llama.go 20 KB

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  1. package llm
  2. import (
  3. "bufio"
  4. "bytes"
  5. "context"
  6. "embed"
  7. "encoding/json"
  8. "errors"
  9. "fmt"
  10. "io"
  11. "io/fs"
  12. "log"
  13. "math/rand"
  14. "net/http"
  15. "os"
  16. "os/exec"
  17. "path"
  18. "path/filepath"
  19. "runtime"
  20. "strconv"
  21. "strings"
  22. "sync"
  23. "time"
  24. "github.com/jmorganca/ollama/api"
  25. "github.com/jmorganca/ollama/format"
  26. )
  27. //go:embed llama.cpp/*/build/*/bin/*
  28. var llamaCppEmbed embed.FS
  29. type ModelRunner struct {
  30. Path string // path to the model runner executable
  31. Accelerated bool
  32. }
  33. func chooseRunners(workDir, runnerType string) []ModelRunner {
  34. buildPath := path.Join("llama.cpp", runnerType, "build")
  35. var runners []ModelRunner
  36. // set the runners based on the OS
  37. // IMPORTANT: the order of the runners in the array is the priority order
  38. switch runtime.GOOS {
  39. case "darwin":
  40. runners = []ModelRunner{
  41. {Path: path.Join(buildPath, "metal", "bin", "ollama-runner")},
  42. {Path: path.Join(buildPath, "cpu", "bin", "ollama-runner")},
  43. }
  44. case "linux":
  45. runners = []ModelRunner{
  46. {Path: path.Join(buildPath, "cuda", "bin", "ollama-runner"), Accelerated: true},
  47. {Path: path.Join(buildPath, "cpu", "bin", "ollama-runner")},
  48. }
  49. case "windows":
  50. // TODO: select windows GPU runner here when available
  51. runners = []ModelRunner{
  52. {Path: path.Join(buildPath, "cpu", "bin", "Release", "ollama-runner.exe")},
  53. }
  54. default:
  55. log.Printf("unknown OS, running on CPU: %s", runtime.GOOS)
  56. runners = []ModelRunner{
  57. {Path: path.Join(buildPath, "cpu", "bin", "ollama-runner")},
  58. }
  59. }
  60. runnerAvailable := false // if no runner files are found in the embed, this flag will cause a fast fail
  61. for _, r := range runners {
  62. // find all the files in the runner's bin directory
  63. files, err := fs.Glob(llamaCppEmbed, path.Join(path.Dir(r.Path), "*"))
  64. if err != nil {
  65. // this is expected, ollama may be compiled without all runners packed in
  66. log.Printf("%s runner not found: %v", r.Path, err)
  67. continue
  68. }
  69. for _, f := range files {
  70. runnerAvailable = true
  71. srcFile, err := llamaCppEmbed.Open(f)
  72. if err != nil {
  73. log.Fatalf("read llama runner %s: %v", f, err)
  74. }
  75. defer srcFile.Close()
  76. // create the directory in case it does not exist, filepath.Dir() converts the file path to the OS's format
  77. destPath := filepath.Join(workDir, filepath.Dir(f))
  78. if err := os.MkdirAll(destPath, 0o755); err != nil {
  79. log.Fatalf("create runner temp dir %s: %v", filepath.Dir(f), err)
  80. }
  81. // create the path to the destination file, filepath.Base() converts the file path to the OS's format
  82. destFile := filepath.Join(destPath, filepath.Base(f))
  83. _, err = os.Stat(destFile)
  84. switch {
  85. case errors.Is(err, os.ErrNotExist):
  86. destFile, err := os.OpenFile(destFile, os.O_WRONLY|os.O_CREATE|os.O_TRUNC, 0o755)
  87. if err != nil {
  88. log.Fatalf("write llama runner %s: %v", f, err)
  89. }
  90. defer destFile.Close()
  91. if _, err := io.Copy(destFile, srcFile); err != nil {
  92. log.Fatalf("copy llama runner %s: %v", f, err)
  93. }
  94. case err != nil:
  95. log.Fatalf("stat llama runner %s: %v", f, err)
  96. }
  97. }
  98. }
  99. if !runnerAvailable {
  100. log.Fatalf("%s runner not found", runnerType)
  101. }
  102. // return the runners to try in priority order
  103. localRunnersByPriority := []ModelRunner{}
  104. for _, r := range runners {
  105. // clean the ModelRunner paths so that they match the OS we are running on
  106. localRunnersByPriority = append(localRunnersByPriority, ModelRunner{
  107. Path: filepath.Clean(path.Join(workDir, r.Path)),
  108. Accelerated: r.Accelerated,
  109. })
  110. }
  111. return localRunnersByPriority
  112. }
  113. type llamaModel struct {
  114. hyperparameters llamaHyperparameters
  115. }
  116. func (llm *llamaModel) ModelFamily() string {
  117. return "llama"
  118. }
  119. func llamaModelType(numLayer uint32) string {
  120. switch numLayer {
  121. case 26:
  122. return "3B"
  123. case 32:
  124. return "7B"
  125. case 40:
  126. return "13B"
  127. case 48:
  128. return "34B"
  129. case 60:
  130. return "30B"
  131. case 80:
  132. return "65B"
  133. default:
  134. return "unknown"
  135. }
  136. }
  137. func (llm *llamaModel) ModelType() string {
  138. return llamaModelType(llm.hyperparameters.NumLayer)
  139. }
  140. func (llm *llamaModel) FileType() string {
  141. return fileType(llm.hyperparameters.FileType)
  142. }
  143. func (llm *llamaModel) NumLayers() int64 {
  144. return int64(llm.hyperparameters.NumLayer)
  145. }
  146. type llamaHyperparameters struct {
  147. // NumVocab is the size of the model's vocabulary.
  148. NumVocab uint32
  149. // NumEmbd is the size of the model's embedding layer.
  150. NumEmbd uint32
  151. NumMult uint32
  152. NumHead uint32
  153. // NumLayer is the number of layers in the model.
  154. NumLayer uint32
  155. NumRot uint32
  156. // FileType describes the quantization level of the model, e.g. Q4_0, Q5_K, etc.
  157. FileType uint32
  158. }
  159. type Running struct {
  160. Port int
  161. Cmd *exec.Cmd
  162. Cancel context.CancelFunc
  163. exitOnce sync.Once
  164. exitCh chan error // channel to receive the exit status of the subprocess
  165. *StatusWriter // captures error messages from the llama runner process
  166. }
  167. type llama struct {
  168. api.Options
  169. Running
  170. }
  171. var errNoGPU = errors.New("nvidia-smi command failed")
  172. // CheckVRAM returns the free VRAM in bytes on Linux machines with NVIDIA GPUs
  173. func CheckVRAM() (int64, error) {
  174. cmd := exec.Command("nvidia-smi", "--query-gpu=memory.free", "--format=csv,noheader,nounits")
  175. var stdout bytes.Buffer
  176. cmd.Stdout = &stdout
  177. err := cmd.Run()
  178. if err != nil {
  179. return 0, errNoGPU
  180. }
  181. var freeMiB int64
  182. scanner := bufio.NewScanner(&stdout)
  183. for scanner.Scan() {
  184. line := scanner.Text()
  185. vram, err := strconv.ParseInt(strings.TrimSpace(line), 10, 64)
  186. if err != nil {
  187. return 0, fmt.Errorf("failed to parse available VRAM: %v", err)
  188. }
  189. freeMiB += vram
  190. }
  191. freeBytes := freeMiB * 1024 * 1024
  192. if freeBytes < 2*format.GigaByte {
  193. log.Printf("less than 2 GB VRAM available, falling back to CPU only")
  194. freeMiB = 0
  195. }
  196. return freeBytes, nil
  197. }
  198. func NumGPU(numLayer, fileSizeBytes int64, opts api.Options) int {
  199. if opts.NumGPU != -1 {
  200. return opts.NumGPU
  201. }
  202. if runtime.GOOS == "linux" {
  203. freeBytes, err := CheckVRAM()
  204. if err != nil {
  205. if err.Error() != "nvidia-smi command failed" {
  206. log.Print(err.Error())
  207. }
  208. // nvidia driver not installed or no nvidia GPU found
  209. return 0
  210. }
  211. /*
  212. Calculate bytes per layer, this will roughly be the size of the model file divided by the number of layers.
  213. We can store the model weights and the kv cache in vram,
  214. to enable kv chache vram storage add two additional layers to the number of layers retrieved from the model file.
  215. */
  216. bytesPerLayer := fileSizeBytes / numLayer
  217. // 75% of the absolute max number of layers we can fit in available VRAM, off-loading too many layers to the GPU can cause OOM errors
  218. layers := int(freeBytes/bytesPerLayer) * 3 / 4
  219. log.Printf("%d MB VRAM available, loading up to %d GPU layers", freeBytes/(1024*1024), layers)
  220. return layers
  221. }
  222. // default to enable metal on macOS
  223. return 1
  224. }
  225. // StatusWriter is a writer that captures error messages from the llama runner process
  226. type StatusWriter struct {
  227. ErrCh chan error
  228. LastErrMsg string
  229. }
  230. func NewStatusWriter() *StatusWriter {
  231. return &StatusWriter{
  232. ErrCh: make(chan error, 1),
  233. }
  234. }
  235. func (w *StatusWriter) Write(b []byte) (int, error) {
  236. var errMsg string
  237. if _, after, ok := bytes.Cut(b, []byte("error:")); ok {
  238. errMsg = string(bytes.TrimSpace(after))
  239. } else if _, after, ok := bytes.Cut(b, []byte("CUDA error")); ok {
  240. errMsg = string(bytes.TrimSpace(after))
  241. }
  242. if errMsg != "" {
  243. w.LastErrMsg = errMsg
  244. w.ErrCh <- fmt.Errorf("llama runner: %s", errMsg)
  245. }
  246. return os.Stderr.Write(b)
  247. }
  248. func newLlama(model string, adapters []string, runners []ModelRunner, numLayers int64, opts api.Options) (*llama, error) {
  249. fileInfo, err := os.Stat(model)
  250. if err != nil {
  251. return nil, err
  252. }
  253. if len(adapters) > 1 {
  254. return nil, errors.New("ollama supports only one lora adapter, but multiple were provided")
  255. }
  256. numGPU := NumGPU(numLayers, fileInfo.Size(), opts)
  257. params := []string{
  258. "--model", model,
  259. "--ctx-size", fmt.Sprintf("%d", opts.NumCtx),
  260. "--rope-freq-base", fmt.Sprintf("%f", opts.RopeFrequencyBase),
  261. "--rope-freq-scale", fmt.Sprintf("%f", opts.RopeFrequencyScale),
  262. "--batch-size", fmt.Sprintf("%d", opts.NumBatch),
  263. "--n-gpu-layers", fmt.Sprintf("%d", numGPU),
  264. "--embedding",
  265. }
  266. if opts.NumGQA > 0 {
  267. params = append(params, "--gqa", fmt.Sprintf("%d", opts.NumGQA))
  268. }
  269. if len(adapters) > 0 {
  270. // TODO: applying multiple adapters is not supported by the llama.cpp server yet
  271. params = append(params, "--lora", adapters[0])
  272. }
  273. if opts.NumThread > 0 {
  274. params = append(params, "--threads", fmt.Sprintf("%d", opts.NumThread))
  275. }
  276. if !opts.F16KV {
  277. params = append(params, "--memory-f32")
  278. }
  279. if opts.UseMLock {
  280. params = append(params, "--mlock")
  281. }
  282. if !opts.UseMMap {
  283. params = append(params, "--no-mmap")
  284. }
  285. if opts.UseNUMA {
  286. params = append(params, "--numa")
  287. }
  288. var runnerErr error
  289. // start the llama.cpp server with a retry in case the port is already in use
  290. for _, runner := range runners {
  291. if runner.Accelerated && numGPU == 0 {
  292. log.Printf("skipping accelerated runner because num_gpu=0")
  293. continue
  294. }
  295. if _, err := os.Stat(runner.Path); err != nil {
  296. log.Printf("llama runner not found: %v", err)
  297. continue
  298. }
  299. port := rand.Intn(65535-49152) + 49152 // get a random port in the ephemeral range
  300. ctx, cancel := context.WithCancel(context.Background())
  301. cmd := exec.CommandContext(
  302. ctx,
  303. runner.Path,
  304. append(params, "--port", strconv.Itoa(port))...,
  305. )
  306. cmd.Env = append(os.Environ(), fmt.Sprintf("LD_LIBRARY_PATH=%s", filepath.Dir(runner.Path)))
  307. cmd.Stdout = os.Stderr
  308. statusWriter := NewStatusWriter()
  309. cmd.Stderr = statusWriter
  310. llm := &llama{Options: opts, Running: Running{Port: port, Cmd: cmd, Cancel: cancel, exitCh: make(chan error)}}
  311. log.Print("starting llama runner")
  312. if err := llm.Cmd.Start(); err != nil {
  313. log.Printf("error starting the external llama runner: %v", err)
  314. continue
  315. }
  316. // monitor the llama runner process and signal when it exits
  317. go func() {
  318. err := llm.Cmd.Wait()
  319. // default to printing the exit message of the command process, it will probably just say 'exit staus 1'
  320. errMsg := err.Error()
  321. // try to set a better error message if llama runner logs captured an error
  322. if statusWriter.LastErrMsg != "" {
  323. errMsg = statusWriter.LastErrMsg
  324. }
  325. log.Println(errMsg)
  326. // llm.Cmd.Wait() can only be called once, use this exit channel to signal that the process has exited
  327. llm.exitOnce.Do(func() {
  328. close(llm.exitCh)
  329. })
  330. }()
  331. if err := waitForServer(llm); err != nil {
  332. log.Printf("error starting llama runner: %v", err)
  333. llm.Close()
  334. // default the runnerErr to the error returned by the most recent llama runner process
  335. runnerErr = err
  336. // capture the error directly from the runner process, if any
  337. select {
  338. case runnerErr = <-statusWriter.ErrCh:
  339. default:
  340. // the runner process probably timed out
  341. }
  342. // try again
  343. continue
  344. }
  345. // server started successfully
  346. return llm, nil
  347. }
  348. if runnerErr != nil {
  349. // this is the error returned from the llama runner process that failed most recently
  350. return nil, runnerErr
  351. }
  352. return nil, fmt.Errorf("failed to start a llama runner")
  353. }
  354. func waitForServer(llm *llama) error {
  355. start := time.Now()
  356. expiresAt := time.Now().Add(3 * time.Minute) // be generous with timeout, large models can take a while to load
  357. ticker := time.NewTicker(200 * time.Millisecond)
  358. defer ticker.Stop()
  359. log.Print("waiting for llama runner to start responding")
  360. for {
  361. select {
  362. case <-llm.exitCh:
  363. // failed to start subprocess
  364. return fmt.Errorf("llama runner process has terminated")
  365. case <-ticker.C:
  366. if time.Now().After(expiresAt) {
  367. // timeout
  368. return fmt.Errorf("timed out waiting for llama runner to start")
  369. }
  370. if err := llm.Ping(context.Background()); err == nil {
  371. // success
  372. log.Printf("llama runner started in %f seconds", time.Since(start).Seconds())
  373. return nil
  374. }
  375. }
  376. }
  377. }
  378. func (llm *llama) Close() {
  379. // signal the sub-process to terminate
  380. llm.Cancel()
  381. // wait for the command to exit to prevent race conditions with the next run
  382. <-llm.exitCh
  383. if llm.StatusWriter != nil && llm.StatusWriter.LastErrMsg != "" {
  384. log.Printf("llama runner stopped with error: %v", llm.StatusWriter.LastErrMsg)
  385. } else {
  386. log.Print("llama runner stopped successfully")
  387. }
  388. }
  389. func (llm *llama) SetOptions(opts api.Options) {
  390. llm.Options = opts
  391. }
  392. type prediction struct {
  393. Content string `json:"content"`
  394. Model string `json:"model"`
  395. Prompt string `json:"prompt"`
  396. Stop bool `json:"stop"`
  397. Timings struct {
  398. PredictedN int `json:"predicted_n"`
  399. PredictedMS float64 `json:"predicted_ms"`
  400. PromptN int `json:"prompt_n"`
  401. PromptMS float64 `json:"prompt_ms"`
  402. }
  403. }
  404. const maxBufferSize = 512 * format.KiloByte
  405. func (llm *llama) Predict(ctx context.Context, prevContext []int, prompt string, fn func(api.GenerateResponse)) error {
  406. prevConvo, err := llm.Decode(ctx, prevContext)
  407. if err != nil {
  408. return err
  409. }
  410. // Remove leading spaces from prevConvo if present
  411. prevConvo = strings.TrimPrefix(prevConvo, " ")
  412. var nextContext strings.Builder
  413. nextContext.WriteString(prevConvo)
  414. nextContext.WriteString(prompt)
  415. request := map[string]any{
  416. "prompt": nextContext.String(),
  417. "stream": true,
  418. "n_predict": llm.NumPredict,
  419. "n_keep": llm.NumKeep,
  420. "temperature": llm.Temperature,
  421. "top_k": llm.TopK,
  422. "top_p": llm.TopP,
  423. "tfs_z": llm.TFSZ,
  424. "typical_p": llm.TypicalP,
  425. "repeat_last_n": llm.RepeatLastN,
  426. "repeat_penalty": llm.RepeatPenalty,
  427. "presence_penalty": llm.PresencePenalty,
  428. "frequency_penalty": llm.FrequencyPenalty,
  429. "mirostat": llm.Mirostat,
  430. "mirostat_tau": llm.MirostatTau,
  431. "mirostat_eta": llm.MirostatEta,
  432. "penalize_nl": llm.PenalizeNewline,
  433. "seed": llm.Seed,
  434. "stop": llm.Stop,
  435. }
  436. // Handling JSON marshaling with special characters unescaped.
  437. buffer := &bytes.Buffer{}
  438. enc := json.NewEncoder(buffer)
  439. enc.SetEscapeHTML(false)
  440. if err := enc.Encode(request); err != nil {
  441. return fmt.Errorf("failed to marshal data: %v", err)
  442. }
  443. endpoint := fmt.Sprintf("http://127.0.0.1:%d/completion", llm.Port)
  444. req, err := http.NewRequestWithContext(ctx, http.MethodPost, endpoint, buffer)
  445. if err != nil {
  446. return fmt.Errorf("error creating POST request: %v", err)
  447. }
  448. req.Header.Set("Content-Type", "application/json")
  449. resp, err := http.DefaultClient.Do(req)
  450. if err != nil {
  451. return fmt.Errorf("POST predict: %v", err)
  452. }
  453. defer resp.Body.Close()
  454. if resp.StatusCode >= 400 {
  455. bodyBytes, err := io.ReadAll(resp.Body)
  456. if err != nil {
  457. return fmt.Errorf("failed reading llm error response: %w", err)
  458. }
  459. log.Printf("llm predict error: %s", bodyBytes)
  460. return fmt.Errorf("%s", bodyBytes)
  461. }
  462. scanner := bufio.NewScanner(resp.Body)
  463. // increase the buffer size to avoid running out of space
  464. buf := make([]byte, 0, maxBufferSize)
  465. scanner.Buffer(buf, maxBufferSize)
  466. for scanner.Scan() {
  467. select {
  468. case <-ctx.Done():
  469. // This handles the request cancellation
  470. return ctx.Err()
  471. default:
  472. line := scanner.Bytes()
  473. if len(line) == 0 {
  474. continue
  475. }
  476. if evt, ok := bytes.CutPrefix(line, []byte("data: ")); ok {
  477. var p prediction
  478. if err := json.Unmarshal(evt, &p); err != nil {
  479. return fmt.Errorf("error unmarshaling llm prediction response: %v", err)
  480. }
  481. if p.Content != "" {
  482. fn(api.GenerateResponse{Response: p.Content})
  483. nextContext.WriteString(p.Content)
  484. }
  485. if p.Stop {
  486. embd, err := llm.Encode(ctx, nextContext.String())
  487. if err != nil {
  488. return fmt.Errorf("encoding context: %v", err)
  489. }
  490. fn(api.GenerateResponse{
  491. Done: true,
  492. Context: embd,
  493. PromptEvalCount: p.Timings.PromptN,
  494. PromptEvalDuration: parseDurationMs(p.Timings.PromptMS),
  495. EvalCount: p.Timings.PredictedN,
  496. EvalDuration: parseDurationMs(p.Timings.PredictedMS),
  497. })
  498. return nil
  499. }
  500. }
  501. }
  502. }
  503. if err := scanner.Err(); err != nil {
  504. if strings.Contains(err.Error(), "unexpected EOF") {
  505. // this means the llama runner subprocess crashed
  506. llm.Close()
  507. if llm.StatusWriter != nil && llm.StatusWriter.LastErrMsg != "" {
  508. return fmt.Errorf("llama runner exited: %v", llm.StatusWriter.LastErrMsg)
  509. }
  510. return fmt.Errorf("llama runner exited, you may not have enough available memory to run this model")
  511. }
  512. return fmt.Errorf("error reading llm response: %v", err)
  513. }
  514. return nil
  515. }
  516. type TokenizeRequest struct {
  517. Content string `json:"content"`
  518. }
  519. type TokenizeResponse struct {
  520. Tokens []int `json:"tokens"`
  521. }
  522. func (llm *llama) Encode(ctx context.Context, prompt string) ([]int, error) {
  523. endpoint := fmt.Sprintf("http://127.0.0.1:%d/tokenize", llm.Port)
  524. data, err := json.Marshal(TokenizeRequest{Content: prompt})
  525. if err != nil {
  526. return nil, fmt.Errorf("marshaling encode data: %w", err)
  527. }
  528. req, err := http.NewRequestWithContext(ctx, http.MethodPost, endpoint, bytes.NewBuffer(data))
  529. if err != nil {
  530. return nil, fmt.Errorf("encode request: %w", err)
  531. }
  532. req.Header.Set("Content-Type", "application/json")
  533. resp, err := http.DefaultClient.Do(req)
  534. if err != nil {
  535. return nil, fmt.Errorf("do encode request: %w", err)
  536. }
  537. defer resp.Body.Close()
  538. body, err := io.ReadAll(resp.Body)
  539. if err != nil {
  540. return nil, fmt.Errorf("read encode request: %w", err)
  541. }
  542. if resp.StatusCode >= 400 {
  543. log.Printf("llm encode error: %s", body)
  544. return nil, fmt.Errorf("%s", body)
  545. }
  546. var encoded TokenizeResponse
  547. if err := json.Unmarshal(body, &encoded); err != nil {
  548. return nil, fmt.Errorf("unmarshal encode response: %w", err)
  549. }
  550. return encoded.Tokens, nil
  551. }
  552. type DetokenizeRequest struct {
  553. Tokens []int `json:"tokens"`
  554. }
  555. type DetokenizeResponse struct {
  556. Content string `json:"content"`
  557. }
  558. func (llm *llama) Decode(ctx context.Context, tokens []int) (string, error) {
  559. if len(tokens) == 0 {
  560. return "", nil
  561. }
  562. endpoint := fmt.Sprintf("http://127.0.0.1:%d/detokenize", llm.Port)
  563. data, err := json.Marshal(DetokenizeRequest{Tokens: tokens})
  564. if err != nil {
  565. return "", fmt.Errorf("marshaling decode data: %w", err)
  566. }
  567. req, err := http.NewRequestWithContext(ctx, http.MethodPost, endpoint, bytes.NewBuffer(data))
  568. if err != nil {
  569. return "", fmt.Errorf("decode request: %w", err)
  570. }
  571. req.Header.Set("Content-Type", "application/json")
  572. resp, err := http.DefaultClient.Do(req)
  573. if err != nil {
  574. return "", fmt.Errorf("do decode request: %w", err)
  575. }
  576. defer resp.Body.Close()
  577. body, err := io.ReadAll(resp.Body)
  578. if err != nil {
  579. return "", fmt.Errorf("read decode request: %w", err)
  580. }
  581. if resp.StatusCode >= 400 {
  582. log.Printf("llm decode error: %s", body)
  583. return "", fmt.Errorf("%s", body)
  584. }
  585. var decoded DetokenizeResponse
  586. if err := json.Unmarshal(body, &decoded); err != nil {
  587. return "", fmt.Errorf("unmarshal encode response: %w", err)
  588. }
  589. return decoded.Content, nil
  590. }
  591. type EmbeddingRequest struct {
  592. Content string `json:"content"`
  593. }
  594. type EmbeddingResponse struct {
  595. Embedding []float64 `json:"embedding"`
  596. }
  597. func (llm *llama) Embedding(ctx context.Context, input string) ([]float64, error) {
  598. endpoint := fmt.Sprintf("http://127.0.0.1:%d/embedding", llm.Port)
  599. data, err := json.Marshal(TokenizeRequest{Content: input})
  600. if err != nil {
  601. return nil, fmt.Errorf("error marshaling embed data: %w", err)
  602. }
  603. req, err := http.NewRequestWithContext(ctx, http.MethodPost, endpoint, bytes.NewBuffer(data))
  604. if err != nil {
  605. return nil, fmt.Errorf("error creating embed request: %w", err)
  606. }
  607. req.Header.Set("Content-Type", "application/json")
  608. resp, err := http.DefaultClient.Do(req)
  609. if err != nil {
  610. return nil, fmt.Errorf("POST embedding: %w", err)
  611. }
  612. defer resp.Body.Close()
  613. body, err := io.ReadAll(resp.Body)
  614. if err != nil {
  615. return nil, fmt.Errorf("error reading embed response: %w", err)
  616. }
  617. if resp.StatusCode >= 400 {
  618. log.Printf("llm encode error: %s", body)
  619. return nil, fmt.Errorf("%s", body)
  620. }
  621. var embedding EmbeddingResponse
  622. if err := json.Unmarshal(body, &embedding); err != nil {
  623. return nil, fmt.Errorf("unmarshal tokenize response: %w", err)
  624. }
  625. return embedding.Embedding, nil
  626. }
  627. // Ping checks that the server subprocess is still running and responding to requests
  628. func (llm *llama) Ping(ctx context.Context) error {
  629. resp, err := http.Head(fmt.Sprintf("http://127.0.0.1:%d", llm.Port))
  630. if err != nil {
  631. return fmt.Errorf("ping resp: %w", err)
  632. }
  633. if resp.StatusCode != http.StatusOK {
  634. return fmt.Errorf("unexpected ping status: %s", resp.Status)
  635. }
  636. return nil
  637. }