1727. } else {
  1728. io.write_i64(fi.writer, i64(info.min_value)+i64(i), 10, &fi.n)
  1729. }
  1730. io.write_string(fi.writer, " = ", &fi.n)
  1731. data := uintptr(v.data) + uintptr(i*info.elem_size)
  1732. fmt_arg(fi, any{rawptr(data), info.elem.id}, verb)
  1733. io.write_string(fi.writer, ",\n", &fi.n)
  1734. }
  1735. } else {
  1736. io.write_byte(fi.writer, '[', &fi.n)
  1737. defer io.write_byte(fi.writer, ']', &fi.n)
  1738. for i in 0..<info.count {
  1739. if i > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1740. idx, ok := stored_enum_value_to_string(info.index, info.min_value, i)
  1741. if ok {
  1742. io.write_byte(fi.writer, '.', &fi.n)
  1743. io.write_string(fi.writer, idx, &fi.n)
  1744. } else {
  1745. io.write_i64(fi.writer, i64(info.min_value)+i64(i), 10, &fi.n)
  1746. }
  1747. io.write_string(fi.writer, " = ", &fi.n)
  1748. data := uintptr(v.data) + uintptr(i*info.elem_size)
  1749. fmt_arg(fi, any{rawptr(data), info.elem.id}, verb)
  1750. }
  1751. }
  1752. case runtime.Type_Info_Array:
  1753. n := info.count
  1754. ptr := v.data
  1755. if ol, ok := fi.optional_len.?; ok {
  1756. n = min(n, ol)
  1757. } else if fi.use_nul_termination {
  1758. fmt_array_nul_terminated(fi, ptr, n, info.elem_size, info.elem, verb)
  1759. return
  1760. }
  1761. fmt_array(fi, ptr, n, info.elem_size, info.elem, verb)
  1762. case runtime.Type_Info_Slice:
  1763. slice := cast(^mem.Raw_Slice)v.data
  1764. n := slice.len
  1765. ptr := slice.data
  1766. if ol, ok := fi.optional_len.?; ok {
  1767. n = min(n, ol)
  1768. } else if fi.use_nul_termination {
  1769. fmt_array_nul_terminated(fi, ptr, n, info.elem_size, info.elem, verb)
  1770. return
  1771. }
  1772. fmt_array(fi, ptr, n, info.elem_size, info.elem, verb)
  1773. case runtime.Type_Info_Dynamic_Array:
  1774. array := cast(^mem.Raw_Dynamic_Array)v.data
  1775. n := array.len
  1776. ptr := array.data
  1777. if ol, ok := fi.optional_len.?; ok {
  1778. n = min(n, ol)
  1779. } else if fi.use_nul_termination {
  1780. fmt_array_nul_terminated(fi, ptr, n, info.elem_size, info.elem, verb)
  1781. return
  1782. }
  1783. fmt_array(fi, ptr, n, info.elem_size, info.elem, verb)
  1784. case runtime.Type_Info_Simd_Vector:
  1785. io.write_byte(fi.writer, '<', &fi.n)
  1786. defer io.write_byte(fi.writer, '>', &fi.n)
  1787. for i in 0..<info.count {
  1788. if i > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1789. data := uintptr(v.data) + uintptr(i*info.elem_size)
  1790. fmt_arg(fi, any{rawptr(data), info.elem.id}, verb)
  1791. }
  1792. case runtime.Type_Info_Map:
  1793. if verb != 'v' {
  1794. fmt_bad_verb(fi, verb)
  1795. return
  1796. }
  1797. io.write_string(fi.writer, "map[", &fi.n)
  1798. defer io.write_byte(fi.writer, ']', &fi.n)
  1799. fi.record_level += 1
  1800. defer fi.record_level -= 1
  1801. m := (^mem.Raw_Map)(v.data)
  1802. if m != nil {
  1803. if info.map_info == nil {
  1804. return
  1805. }
  1806. map_cap := uintptr(runtime.map_cap(m^))
  1807. ks, vs, hs, _, _ := runtime.map_kvh_data_dynamic(m^, info.map_info)
  1808. j := 0
  1809. for bucket_index in 0..<map_cap {
  1810. if !runtime.map_hash_is_valid(hs[bucket_index]) {
  1811. continue
  1812. }
  1813. if j > 0 {
  1814. io.write_string(fi.writer, ", ", &fi.n)
  1815. }
  1816. j += 1
  1817. key := runtime.map_cell_index_dynamic(ks, info.map_info.ks, bucket_index)
  1818. value := runtime.map_cell_index_dynamic(vs, info.map_info.vs, bucket_index)
  1819. fmt_arg(&Info{writer = fi.writer}, any{rawptr(key), info.key.id}, 'v')
  1820. io.write_string(fi.writer, "=", &fi.n)
  1821. fmt_arg(fi, any{rawptr(value), info.value.id}, 'v')
  1822. }
  1823. }
  1824. case runtime.Type_Info_Struct:
  1825. fmt_struct(fi, v, verb, info, "")
  1826. case runtime.Type_Info_Union:
  1827. fmt_union(fi, v, verb, info, type_info.size)
  1828. case runtime.Type_Info_Enum:
  1829. fmt_enum(fi, v, verb)
  1830. case runtime.Type_Info_Procedure:
  1831. ptr := (^rawptr)(v.data)^
  1832. if ptr == nil {
  1833. io.write_string(fi.writer, "nil", &fi.n)
  1834. } else {
  1835. reflect.write_typeid(fi.writer, v.id, &fi.n)
  1836. io.write_string(fi.writer, " @ ", &fi.n)
  1837. fmt_pointer(fi, ptr, 'p')
  1838. }
  1839. case runtime.Type_Info_Type_Id:
  1840. id := (^typeid)(v.data)^
  1841. reflect.write_typeid(fi.writer, id, &fi.n)
  1842. case runtime.Type_Info_Bit_Set:
  1843. fmt_bit_set(fi, v)
  1844. case runtime.Type_Info_Relative_Pointer:
  1845. ptr := reflect.relative_pointer_to_absolute_raw(v.data, info.base_integer.id)
  1846. absolute_ptr := any{ptr, info.pointer.id}
  1847. fmt_value(fi, absolute_ptr, verb)
  1848. case runtime.Type_Info_Relative_Slice:
  1849. ptr := reflect.relative_pointer_to_absolute_raw(v.data, info.base_integer.id)
  1850. if verb == 'p' {
  1851. fmt_pointer(fi, ptr, 'p')
  1852. } else if ptr == nil {
  1853. io.write_string(fi.writer, "[]", &fi.n)
  1854. } else {
  1855. len_ptr := uintptr(v.data) + uintptr(info.base_integer.size)
  1856. len_any := any{rawptr(len_ptr), info.base_integer.id}
  1857. len, _ := reflect.as_int(len_any)
  1858. slice_type := reflect.type_info_base(info.slice).variant.(runtime.Type_Info_Slice)
  1859. fi.record_level += 1
  1860. defer fi.record_level -= 1
  1861. io.write_byte(fi.writer, '[', &fi.n)
  1862. defer io.write_byte(fi.writer, ']', &fi.n)
  1863. for i in 0..<len {
  1864. if i > 0 { io.write_string(fi.writer, ", ", &fi.n) }
  1865. data := uintptr(ptr) + uintptr(i*slice_type.elem_size)
  1866. fmt_arg(fi, any{rawptr(data), slice_type.elem.id}, verb)
  1867. }
  1868. }
  1869. case runtime.Type_Info_Matrix:
  1870. fmt_matrix(fi, v, verb, info)
  1871. }
  1872. }
  1873. fmt_complex :: proc(fi: ^Info, c: complex128, bits: int, verb: rune) {
  1874. switch verb {
  1875. case 'f', 'F', 'v', 'h', 'H':
  1876. r, i := real(c), imag(c)
  1877. fmt_float(fi, r, bits/2, verb)
  1878. if !fi.plus && i >= 0 {
  1879. io.write_rune(fi.writer, '+', &fi.n)
  1880. }
  1881. fmt_float(fi, i, bits/2, verb)
  1882. io.write_rune(fi.writer, 'i', &fi.n)
  1883. case:
  1884. fmt_bad_verb(fi, verb)
  1885. return
  1886. }
  1887. }
  1888. fmt_quaternion :: proc(fi: ^Info, q: quaternion256, bits: int, verb: rune) {
  1889. switch verb {
  1890. case 'f', 'F', 'v', 'h', 'H':
  1891. r, i, j, k := real(q), imag(q), jmag(q), kmag(q)
  1892. fmt_float(fi, r, bits/4, verb)
  1893. if !fi.plus && i >= 0 {
  1894. io.write_rune(fi.writer, '+', &fi.n)
  1895. }
  1896. fmt_float(fi, i, bits/4, verb)
  1897. io.write_rune(fi.writer, 'i', &fi.n)
  1898. if !fi.plus && j >= 0 {
  1899. io.write_rune(fi.writer, '+', &fi.n)
  1900. }
  1901. fmt_float(fi, j, bits/4, verb)
  1902. io.write_rune(fi.writer, 'j', &fi.n)
  1903. if !fi.plus && k >= 0 {
  1904. io.write_rune(fi.writer, '+', &fi.n)
  1905. }
  1906. fmt_float(fi, k, bits/4, verb)
  1907. io.write_rune(fi.writer, 'k', &fi.n)
  1908. case:
  1909. fmt_bad_verb(fi, verb)
  1910. return
  1911. }
  1912. }
  1913. fmt_arg :: proc(fi: ^Info, arg: any, verb: rune) {
  1914. if arg == nil {
  1915. io.write_string(fi.writer, "<nil>")
  1916. return
  1917. }
  1918. fi.arg = arg
  1919. if verb == 'T' {
  1920. ti := type_info_of(arg.id)
  1921. switch a in arg {
  1922. case ^runtime.Type_Info: ti = a
  1923. }
  1924. reflect.write_type(fi.writer, ti, &fi.n)
  1925. return
  1926. }
  1927. if _user_formatters != nil {
  1928. formatter := _user_formatters[arg.id]
  1929. if formatter != nil {
  1930. if ok := formatter(fi, arg, verb); !ok {
  1931. fmt_bad_verb(fi, verb)
  1932. }
  1933. return
  1934. }
  1935. }
  1936. custom_types: switch a in arg {
  1937. case runtime.Source_Code_Location:
  1938. if fi.hash && verb == 'v' {
  1939. io.write_string(fi.writer, a.file_path, &fi.n)
  1940. io.write_byte(fi.writer, '(', &fi.n)
  1941. io.write_i64(fi.writer, i64(a.line), 10, &fi.n)
  1942. io.write_byte(fi.writer, ':', &fi.n)
  1943. io.write_i64(fi.writer, i64(a.column), 10, &fi.n)
  1944. io.write_byte(fi.writer, ')', &fi.n)
  1945. return
  1946. }
  1947. }
  1948. base_arg := arg
  1949. base_arg.id = runtime.typeid_base(base_arg.id)
  1950. switch a in base_arg {
  1951. case bool: fmt_bool(fi, a, verb)
  1952. case b8: fmt_bool(fi, bool(a), verb)
  1953. case b16: fmt_bool(fi, bool(a), verb)
  1954. case b32: fmt_bool(fi, bool(a), verb)
  1955. case b64: fmt_bool(fi, bool(a), verb)
  1956. case any: fmt_arg(fi, a, verb)
  1957. case rune: fmt_rune(fi, a, verb)
  1958. case f16: fmt_float(fi, f64(a), 16, verb)
  1959. case f32: fmt_float(fi, f64(a), 32, verb)
  1960. case f64: fmt_float(fi, a, 64, verb)
  1961. case f16le: fmt_float(fi, f64(a), 16, verb)
  1962. case f32le: fmt_float(fi, f64(a), 32, verb)
  1963. case f64le: fmt_float(fi, f64(a), 64, verb)
  1964. case f16be: fmt_float(fi, f64(a), 16, verb)
  1965. case f32be: fmt_float(fi, f64(a), 32, verb)
  1966. case f64be: fmt_float(fi, f64(a), 64, verb)
  1967. case complex32: fmt_complex(fi, complex128(a), 32, verb)
  1968. case complex64: fmt_complex(fi, complex128(a), 64, verb)
  1969. case complex128: fmt_complex(fi, a, 128, verb)
  1970. case quaternion64: fmt_quaternion(fi, quaternion256(a), 64, verb)
  1971. case quaternion128: fmt_quaternion(fi, quaternion256(a), 128, verb)
  1972. case quaternion256: fmt_quaternion(fi, a, 256, verb)
  1973. case i8: fmt_int(fi, u64(a), true, 8, verb)
  1974. case u8: fmt_int(fi, u64(a), false, 8, verb)
  1975. case i16: fmt_int(fi, u64(a), true, 16, verb)
  1976. case u16: fmt_int(fi, u64(a), false, 16, verb)
  1977. case i32: fmt_int(fi, u64(a), true, 32, verb)
  1978. case u32: fmt_int(fi, u64(a), false, 32, verb)
  1979. case i64: fmt_int(fi, u64(a), true, 64, verb)
  1980. case u64: fmt_int(fi, a, false, 64, verb)
  1981. case int: fmt_int(fi, u64(a), true, 8*size_of(int), verb)
  1982. case uint: fmt_int(fi, u64(a), false, 8*size_of(uint), verb)
  1983. case uintptr: fmt_int(fi, u64(a), false, 8*size_of(uintptr), verb)
  1984. case string: fmt_string(fi, a, verb)
  1985. case cstring: fmt_cstring(fi, a, verb)
  1986. case typeid: reflect.write_typeid(fi.writer, a, &fi.n)
  1987. case i16le: fmt_int(fi, u64(a), true, 16, verb)
  1988. case u16le: fmt_int(fi, u64(a), false, 16, verb)
  1989. case i32le: fmt_int(fi, u64(a), true, 32, verb)
  1990. case u32le: fmt_int(fi, u64(a), false, 32, verb)
  1991. case i64le: fmt_int(fi, u64(a), true, 64, verb)
  1992. case u64le: fmt_int(fi, u64(a), false, 64, verb)
  1993. case i16be: fmt_int(fi, u64(a), true, 16, verb)
  1994. case u16be: fmt_int(fi, u64(a), false, 16, verb)
  1995. case i32be: fmt_int(fi, u64(a), true, 32, verb)
  1996. case u32be: fmt_int(fi, u64(a), false, 32, verb)
  1997. case i64be: fmt_int(fi, u64(a), true, 64, verb)
  1998. case u64be: fmt_int(fi, u64(a), false, 64, verb)
  1999. case i128: fmt_int_128(fi, u128(a), true, 128, verb)
  2000. case u128: fmt_int_128(fi, a, false, 128, verb)
  2001. case i128le: fmt_int_128(fi, u128(a), true, 128, verb)
  2002. case u128le: fmt_int_128(fi, u128(a), false, 128, verb)
  2003. case i128be: fmt_int_128(fi, u128(a), true, 128, verb)
  2004. case u128be: fmt_int_128(fi, u128(a), false, 128, verb)
  2005. case: fmt_value(fi, arg, verb)
  2006. }
  2007. }