gguf.go 13 KB

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  1. package llm
  2. import (
  3. "bytes"
  4. "encoding/binary"
  5. "fmt"
  6. "io"
  7. "strings"
  8. "log/slog"
  9. )
  10. type containerGGUF struct {
  11. ByteOrder binary.ByteOrder
  12. Version uint32
  13. V1 struct {
  14. NumTensor uint32
  15. NumKV uint32
  16. }
  17. V2 struct {
  18. NumTensor uint64
  19. NumKV uint64
  20. }
  21. V3 struct {
  22. NumTensor uint64
  23. NumKV uint64
  24. }
  25. }
  26. func (c *containerGGUF) Name() string {
  27. return "gguf"
  28. }
  29. func (c *containerGGUF) Decode(rs io.ReadSeeker) (model, error) {
  30. if err := binary.Read(rs, c.ByteOrder, &c.Version); err != nil {
  31. return nil, err
  32. }
  33. var err error
  34. switch c.Version {
  35. case 1:
  36. err = binary.Read(rs, c.ByteOrder, &c.V1)
  37. case 2:
  38. err = binary.Read(rs, c.ByteOrder, &c.V2)
  39. default:
  40. err = binary.Read(rs, c.ByteOrder, &c.V3)
  41. }
  42. if err != nil {
  43. return nil, err
  44. }
  45. model := newGGUF(c)
  46. slog.Debug(fmt.Sprintf("model = %#v", model))
  47. if err := model.Decode(rs); err != nil {
  48. return nil, err
  49. }
  50. return model, nil
  51. }
  52. const (
  53. _ uint32 = iota
  54. GGUFTokenNormal
  55. GGUFTokenUnknown
  56. GGUFTokenControl
  57. GGUFTokenUserDefined
  58. GGUFTokenUnused
  59. GGUFTokenByte
  60. )
  61. const (
  62. ggufTypeUint8 uint32 = iota
  63. ggufTypeInt8
  64. ggufTypeUint16
  65. ggufTypeInt16
  66. ggufTypeUint32
  67. ggufTypeInt32
  68. ggufTypeFloat32
  69. ggufTypeBool
  70. ggufTypeString
  71. ggufTypeArray
  72. ggufTypeUint64
  73. ggufTypeInt64
  74. ggufTypeFloat64
  75. )
  76. type gguf struct {
  77. *containerGGUF
  78. kv KV
  79. tensors []*Tensor
  80. parameters uint64
  81. }
  82. func newGGUF(container *containerGGUF) *gguf {
  83. return &gguf{
  84. containerGGUF: container,
  85. kv: make(KV),
  86. }
  87. }
  88. func NewGGUFV3(bo binary.ByteOrder) *gguf {
  89. return newGGUF(&containerGGUF{ByteOrder: bo, Version: 3})
  90. }
  91. func (llm *gguf) KV() KV {
  92. return llm.kv
  93. }
  94. func (llm *gguf) Tensors() Tensors {
  95. return llm.tensors
  96. }
  97. func (llm *gguf) numTensor() uint64 {
  98. switch llm.Version {
  99. case 1:
  100. return uint64(llm.V1.NumTensor)
  101. case 2:
  102. return llm.V2.NumTensor
  103. default:
  104. return llm.V3.NumTensor
  105. }
  106. }
  107. func (llm *gguf) numKV() uint64 {
  108. switch llm.Version {
  109. case 1:
  110. return uint64(llm.V1.NumKV)
  111. case 2:
  112. return llm.V2.NumKV
  113. default:
  114. return llm.V3.NumKV
  115. }
  116. }
  117. func (llm *gguf) Decode(rs io.ReadSeeker) error {
  118. // decode key-values
  119. for i := 0; uint64(i) < llm.numKV(); i++ {
  120. k, err := readGGUFString(llm, rs)
  121. if err != nil {
  122. return err
  123. }
  124. t, err := readGGUF[uint32](llm, rs)
  125. if err != nil {
  126. return err
  127. }
  128. var v any
  129. switch t {
  130. case ggufTypeUint8:
  131. v, err = readGGUF[uint8](llm, rs)
  132. case ggufTypeInt8:
  133. v, err = readGGUF[int8](llm, rs)
  134. case ggufTypeUint16:
  135. v, err = readGGUF[uint16](llm, rs)
  136. case ggufTypeInt16:
  137. v, err = readGGUF[int16](llm, rs)
  138. case ggufTypeUint32:
  139. v, err = readGGUF[uint32](llm, rs)
  140. case ggufTypeInt32:
  141. v, err = readGGUF[int32](llm, rs)
  142. case ggufTypeUint64:
  143. v, err = readGGUF[uint64](llm, rs)
  144. case ggufTypeInt64:
  145. v, err = readGGUF[int64](llm, rs)
  146. case ggufTypeFloat32:
  147. v, err = readGGUF[float32](llm, rs)
  148. case ggufTypeFloat64:
  149. v, err = readGGUF[float64](llm, rs)
  150. case ggufTypeBool:
  151. v, err = readGGUF[bool](llm, rs)
  152. case ggufTypeString:
  153. v, err = readGGUFString(llm, rs)
  154. case ggufTypeArray:
  155. v, err = readGGUFArray(llm, rs)
  156. default:
  157. return fmt.Errorf("invalid type: %d", t)
  158. }
  159. if err != nil {
  160. return err
  161. }
  162. llm.kv[k] = v
  163. }
  164. slog.Debug(fmt.Sprintf("general.architecture = %s", llm.kv["general.architecture"]))
  165. // decode tensors
  166. for i := 0; uint64(i) < llm.numTensor(); i++ {
  167. name, err := readGGUFString(llm, rs)
  168. if err != nil {
  169. return err
  170. }
  171. // dims is the number of dimensions in the tensor
  172. dims, err := readGGUF[uint32](llm, rs)
  173. if err != nil {
  174. return err
  175. }
  176. shape := [4]uint64{1, 1, 1, 1}
  177. for i := 0; uint32(i) < dims; i++ {
  178. shape[i], err = readGGUF[uint64](llm, rs)
  179. if err != nil {
  180. return err
  181. }
  182. }
  183. kind, err := readGGUF[uint32](llm, rs)
  184. if err != nil {
  185. return err
  186. }
  187. offset, err := readGGUF[uint64](llm, rs)
  188. if err != nil {
  189. return err
  190. }
  191. tensor := Tensor{
  192. Name: name,
  193. Kind: kind,
  194. Offset: offset,
  195. Shape: shape[:],
  196. }
  197. llm.tensors = append(llm.tensors, &tensor)
  198. llm.parameters += tensor.parameters()
  199. }
  200. // patch KV with parameter count
  201. llm.kv["general.parameter_count"] = llm.parameters
  202. alignment, ok := llm.kv["general.alignment"].(uint32)
  203. if !ok {
  204. alignment = 32
  205. }
  206. offset, err := rs.Seek(0, io.SeekCurrent)
  207. if err != nil {
  208. return err
  209. }
  210. padding := llm.padding(offset, int64(alignment))
  211. if _, err := rs.Seek(padding-offset, io.SeekCurrent); err != nil {
  212. return err
  213. }
  214. for _, tensor := range llm.tensors {
  215. padded := (int64(tensor.size()) + int64(alignment) - 1) & ^(int64(alignment) - 1)
  216. if _, err := rs.Seek(padded, io.SeekCurrent); err != nil {
  217. return err
  218. }
  219. }
  220. return nil
  221. }
  222. func readGGUF[T any](llm *gguf, r io.Reader) (T, error) {
  223. var t T
  224. err := binary.Read(r, llm.ByteOrder, &t)
  225. return t, err
  226. }
  227. func writeGGUF[V any](llm *gguf, w io.Writer, t uint32, v V) error {
  228. if err := binary.Write(w, llm.ByteOrder, t); err != nil {
  229. return err
  230. }
  231. return binary.Write(w, llm.ByteOrder, v)
  232. }
  233. func readGGUFV1String(llm *gguf, r io.Reader) (string, error) {
  234. var length uint64
  235. if err := binary.Read(r, llm.ByteOrder, &length); err != nil {
  236. return "", err
  237. }
  238. var b bytes.Buffer
  239. if _, err := io.CopyN(&b, r, int64(length)); err != nil {
  240. return "", err
  241. }
  242. // gguf v1 strings are null-terminated
  243. b.Truncate(b.Len() - 1)
  244. return b.String(), nil
  245. }
  246. func readGGUFString(llm *gguf, r io.Reader) (string, error) {
  247. if llm.Version == 1 {
  248. return readGGUFV1String(llm, r)
  249. }
  250. var length uint64
  251. if err := binary.Read(r, llm.ByteOrder, &length); err != nil {
  252. return "", err
  253. }
  254. var b bytes.Buffer
  255. if _, err := io.CopyN(&b, r, int64(length)); err != nil {
  256. return "", err
  257. }
  258. return b.String(), nil
  259. }
  260. func writeGGUFString(llm *gguf, w io.Writer, s string) error {
  261. if err := binary.Write(w, llm.ByteOrder, ggufTypeString); err != nil {
  262. return err
  263. }
  264. if err := binary.Write(w, llm.ByteOrder, uint64(len(s))); err != nil {
  265. return err
  266. }
  267. _, err := io.Copy(w, strings.NewReader(s))
  268. return err
  269. }
  270. func readGGUFV1Array(llm *gguf, r io.Reader) (a []any, err error) {
  271. t, err := readGGUF[uint32](llm, r)
  272. if err != nil {
  273. return nil, err
  274. }
  275. n, err := readGGUF[uint32](llm, r)
  276. if err != nil {
  277. return nil, err
  278. }
  279. for i := 0; uint32(i) < n; i++ {
  280. var e any
  281. switch t {
  282. case ggufTypeUint8:
  283. e, err = readGGUF[uint8](llm, r)
  284. case ggufTypeInt8:
  285. e, err = readGGUF[int8](llm, r)
  286. case ggufTypeUint16:
  287. e, err = readGGUF[uint16](llm, r)
  288. case ggufTypeInt16:
  289. e, err = readGGUF[int16](llm, r)
  290. case ggufTypeUint32:
  291. e, err = readGGUF[uint32](llm, r)
  292. case ggufTypeInt32:
  293. e, err = readGGUF[int32](llm, r)
  294. case ggufTypeUint64:
  295. e, err = readGGUF[uint64](llm, r)
  296. case ggufTypeInt64:
  297. e, err = readGGUF[int64](llm, r)
  298. case ggufTypeFloat32:
  299. e, err = readGGUF[float32](llm, r)
  300. case ggufTypeFloat64:
  301. e, err = readGGUF[float64](llm, r)
  302. case ggufTypeBool:
  303. e, err = readGGUF[bool](llm, r)
  304. case ggufTypeString:
  305. e, err = readGGUFV1String(llm, r)
  306. default:
  307. return nil, fmt.Errorf("invalid array type: %d", t)
  308. }
  309. if err != nil {
  310. return nil, err
  311. }
  312. a = append(a, e)
  313. }
  314. return
  315. }
  316. func readGGUFArray(llm *gguf, r io.Reader) (a []any, err error) {
  317. if llm.Version == 1 {
  318. return readGGUFV1Array(llm, r)
  319. }
  320. t, err := readGGUF[uint32](llm, r)
  321. if err != nil {
  322. return nil, err
  323. }
  324. n, err := readGGUF[uint64](llm, r)
  325. if err != nil {
  326. return nil, err
  327. }
  328. for i := 0; uint64(i) < n; i++ {
  329. var e any
  330. switch t {
  331. case ggufTypeUint8:
  332. e, err = readGGUF[uint8](llm, r)
  333. case ggufTypeInt8:
  334. e, err = readGGUF[int8](llm, r)
  335. case ggufTypeUint16:
  336. e, err = readGGUF[uint16](llm, r)
  337. case ggufTypeInt16:
  338. e, err = readGGUF[int16](llm, r)
  339. case ggufTypeUint32:
  340. e, err = readGGUF[uint32](llm, r)
  341. case ggufTypeInt32:
  342. e, err = readGGUF[int32](llm, r)
  343. case ggufTypeUint64:
  344. e, err = readGGUF[uint64](llm, r)
  345. case ggufTypeInt64:
  346. e, err = readGGUF[int64](llm, r)
  347. case ggufTypeFloat32:
  348. e, err = readGGUF[float32](llm, r)
  349. case ggufTypeFloat64:
  350. e, err = readGGUF[float64](llm, r)
  351. case ggufTypeBool:
  352. e, err = readGGUF[bool](llm, r)
  353. case ggufTypeString:
  354. e, err = readGGUFString(llm, r)
  355. default:
  356. return nil, fmt.Errorf("invalid array type: %d", t)
  357. }
  358. if err != nil {
  359. return nil, err
  360. }
  361. a = append(a, e)
  362. }
  363. return
  364. }
  365. func writeGGUFArray[S ~[]E, E any](llm *gguf, w io.Writer, t uint32, s S) error {
  366. if err := binary.Write(w, llm.ByteOrder, ggufTypeArray); err != nil {
  367. return err
  368. }
  369. if err := binary.Write(w, llm.ByteOrder, t); err != nil {
  370. return err
  371. }
  372. if err := binary.Write(w, llm.ByteOrder, uint64(len(s))); err != nil {
  373. return err
  374. }
  375. for _, e := range s {
  376. if err := binary.Write(w, llm.ByteOrder, e); err != nil {
  377. return err
  378. }
  379. }
  380. return nil
  381. }
  382. var ggufKVOrder = map[string][]string{
  383. "llama": {
  384. "general.architecture",
  385. "general.name",
  386. "llama.vocab_size",
  387. "llama.context_length",
  388. "llama.embedding_length",
  389. "llama.block_count",
  390. "llama.feed_forward_length",
  391. "llama.rope.dimension_count",
  392. "llama.attention.head_count",
  393. "llama.attention.head_count_kv",
  394. "llama.attention.layer_norm_rms_epsilon",
  395. "llama.rope.freq_base",
  396. "gemma.context_length",
  397. "gemma.embedding_length",
  398. "gemma.block_count",
  399. "gemma.feed_forward_length",
  400. "gemma.attention.head_count",
  401. "gemma.attention.head_count_kv",
  402. "gemma.attention.layer_norm_rms_epsilon",
  403. "gemma.attention.key_length",
  404. "gemma.attention.value_length",
  405. "general.file_type",
  406. "tokenizer.ggml.model",
  407. "tokenizer.ggml.tokens",
  408. "tokenizer.ggml.scores",
  409. "tokenizer.ggml.token_type",
  410. "tokenizer.ggml.bos_token_id",
  411. "tokenizer.ggml.eos_token_id",
  412. "tokenizer.ggml.unknown_token_id",
  413. "tokenizer.ggml.padding_token_id",
  414. "tokenizer.ggml.add_bos_token",
  415. "tokenizer.ggml.add_eos_token",
  416. "tokenizer.chat_template",
  417. },
  418. }
  419. func (llm *gguf) Encode(ws io.WriteSeeker, kv KV, tensors []Tensor) error {
  420. switch llm.Version {
  421. case 3:
  422. llm.V3.NumTensor = uint64(len(tensors))
  423. llm.V3.NumKV = uint64(len(kv))
  424. default:
  425. return fmt.Errorf("not implemented: ggufv%d", llm.Version)
  426. }
  427. if err := binary.Write(ws, llm.ByteOrder, []byte("GGUF")); err != nil {
  428. return err
  429. }
  430. if err := binary.Write(ws, llm.ByteOrder, llm.Version); err != nil {
  431. return err
  432. }
  433. if err := binary.Write(ws, llm.ByteOrder, llm.numTensor()); err != nil {
  434. return err
  435. }
  436. if err := binary.Write(ws, llm.ByteOrder, llm.numKV()); err != nil {
  437. return err
  438. }
  439. kvCheck := make(map[string]bool)
  440. for k := range kv {
  441. kvCheck[k] = false
  442. }
  443. for _, k := range ggufKVOrder["llama"] {
  444. v, ok := kv[k]
  445. if !ok {
  446. continue
  447. }
  448. kvCheck[k] = true
  449. if err := binary.Write(ws, llm.ByteOrder, uint64(len(k))); err != nil {
  450. return err
  451. }
  452. if err := binary.Write(ws, llm.ByteOrder, []byte(k)); err != nil {
  453. return err
  454. }
  455. var err error
  456. switch v := v.(type) {
  457. case uint32:
  458. err = writeGGUF(llm, ws, ggufTypeUint32, v)
  459. case float32:
  460. err = writeGGUF(llm, ws, ggufTypeFloat32, v)
  461. case bool:
  462. err = writeGGUF(llm, ws, ggufTypeBool, v)
  463. case string:
  464. err = writeGGUFString(llm, ws, v)
  465. case []int32:
  466. err = writeGGUFArray(llm, ws, ggufTypeInt32, v)
  467. case []uint32:
  468. err = writeGGUFArray(llm, ws, ggufTypeUint32, v)
  469. case []float32:
  470. err = writeGGUFArray(llm, ws, ggufTypeFloat32, v)
  471. case []string:
  472. if err := binary.Write(ws, llm.ByteOrder, ggufTypeArray); err != nil {
  473. return err
  474. }
  475. if err := binary.Write(ws, llm.ByteOrder, ggufTypeString); err != nil {
  476. return err
  477. }
  478. if err := binary.Write(ws, llm.ByteOrder, uint64(len(v))); err != nil {
  479. return err
  480. }
  481. for _, e := range v {
  482. if err := binary.Write(ws, llm.ByteOrder, uint64(len(e))); err != nil {
  483. return err
  484. }
  485. if err := binary.Write(ws, llm.ByteOrder, []byte(e)); err != nil {
  486. return err
  487. }
  488. }
  489. }
  490. if err != nil {
  491. return err
  492. }
  493. }
  494. for k, v := range kvCheck {
  495. if !v {
  496. return fmt.Errorf("Didn't know how to write kv %s", k)
  497. }
  498. }
  499. for _, tensor := range tensors {
  500. if err := binary.Write(ws, llm.ByteOrder, uint64(len(tensor.Name))); err != nil {
  501. return err
  502. }
  503. if err := binary.Write(ws, llm.ByteOrder, []byte(tensor.Name)); err != nil {
  504. return err
  505. }
  506. dims := 1
  507. if tensor.Shape[1] > 0 {
  508. dims = 2
  509. }
  510. if err := binary.Write(ws, llm.ByteOrder, uint32(dims)); err != nil {
  511. return err
  512. }
  513. for i := 0; i < dims; i++ {
  514. if err := binary.Write(ws, llm.ByteOrder, uint64(tensor.Shape[dims-1-i])); err != nil {
  515. return err
  516. }
  517. }
  518. if err := binary.Write(ws, llm.ByteOrder, tensor.Kind); err != nil {
  519. return err
  520. }
  521. if err := binary.Write(ws, llm.ByteOrder, tensor.Offset); err != nil {
  522. return err
  523. }
  524. }
  525. offset, err := ws.Seek(0, io.SeekCurrent)
  526. if err != nil {
  527. return err
  528. }
  529. padding := llm.padding(offset, 32)
  530. if err := binary.Write(ws, llm.ByteOrder, bytes.Repeat([]byte{0}, int(padding-offset))); err != nil {
  531. return err
  532. }
  533. for _, tensor := range tensors {
  534. if _, err := tensor.WriteTo(ws); err != nil {
  535. return err
  536. }
  537. offset, err := ws.Seek(0, io.SeekCurrent)
  538. if err != nil {
  539. return err
  540. }
  541. padding := llm.padding(offset, 32)
  542. if err := binary.Write(ws, llm.ByteOrder, bytes.Repeat([]byte{0}, int(padding-offset))); err != nil {
  543. return err
  544. }
  545. }
  546. return nil
  547. }
  548. func (gguf) padding(offset, align int64) int64 {
  549. return (offset + align - 1) / align * align
  550. }