Wideband autonomous SDR analysis engine forked from sdr-visual-suite
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  1. package recorder
  2. import (
  3. "bufio"
  4. "encoding/binary"
  5. "encoding/json"
  6. "errors"
  7. "fmt"
  8. "log"
  9. "math"
  10. "os"
  11. "path/filepath"
  12. "strings"
  13. "sync"
  14. "time"
  15. "sdr-wideband-suite/internal/classifier"
  16. "sdr-wideband-suite/internal/demod"
  17. "sdr-wideband-suite/internal/detector"
  18. "sdr-wideband-suite/internal/dsp"
  19. )
  20. // ---------------------------------------------------------------------------
  21. // streamSession — one open demod session for one signal
  22. // ---------------------------------------------------------------------------
  23. type streamSession struct {
  24. signalID int64
  25. centerHz float64
  26. bwHz float64
  27. snrDb float64
  28. peakDb float64
  29. class *classifier.Classification
  30. startTime time.Time
  31. lastFeed time.Time
  32. playbackMode string
  33. stereoState string
  34. // listenOnly sessions have no WAV file and no disk I/O.
  35. // They exist solely to feed audio to live-listen subscribers.
  36. listenOnly bool
  37. // Recording state (nil/zero for listen-only sessions)
  38. dir string
  39. wavFile *os.File
  40. wavBuf *bufio.Writer
  41. wavSamples int64
  42. segmentIdx int
  43. sampleRate int // actual output audio sample rate (always streamAudioRate)
  44. channels int
  45. demodName string
  46. // --- Persistent DSP state for click-free streaming ---
  47. // Overlap-save: tail of previous extracted IQ snippet.
  48. overlapIQ []complex64
  49. // De-emphasis IIR state (persists across frames)
  50. deemphL float64
  51. deemphR float64
  52. // Stereo lock state for live WFM streaming
  53. stereoEnabled bool
  54. stereoOnCount int
  55. stereoOffCount int
  56. // Pilot-locked stereo PLL state (19kHz pilot)
  57. pilotPhase float64
  58. pilotFreq float64
  59. pilotAlpha float64
  60. pilotBeta float64
  61. pilotErrAvg float64
  62. pilotI float64
  63. pilotQ float64
  64. pilotLPAlpha float64
  65. // Polyphase resampler (replaces integer-decimate hack)
  66. monoResampler *dsp.Resampler
  67. monoResamplerRate int
  68. stereoResampler *dsp.StereoResampler
  69. stereoResamplerRate int
  70. // AQ-4: Stateful FIR filters for click-free stereo decode
  71. stereoFilterRate int
  72. stereoLPF *dsp.StatefulFIRReal // 15kHz lowpass for L+R
  73. stereoBPHi *dsp.StatefulFIRReal // 53kHz LP for bandpass high
  74. stereoBPLo *dsp.StatefulFIRReal // 23kHz LP for bandpass low
  75. stereoLRLPF *dsp.StatefulFIRReal // 15kHz LP for demodulated L-R
  76. stereoAALPF *dsp.StatefulFIRReal // Anti-alias LP for pre-decim (mono path)
  77. pilotLPFHi *dsp.StatefulFIRReal // ~21kHz LP for pilot bandpass high
  78. pilotLPFLo *dsp.StatefulFIRReal // ~17kHz LP for pilot bandpass low
  79. // Stateful pre-demod anti-alias FIR (eliminates cold-start transients
  80. // and avoids per-frame FIR recomputation)
  81. preDemodFIR *dsp.StatefulFIRComplex
  82. preDemodDecim int // cached decimation factor
  83. preDemodRate int // cached snipRate this FIR was built for
  84. preDemodCutoff float64 // cached cutoff
  85. // AQ-2: De-emphasis config (µs, 0 = disabled)
  86. deemphasisUs float64
  87. // Scratch buffers — reused across frames to avoid GC pressure.
  88. // Grown as needed, never shrunk.
  89. scratchIQ []complex64 // for pre-demod FIR output + decimate input
  90. scratchAudio []float32 // for stereo decode intermediates
  91. scratchPCM []byte // for PCM encoding
  92. // live-listen subscribers
  93. audioSubs []audioSub
  94. }
  95. type audioSub struct {
  96. id int64
  97. ch chan []byte
  98. }
  99. type RuntimeSignalInfo struct {
  100. DemodName string
  101. PlaybackMode string
  102. StereoState string
  103. Channels int
  104. SampleRate int
  105. }
  106. // AudioInfo describes the audio format of a live-listen subscription.
  107. // Sent to the WebSocket client as the first message.
  108. type AudioInfo struct {
  109. SampleRate int `json:"sample_rate"`
  110. Channels int `json:"channels"`
  111. Format string `json:"format"` // always "s16le"
  112. DemodName string `json:"demod"`
  113. PlaybackMode string `json:"playback_mode,omitempty"`
  114. StereoState string `json:"stereo_state,omitempty"`
  115. }
  116. const (
  117. streamAudioRate = 48000
  118. resamplerTaps = 32 // taps per polyphase arm — good quality
  119. )
  120. // ---------------------------------------------------------------------------
  121. // Streamer — manages all active streaming sessions
  122. // ---------------------------------------------------------------------------
  123. type streamFeedItem struct {
  124. signal detector.Signal
  125. snippet []complex64
  126. snipRate int
  127. }
  128. type streamFeedMsg struct {
  129. items []streamFeedItem
  130. }
  131. type Streamer struct {
  132. mu sync.Mutex
  133. sessions map[int64]*streamSession
  134. policy Policy
  135. centerHz float64
  136. nextSub int64
  137. feedCh chan streamFeedMsg
  138. done chan struct{}
  139. // pendingListens are subscribers waiting for a matching session.
  140. pendingListens map[int64]*pendingListen
  141. }
  142. type pendingListen struct {
  143. freq float64
  144. bw float64
  145. mode string
  146. ch chan []byte
  147. }
  148. func newStreamer(policy Policy, centerHz float64) *Streamer {
  149. st := &Streamer{
  150. sessions: make(map[int64]*streamSession),
  151. policy: policy,
  152. centerHz: centerHz,
  153. feedCh: make(chan streamFeedMsg, 2),
  154. done: make(chan struct{}),
  155. pendingListens: make(map[int64]*pendingListen),
  156. }
  157. go st.worker()
  158. return st
  159. }
  160. func (st *Streamer) worker() {
  161. for msg := range st.feedCh {
  162. st.processFeed(msg)
  163. }
  164. close(st.done)
  165. }
  166. func (st *Streamer) updatePolicy(policy Policy, centerHz float64) {
  167. st.mu.Lock()
  168. defer st.mu.Unlock()
  169. wasEnabled := st.policy.Enabled
  170. st.policy = policy
  171. st.centerHz = centerHz
  172. // If recording was just disabled, close recording sessions
  173. // but keep listen-only sessions alive.
  174. if wasEnabled && !policy.Enabled {
  175. for id, sess := range st.sessions {
  176. if sess.listenOnly {
  177. continue
  178. }
  179. if len(sess.audioSubs) > 0 {
  180. // Convert to listen-only: close WAV but keep session
  181. convertToListenOnly(sess)
  182. } else {
  183. closeSession(sess, &st.policy)
  184. delete(st.sessions, id)
  185. }
  186. }
  187. }
  188. }
  189. // HasListeners returns true if any sessions have audio subscribers
  190. // or there are pending listen requests. Used by the DSP loop to
  191. // decide whether to feed snippets even when recording is disabled.
  192. func (st *Streamer) HasListeners() bool {
  193. st.mu.Lock()
  194. defer st.mu.Unlock()
  195. return st.hasListenersLocked()
  196. }
  197. func (st *Streamer) hasListenersLocked() bool {
  198. if len(st.pendingListens) > 0 {
  199. return true
  200. }
  201. for _, sess := range st.sessions {
  202. if len(sess.audioSubs) > 0 {
  203. return true
  204. }
  205. }
  206. return false
  207. }
  208. // FeedSnippets is called from the DSP loop with pre-extracted IQ snippets.
  209. // Feeds are accepted if:
  210. // - Recording is enabled (policy.Enabled && RecordAudio/RecordIQ), OR
  211. // - Any live-listen subscribers exist (listen-only mode)
  212. //
  213. // IMPORTANT: The caller (Manager.FeedSnippets) already copies the snippet
  214. // data, so items can be passed directly without another copy.
  215. func (st *Streamer) FeedSnippets(items []streamFeedItem) {
  216. st.mu.Lock()
  217. recEnabled := st.policy.Enabled && (st.policy.RecordAudio || st.policy.RecordIQ)
  218. hasListeners := st.hasListenersLocked()
  219. pending := len(st.pendingListens)
  220. st.mu.Unlock()
  221. log.Printf("LIVEAUDIO STREAM: feedSnippets items=%d recEnabled=%v hasListeners=%v pending=%d", len(items), recEnabled, hasListeners, pending)
  222. if (!recEnabled && !hasListeners) || len(items) == 0 {
  223. return
  224. }
  225. select {
  226. case st.feedCh <- streamFeedMsg{items: items}:
  227. default:
  228. }
  229. }
  230. // processFeed runs in the worker goroutine.
  231. func (st *Streamer) processFeed(msg streamFeedMsg) {
  232. st.mu.Lock()
  233. defer st.mu.Unlock()
  234. recEnabled := st.policy.Enabled && (st.policy.RecordAudio || st.policy.RecordIQ)
  235. hasListeners := st.hasListenersLocked()
  236. if !recEnabled && !hasListeners {
  237. return
  238. }
  239. now := time.Now()
  240. seen := make(map[int64]bool, len(msg.items))
  241. for i := range msg.items {
  242. item := &msg.items[i]
  243. sig := &item.signal
  244. seen[sig.ID] = true
  245. if sig.ID == 0 || sig.Class == nil {
  246. continue
  247. }
  248. if len(item.snippet) == 0 || item.snipRate <= 0 {
  249. continue
  250. }
  251. // Decide whether this signal needs a session
  252. needsRecording := recEnabled && sig.SNRDb >= st.policy.MinSNRDb && st.classAllowed(sig.Class)
  253. needsListen := st.signalHasListenerLocked(sig)
  254. className := "<nil>"
  255. demodName := ""
  256. if sig.Class != nil {
  257. className = string(sig.Class.ModType)
  258. demodName, _ = resolveDemod(sig)
  259. }
  260. log.Printf("LIVEAUDIO STREAM: signal id=%d center=%.3fMHz bw=%.0f snr=%.1f class=%s demod=%s needsRecord=%v needsListen=%v", sig.ID, sig.CenterHz/1e6, sig.BWHz, sig.SNRDb, className, demodName, needsRecording, needsListen)
  261. if !needsRecording && !needsListen {
  262. continue
  263. }
  264. sess, exists := st.sessions[sig.ID]
  265. requestedMode := ""
  266. for _, pl := range st.pendingListens {
  267. if math.Abs(sig.CenterHz-pl.freq) < 200000 {
  268. if m := normalizeRequestedMode(pl.mode); m != "" {
  269. requestedMode = m
  270. break
  271. }
  272. }
  273. }
  274. if exists && sess.listenOnly && requestedMode != "" && sess.demodName != requestedMode {
  275. for _, sub := range sess.audioSubs {
  276. st.pendingListens[sub.id] = &pendingListen{freq: sig.CenterHz, bw: sig.BWHz, mode: requestedMode, ch: sub.ch}
  277. }
  278. delete(st.sessions, sig.ID)
  279. sess = nil
  280. exists = false
  281. }
  282. if !exists {
  283. if needsRecording {
  284. s, err := st.openRecordingSession(sig, now)
  285. if err != nil {
  286. log.Printf("STREAM: open failed signal=%d %.1fMHz: %v",
  287. sig.ID, sig.CenterHz/1e6, err)
  288. continue
  289. }
  290. st.sessions[sig.ID] = s
  291. sess = s
  292. } else {
  293. s := st.openListenSession(sig, now)
  294. st.sessions[sig.ID] = s
  295. sess = s
  296. }
  297. // Attach any pending listeners
  298. st.attachPendingListeners(sess)
  299. }
  300. // Update metadata
  301. sess.lastFeed = now
  302. sess.centerHz = sig.CenterHz
  303. sess.bwHz = sig.BWHz
  304. if sig.SNRDb > sess.snrDb {
  305. sess.snrDb = sig.SNRDb
  306. }
  307. if sig.PeakDb > sess.peakDb {
  308. sess.peakDb = sig.PeakDb
  309. }
  310. if sig.Class != nil {
  311. sess.class = sig.Class
  312. }
  313. // Demod with persistent state
  314. audio, audioRate := sess.processSnippet(item.snippet, item.snipRate)
  315. if len(audio) > 0 {
  316. if sess.wavSamples == 0 && audioRate > 0 {
  317. sess.sampleRate = audioRate
  318. }
  319. // Encode PCM once into scratch buffer, reuse for both WAV and fanout
  320. pcmLen := len(audio) * 2
  321. pcm := sess.growPCM(pcmLen)
  322. for k, s := range audio {
  323. v := int16(clip(s * 32767))
  324. binary.LittleEndian.PutUint16(pcm[k*2:], uint16(v))
  325. }
  326. if !sess.listenOnly && sess.wavBuf != nil {
  327. n, err := sess.wavBuf.Write(pcm)
  328. if err != nil {
  329. log.Printf("STREAM: write error signal=%d: %v", sess.signalID, err)
  330. } else {
  331. sess.wavSamples += int64(n / 2)
  332. }
  333. }
  334. st.fanoutPCM(sess, pcm, pcmLen)
  335. }
  336. // Segment split (recording sessions only)
  337. if !sess.listenOnly && st.policy.MaxDuration > 0 && now.Sub(sess.startTime) >= st.policy.MaxDuration {
  338. segIdx := sess.segmentIdx + 1
  339. oldSubs := sess.audioSubs
  340. oldState := sess.captureDSPState()
  341. sess.audioSubs = nil
  342. closeSession(sess, &st.policy)
  343. s, err := st.openRecordingSession(sig, now)
  344. if err != nil {
  345. delete(st.sessions, sig.ID)
  346. continue
  347. }
  348. s.segmentIdx = segIdx
  349. s.audioSubs = oldSubs
  350. s.restoreDSPState(oldState)
  351. st.sessions[sig.ID] = s
  352. }
  353. }
  354. // Close sessions for disappeared signals (with grace period)
  355. for id, sess := range st.sessions {
  356. if seen[id] {
  357. continue
  358. }
  359. gracePeriod := 3 * time.Second
  360. if sess.listenOnly {
  361. gracePeriod = 5 * time.Second
  362. }
  363. if now.Sub(sess.lastFeed) > gracePeriod {
  364. for _, sub := range sess.audioSubs {
  365. close(sub.ch)
  366. }
  367. sess.audioSubs = nil
  368. if !sess.listenOnly {
  369. closeSession(sess, &st.policy)
  370. }
  371. delete(st.sessions, id)
  372. }
  373. }
  374. }
  375. func (st *Streamer) signalHasListenerLocked(sig *detector.Signal) bool {
  376. if sess, ok := st.sessions[sig.ID]; ok && len(sess.audioSubs) > 0 {
  377. log.Printf("LIVEAUDIO MATCH: signal id=%d matched existing session listener center=%.3fMHz", sig.ID, sig.CenterHz/1e6)
  378. return true
  379. }
  380. for subID, pl := range st.pendingListens {
  381. delta := math.Abs(sig.CenterHz - pl.freq)
  382. if delta < 200000 {
  383. log.Printf("LIVEAUDIO MATCH: signal id=%d matched pending subscriber=%d center=%.3fMHz req=%.3fMHz delta=%.0fHz", sig.ID, subID, sig.CenterHz/1e6, pl.freq/1e6, delta)
  384. return true
  385. }
  386. }
  387. return false
  388. }
  389. func (st *Streamer) attachPendingListeners(sess *streamSession) {
  390. for subID, pl := range st.pendingListens {
  391. requestedMode := normalizeRequestedMode(pl.mode)
  392. if requestedMode != "" && sess.demodName != requestedMode {
  393. continue
  394. }
  395. if math.Abs(sess.centerHz-pl.freq) < 200000 {
  396. sess.audioSubs = append(sess.audioSubs, audioSub{id: subID, ch: pl.ch})
  397. delete(st.pendingListens, subID)
  398. // Send updated audio_info now that we know the real session params.
  399. // Prefix with 0x00 tag byte so ws/audio handler sends as TextMessage.
  400. infoJSON, _ := json.Marshal(sess.audioInfo())
  401. tagged := make([]byte, 1+len(infoJSON))
  402. tagged[0] = 0x00 // tag: audio_info
  403. copy(tagged[1:], infoJSON)
  404. select {
  405. case pl.ch <- tagged:
  406. default:
  407. }
  408. log.Printf("STREAM: attached pending listener %d to signal %d (%.1fMHz %s ch=%d)",
  409. subID, sess.signalID, sess.centerHz/1e6, sess.demodName, sess.channels)
  410. }
  411. }
  412. }
  413. // CloseAll finalises all sessions and stops the worker goroutine.
  414. func (st *Streamer) RuntimeInfoBySignalID() map[int64]RuntimeSignalInfo {
  415. st.mu.Lock()
  416. defer st.mu.Unlock()
  417. out := make(map[int64]RuntimeSignalInfo, len(st.sessions))
  418. for _, sess := range st.sessions {
  419. out[sess.signalID] = RuntimeSignalInfo{
  420. DemodName: sess.demodName,
  421. PlaybackMode: sess.playbackMode,
  422. StereoState: sess.stereoState,
  423. Channels: sess.channels,
  424. SampleRate: sess.sampleRate,
  425. }
  426. }
  427. return out
  428. }
  429. func (st *Streamer) CloseAll() {
  430. close(st.feedCh)
  431. <-st.done
  432. st.mu.Lock()
  433. defer st.mu.Unlock()
  434. for id, sess := range st.sessions {
  435. for _, sub := range sess.audioSubs {
  436. close(sub.ch)
  437. }
  438. sess.audioSubs = nil
  439. if !sess.listenOnly {
  440. closeSession(sess, &st.policy)
  441. }
  442. delete(st.sessions, id)
  443. }
  444. for _, pl := range st.pendingListens {
  445. close(pl.ch)
  446. }
  447. st.pendingListens = nil
  448. }
  449. // ActiveSessions returns the number of open streaming sessions.
  450. func (st *Streamer) ActiveSessions() int {
  451. st.mu.Lock()
  452. defer st.mu.Unlock()
  453. return len(st.sessions)
  454. }
  455. // SubscribeAudio registers a live-listen subscriber for a given frequency.
  456. //
  457. // LL-2: Returns AudioInfo with correct channels and sample rate.
  458. // LL-3: Returns error only on hard failures (nil streamer etc).
  459. //
  460. // If a matching session exists, attaches immediately. Otherwise, the
  461. // subscriber is held as "pending" and will be attached when a matching
  462. // signal appears in the next DSP frame.
  463. func (st *Streamer) SubscribeAudio(freq float64, bw float64, mode string) (int64, <-chan []byte, AudioInfo, error) {
  464. ch := make(chan []byte, 64)
  465. st.mu.Lock()
  466. defer st.mu.Unlock()
  467. st.nextSub++
  468. subID := st.nextSub
  469. requestedMode := normalizeRequestedMode(mode)
  470. // Try to find a matching session
  471. var bestSess *streamSession
  472. bestDist := math.MaxFloat64
  473. for _, sess := range st.sessions {
  474. if requestedMode != "" && sess.demodName != requestedMode {
  475. continue
  476. }
  477. d := math.Abs(sess.centerHz - freq)
  478. if d < bestDist {
  479. bestDist = d
  480. bestSess = sess
  481. }
  482. }
  483. if bestSess != nil && bestDist < 200000 {
  484. bestSess.audioSubs = append(bestSess.audioSubs, audioSub{id: subID, ch: ch})
  485. info := bestSess.audioInfo()
  486. log.Printf("STREAM: subscriber %d attached to signal %d (%.1fMHz %s)",
  487. subID, bestSess.signalID, bestSess.centerHz/1e6, bestSess.demodName)
  488. return subID, ch, info, nil
  489. }
  490. // No matching session yet — add as pending listener
  491. st.pendingListens[subID] = &pendingListen{
  492. freq: freq,
  493. bw: bw,
  494. mode: mode,
  495. ch: ch,
  496. }
  497. info := defaultAudioInfoForMode(mode)
  498. log.Printf("STREAM: subscriber %d pending (freq=%.1fMHz)", subID, freq/1e6)
  499. log.Printf("LIVEAUDIO MATCH: subscriber=%d pending req=%.3fMHz bw=%.0f mode=%s", subID, freq/1e6, bw, mode)
  500. return subID, ch, info, nil
  501. }
  502. // UnsubscribeAudio removes a live-listen subscriber.
  503. func (st *Streamer) UnsubscribeAudio(subID int64) {
  504. st.mu.Lock()
  505. defer st.mu.Unlock()
  506. if pl, ok := st.pendingListens[subID]; ok {
  507. close(pl.ch)
  508. delete(st.pendingListens, subID)
  509. return
  510. }
  511. for _, sess := range st.sessions {
  512. for i, sub := range sess.audioSubs {
  513. if sub.id == subID {
  514. close(sub.ch)
  515. sess.audioSubs = append(sess.audioSubs[:i], sess.audioSubs[i+1:]...)
  516. return
  517. }
  518. }
  519. }
  520. }
  521. // ---------------------------------------------------------------------------
  522. // Session: stateful extraction + demod
  523. // ---------------------------------------------------------------------------
  524. // processSnippet takes a pre-extracted IQ snippet and demodulates it with
  525. // persistent state. Uses stateful FIR + polyphase resampler for exact 48kHz
  526. // output with zero transient artifacts.
  527. func (sess *streamSession) processSnippet(snippet []complex64, snipRate int) ([]float32, int) {
  528. if len(snippet) == 0 || snipRate <= 0 {
  529. return nil, 0
  530. }
  531. isWFMStereo := sess.demodName == "WFM_STEREO"
  532. isWFM := sess.demodName == "WFM" || isWFMStereo
  533. demodName := sess.demodName
  534. if isWFMStereo {
  535. demodName = "WFM"
  536. }
  537. d := demod.Get(demodName)
  538. if d == nil {
  539. d = demod.Get("NFM")
  540. }
  541. if d == nil {
  542. return nil, 0
  543. }
  544. // --- FM discriminator overlap: prepend 1 sample from previous frame ---
  545. // The FM discriminator needs iq[i-1] to compute the first output.
  546. // All FIR filtering is now stateful, so no additional overlap is needed.
  547. var fullSnip []complex64
  548. trimSamples := 0
  549. if len(sess.overlapIQ) == 1 {
  550. fullSnip = make([]complex64, 1+len(snippet))
  551. fullSnip[0] = sess.overlapIQ[0]
  552. copy(fullSnip[1:], snippet)
  553. trimSamples = 1
  554. } else {
  555. fullSnip = snippet
  556. }
  557. // Save last sample for next frame's FM discriminator
  558. if len(snippet) > 0 {
  559. sess.overlapIQ = []complex64{snippet[len(snippet)-1]}
  560. }
  561. // --- Stateful anti-alias FIR + decimation to demod rate ---
  562. demodRate := d.OutputSampleRate()
  563. decim1 := int(math.Round(float64(snipRate) / float64(demodRate)))
  564. if decim1 < 1 {
  565. decim1 = 1
  566. }
  567. actualDemodRate := snipRate / decim1
  568. var dec []complex64
  569. if decim1 > 1 {
  570. cutoff := float64(actualDemodRate) / 2.0 * 0.8
  571. // Lazy-init or reinit stateful FIR if parameters changed
  572. if sess.preDemodFIR == nil || sess.preDemodRate != snipRate || sess.preDemodCutoff != cutoff {
  573. taps := dsp.LowpassFIR(cutoff, snipRate, 101)
  574. sess.preDemodFIR = dsp.NewStatefulFIRComplex(taps)
  575. sess.preDemodRate = snipRate
  576. sess.preDemodCutoff = cutoff
  577. sess.preDemodDecim = decim1
  578. }
  579. filtered := sess.preDemodFIR.ProcessInto(fullSnip, sess.growIQ(len(fullSnip)))
  580. dec = dsp.Decimate(filtered, decim1)
  581. } else {
  582. dec = fullSnip
  583. }
  584. // --- FM Demod ---
  585. audio := d.Demod(dec, actualDemodRate)
  586. if len(audio) == 0 {
  587. return nil, 0
  588. }
  589. // --- Trim the 1-sample FM discriminator overlap ---
  590. if trimSamples > 0 {
  591. audioTrim := trimSamples / decim1
  592. if audioTrim < 1 {
  593. audioTrim = 1 // at minimum trim 1 audio sample
  594. }
  595. if audioTrim > 0 && audioTrim < len(audio) {
  596. audio = audio[audioTrim:]
  597. }
  598. }
  599. // --- Stateful stereo decode with conservative lock/hysteresis ---
  600. channels := 1
  601. if isWFMStereo {
  602. sess.playbackMode = "WFM_STEREO"
  603. channels = 2 // keep transport format stable for live WFM_STEREO sessions
  604. stereoAudio, locked := sess.stereoDecodeStateful(audio, actualDemodRate)
  605. if locked {
  606. sess.stereoOnCount++
  607. sess.stereoOffCount = 0
  608. if sess.stereoOnCount >= 4 {
  609. sess.stereoEnabled = true
  610. }
  611. } else {
  612. sess.stereoOnCount = 0
  613. sess.stereoOffCount++
  614. if sess.stereoOffCount >= 10 {
  615. sess.stereoEnabled = false
  616. }
  617. }
  618. prevPlayback := sess.playbackMode
  619. prevStereo := sess.stereoState
  620. if sess.stereoEnabled && len(stereoAudio) > 0 {
  621. sess.stereoState = "locked"
  622. audio = stereoAudio
  623. } else {
  624. sess.stereoState = "mono-fallback"
  625. dual := make([]float32, len(audio)*2)
  626. for i, s := range audio {
  627. dual[i*2] = s
  628. dual[i*2+1] = s
  629. }
  630. audio = dual
  631. }
  632. if (prevPlayback != sess.playbackMode || prevStereo != sess.stereoState) && len(sess.audioSubs) > 0 {
  633. sendAudioInfo(sess.audioSubs, sess.audioInfo())
  634. }
  635. }
  636. // --- Polyphase resample to exact 48kHz ---
  637. if actualDemodRate != streamAudioRate {
  638. if channels > 1 {
  639. if sess.stereoResampler == nil || sess.stereoResamplerRate != actualDemodRate {
  640. sess.stereoResampler = dsp.NewStereoResampler(actualDemodRate, streamAudioRate, resamplerTaps)
  641. sess.stereoResamplerRate = actualDemodRate
  642. }
  643. audio = sess.stereoResampler.Process(audio)
  644. } else {
  645. if sess.monoResampler == nil || sess.monoResamplerRate != actualDemodRate {
  646. sess.monoResampler = dsp.NewResampler(actualDemodRate, streamAudioRate, resamplerTaps)
  647. sess.monoResamplerRate = actualDemodRate
  648. }
  649. audio = sess.monoResampler.Process(audio)
  650. }
  651. }
  652. // --- De-emphasis (configurable: 50µs Europe, 75µs US/Japan, 0=disabled) ---
  653. if isWFM && sess.deemphasisUs > 0 && streamAudioRate > 0 {
  654. tau := sess.deemphasisUs * 1e-6
  655. alpha := math.Exp(-1.0 / (float64(streamAudioRate) * tau))
  656. if channels > 1 {
  657. nFrames := len(audio) / channels
  658. yL, yR := sess.deemphL, sess.deemphR
  659. for i := 0; i < nFrames; i++ {
  660. yL = alpha*yL + (1-alpha)*float64(audio[i*2])
  661. audio[i*2] = float32(yL)
  662. yR = alpha*yR + (1-alpha)*float64(audio[i*2+1])
  663. audio[i*2+1] = float32(yR)
  664. }
  665. sess.deemphL, sess.deemphR = yL, yR
  666. } else {
  667. y := sess.deemphL
  668. for i := range audio {
  669. y = alpha*y + (1-alpha)*float64(audio[i])
  670. audio[i] = float32(y)
  671. }
  672. sess.deemphL = y
  673. }
  674. }
  675. if isWFM {
  676. for i := range audio {
  677. audio[i] *= 0.35
  678. }
  679. }
  680. return audio, streamAudioRate
  681. }
  682. // pllCoefficients returns the proportional (alpha) and integral (beta) gains
  683. // for a Type-II PLL using the specified loop bandwidth and damping factor.
  684. // loopBW is in Hz, sampleRate in samples/sec.
  685. func pllCoefficients(loopBW, damping float64, sampleRate int) (float64, float64) {
  686. if sampleRate <= 0 || loopBW <= 0 {
  687. return 0, 0
  688. }
  689. bl := loopBW / float64(sampleRate)
  690. theta := bl / (damping + 0.25/damping)
  691. d := 1 + 2*damping*theta + theta*theta
  692. alpha := (4 * damping * theta) / d
  693. beta := (4 * theta * theta) / d
  694. return alpha, beta
  695. }
  696. // stereoDecodeStateful: pilot-locked 38kHz oscillator for L-R extraction.
  697. // Uses persistent FIR filter state across frames for click-free stereo.
  698. // Reuses session scratch buffers to minimize allocations.
  699. func (sess *streamSession) stereoDecodeStateful(mono []float32, sampleRate int) ([]float32, bool) {
  700. if len(mono) == 0 || sampleRate <= 0 {
  701. return nil, false
  702. }
  703. n := len(mono)
  704. // Rebuild rate-dependent stereo filters when sampleRate changes
  705. if sess.stereoLPF == nil || sess.stereoFilterRate != sampleRate {
  706. lp := dsp.LowpassFIR(15000, sampleRate, 101)
  707. sess.stereoLPF = dsp.NewStatefulFIRReal(lp)
  708. sess.stereoBPHi = dsp.NewStatefulFIRReal(dsp.LowpassFIR(53000, sampleRate, 101))
  709. sess.stereoBPLo = dsp.NewStatefulFIRReal(dsp.LowpassFIR(23000, sampleRate, 101))
  710. sess.stereoLRLPF = dsp.NewStatefulFIRReal(lp)
  711. // Narrow pilot bandpass via LPF(21k)-LPF(17k).
  712. sess.pilotLPFHi = dsp.NewStatefulFIRReal(dsp.LowpassFIR(21000, sampleRate, 101))
  713. sess.pilotLPFLo = dsp.NewStatefulFIRReal(dsp.LowpassFIR(17000, sampleRate, 101))
  714. sess.stereoFilterRate = sampleRate
  715. // Initialize PLL for 19kHz pilot tracking.
  716. sess.pilotPhase = 0
  717. sess.pilotFreq = 2 * math.Pi * 19000 / float64(sampleRate)
  718. sess.pilotAlpha, sess.pilotBeta = pllCoefficients(50, 0.707, sampleRate)
  719. sess.pilotErrAvg = 0
  720. sess.pilotI = 0
  721. sess.pilotQ = 0
  722. sess.pilotLPAlpha = 1 - math.Exp(-2*math.Pi*200/float64(sampleRate))
  723. }
  724. // Reuse scratch for intermediates: lpr, bpfLR, lr, work1, work2.
  725. scratch := sess.growAudio(n * 5)
  726. lpr := scratch[:n]
  727. bpfLR := scratch[n : 2*n]
  728. lr := scratch[2*n : 3*n]
  729. work1 := scratch[3*n : 4*n]
  730. work2 := scratch[4*n : 5*n]
  731. sess.stereoLPF.ProcessInto(mono, lpr)
  732. // 23-53kHz bandpass for L-R DSB-SC.
  733. sess.stereoBPHi.ProcessInto(mono, work1)
  734. sess.stereoBPLo.ProcessInto(mono, work2)
  735. for i := 0; i < n; i++ {
  736. bpfLR[i] = work1[i] - work2[i]
  737. }
  738. // 19kHz pilot bandpass for PLL.
  739. sess.pilotLPFHi.ProcessInto(mono, work1)
  740. sess.pilotLPFLo.ProcessInto(mono, work2)
  741. for i := 0; i < n; i++ {
  742. work1[i] = work1[i] - work2[i]
  743. }
  744. pilot := work1
  745. phase := sess.pilotPhase
  746. freq := sess.pilotFreq
  747. alpha := sess.pilotAlpha
  748. beta := sess.pilotBeta
  749. iState := sess.pilotI
  750. qState := sess.pilotQ
  751. lpAlpha := sess.pilotLPAlpha
  752. minFreq := 2 * math.Pi * 17000 / float64(sampleRate)
  753. maxFreq := 2 * math.Pi * 21000 / float64(sampleRate)
  754. var pilotPower float64
  755. var totalPower float64
  756. var errSum float64
  757. for i := 0; i < n; i++ {
  758. p := float64(pilot[i])
  759. sinP, cosP := math.Sincos(phase)
  760. iMix := p * cosP
  761. qMix := p * -sinP
  762. iState += lpAlpha * (iMix - iState)
  763. qState += lpAlpha * (qMix - qState)
  764. err := math.Atan2(qState, iState)
  765. freq += beta * err
  766. if freq < minFreq {
  767. freq = minFreq
  768. } else if freq > maxFreq {
  769. freq = maxFreq
  770. }
  771. phase += freq + alpha*err
  772. if phase > 2*math.Pi {
  773. phase -= 2 * math.Pi
  774. } else if phase < 0 {
  775. phase += 2 * math.Pi
  776. }
  777. totalPower += float64(mono[i]) * float64(mono[i])
  778. pilotPower += p * p
  779. errSum += math.Abs(err)
  780. lr[i] = bpfLR[i] * float32(2*math.Sin(2*phase))
  781. }
  782. sess.pilotPhase = phase
  783. sess.pilotFreq = freq
  784. sess.pilotI = iState
  785. sess.pilotQ = qState
  786. blockErr := errSum / float64(n)
  787. sess.pilotErrAvg = 0.9*sess.pilotErrAvg + 0.1*blockErr
  788. lr = sess.stereoLRLPF.ProcessInto(lr, lr)
  789. pilotRatio := 0.0
  790. if totalPower > 0 {
  791. pilotRatio = pilotPower / totalPower
  792. }
  793. freqHz := sess.pilotFreq * float64(sampleRate) / (2 * math.Pi)
  794. // Lock heuristics: pilot power fraction and PLL phase error stability.
  795. // Pilot power is a small but stable fraction of composite energy; require
  796. // a modest floor plus PLL settling to avoid flapping in noise.
  797. locked := pilotRatio > 0.003 && math.Abs(freqHz-19000) < 250 && sess.pilotErrAvg < 0.35
  798. out := make([]float32, n*2)
  799. for i := 0; i < n; i++ {
  800. out[i*2] = 0.5 * (lpr[i] + lr[i])
  801. out[i*2+1] = 0.5 * (lpr[i] - lr[i])
  802. }
  803. return out, locked
  804. }
  805. // dspStateSnapshot captures persistent DSP state for segment splits.
  806. type dspStateSnapshot struct {
  807. overlapIQ []complex64
  808. deemphL float64
  809. deemphR float64
  810. pilotPhase float64
  811. pilotFreq float64
  812. pilotAlpha float64
  813. pilotBeta float64
  814. pilotErrAvg float64
  815. pilotI float64
  816. pilotQ float64
  817. pilotLPAlpha float64
  818. monoResampler *dsp.Resampler
  819. monoResamplerRate int
  820. stereoResampler *dsp.StereoResampler
  821. stereoResamplerRate int
  822. stereoLPF *dsp.StatefulFIRReal
  823. stereoFilterRate int
  824. stereoBPHi *dsp.StatefulFIRReal
  825. stereoBPLo *dsp.StatefulFIRReal
  826. stereoLRLPF *dsp.StatefulFIRReal
  827. stereoAALPF *dsp.StatefulFIRReal
  828. pilotLPFHi *dsp.StatefulFIRReal
  829. pilotLPFLo *dsp.StatefulFIRReal
  830. preDemodFIR *dsp.StatefulFIRComplex
  831. preDemodDecim int
  832. preDemodRate int
  833. preDemodCutoff float64
  834. }
  835. func (sess *streamSession) captureDSPState() dspStateSnapshot {
  836. return dspStateSnapshot{
  837. overlapIQ: sess.overlapIQ,
  838. deemphL: sess.deemphL,
  839. deemphR: sess.deemphR,
  840. pilotPhase: sess.pilotPhase,
  841. pilotFreq: sess.pilotFreq,
  842. pilotAlpha: sess.pilotAlpha,
  843. pilotBeta: sess.pilotBeta,
  844. pilotErrAvg: sess.pilotErrAvg,
  845. pilotI: sess.pilotI,
  846. pilotQ: sess.pilotQ,
  847. pilotLPAlpha: sess.pilotLPAlpha,
  848. monoResampler: sess.monoResampler,
  849. monoResamplerRate: sess.monoResamplerRate,
  850. stereoResampler: sess.stereoResampler,
  851. stereoResamplerRate: sess.stereoResamplerRate,
  852. stereoLPF: sess.stereoLPF,
  853. stereoFilterRate: sess.stereoFilterRate,
  854. stereoBPHi: sess.stereoBPHi,
  855. stereoBPLo: sess.stereoBPLo,
  856. stereoLRLPF: sess.stereoLRLPF,
  857. stereoAALPF: sess.stereoAALPF,
  858. pilotLPFHi: sess.pilotLPFHi,
  859. pilotLPFLo: sess.pilotLPFLo,
  860. preDemodFIR: sess.preDemodFIR,
  861. preDemodDecim: sess.preDemodDecim,
  862. preDemodRate: sess.preDemodRate,
  863. preDemodCutoff: sess.preDemodCutoff,
  864. }
  865. }
  866. func (sess *streamSession) restoreDSPState(s dspStateSnapshot) {
  867. sess.overlapIQ = s.overlapIQ
  868. sess.deemphL = s.deemphL
  869. sess.deemphR = s.deemphR
  870. sess.pilotPhase = s.pilotPhase
  871. sess.pilotFreq = s.pilotFreq
  872. sess.pilotAlpha = s.pilotAlpha
  873. sess.pilotBeta = s.pilotBeta
  874. sess.pilotErrAvg = s.pilotErrAvg
  875. sess.pilotI = s.pilotI
  876. sess.pilotQ = s.pilotQ
  877. sess.pilotLPAlpha = s.pilotLPAlpha
  878. sess.monoResampler = s.monoResampler
  879. sess.monoResamplerRate = s.monoResamplerRate
  880. sess.stereoResampler = s.stereoResampler
  881. sess.stereoResamplerRate = s.stereoResamplerRate
  882. sess.stereoLPF = s.stereoLPF
  883. sess.stereoFilterRate = s.stereoFilterRate
  884. sess.stereoBPHi = s.stereoBPHi
  885. sess.stereoBPLo = s.stereoBPLo
  886. sess.stereoLRLPF = s.stereoLRLPF
  887. sess.stereoAALPF = s.stereoAALPF
  888. sess.pilotLPFHi = s.pilotLPFHi
  889. sess.pilotLPFLo = s.pilotLPFLo
  890. sess.preDemodFIR = s.preDemodFIR
  891. sess.preDemodDecim = s.preDemodDecim
  892. sess.preDemodRate = s.preDemodRate
  893. sess.preDemodCutoff = s.preDemodCutoff
  894. }
  895. // ---------------------------------------------------------------------------
  896. // Session management helpers
  897. // ---------------------------------------------------------------------------
  898. func (st *Streamer) openRecordingSession(sig *detector.Signal, now time.Time) (*streamSession, error) {
  899. outputDir := st.policy.OutputDir
  900. if outputDir == "" {
  901. outputDir = "data/recordings"
  902. }
  903. demodName, channels := resolveDemod(sig)
  904. dirName := fmt.Sprintf("%s_%.0fHz_stream%d",
  905. now.Format("2006-01-02T15-04-05"), sig.CenterHz, sig.ID)
  906. dir := filepath.Join(outputDir, dirName)
  907. if err := os.MkdirAll(dir, 0o755); err != nil {
  908. return nil, err
  909. }
  910. wavPath := filepath.Join(dir, "audio.wav")
  911. f, err := os.Create(wavPath)
  912. if err != nil {
  913. return nil, err
  914. }
  915. if err := writeStreamWAVHeader(f, streamAudioRate, channels); err != nil {
  916. f.Close()
  917. return nil, err
  918. }
  919. playbackMode, stereoState := initialPlaybackState(demodName)
  920. sess := &streamSession{
  921. signalID: sig.ID,
  922. centerHz: sig.CenterHz,
  923. bwHz: sig.BWHz,
  924. snrDb: sig.SNRDb,
  925. peakDb: sig.PeakDb,
  926. class: sig.Class,
  927. startTime: now,
  928. lastFeed: now,
  929. dir: dir,
  930. wavFile: f,
  931. wavBuf: bufio.NewWriterSize(f, 64*1024),
  932. sampleRate: streamAudioRate,
  933. channels: channels,
  934. demodName: demodName,
  935. playbackMode: playbackMode,
  936. stereoState: stereoState,
  937. deemphasisUs: st.policy.DeemphasisUs,
  938. }
  939. log.Printf("STREAM: opened recording signal=%d %.1fMHz %s dir=%s",
  940. sig.ID, sig.CenterHz/1e6, demodName, dirName)
  941. return sess, nil
  942. }
  943. func (st *Streamer) openListenSession(sig *detector.Signal, now time.Time) *streamSession {
  944. demodName, channels := resolveDemod(sig)
  945. for _, pl := range st.pendingListens {
  946. if math.Abs(sig.CenterHz-pl.freq) < 200000 {
  947. if requested := normalizeRequestedMode(pl.mode); requested != "" {
  948. demodName = requested
  949. if demodName == "WFM_STEREO" {
  950. channels = 2
  951. } else if d := demod.Get(demodName); d != nil {
  952. channels = d.Channels()
  953. } else {
  954. channels = 1
  955. }
  956. break
  957. }
  958. }
  959. }
  960. playbackMode, stereoState := initialPlaybackState(demodName)
  961. sess := &streamSession{
  962. signalID: sig.ID,
  963. centerHz: sig.CenterHz,
  964. bwHz: sig.BWHz,
  965. snrDb: sig.SNRDb,
  966. peakDb: sig.PeakDb,
  967. class: sig.Class,
  968. startTime: now,
  969. lastFeed: now,
  970. listenOnly: true,
  971. sampleRate: streamAudioRate,
  972. channels: channels,
  973. demodName: demodName,
  974. playbackMode: playbackMode,
  975. stereoState: stereoState,
  976. deemphasisUs: st.policy.DeemphasisUs,
  977. }
  978. log.Printf("STREAM: opened listen-only signal=%d %.1fMHz %s",
  979. sig.ID, sig.CenterHz/1e6, demodName)
  980. return sess
  981. }
  982. func resolveDemod(sig *detector.Signal) (string, int) {
  983. demodName := "NFM"
  984. if sig.Class != nil {
  985. if n := mapClassToDemod(sig.Class.ModType); n != "" {
  986. demodName = n
  987. }
  988. }
  989. channels := 1
  990. if demodName == "WFM_STEREO" {
  991. channels = 2
  992. } else if d := demod.Get(demodName); d != nil {
  993. channels = d.Channels()
  994. }
  995. return demodName, channels
  996. }
  997. func initialPlaybackState(demodName string) (string, string) {
  998. playbackMode := demodName
  999. stereoState := "mono"
  1000. if demodName == "WFM_STEREO" {
  1001. stereoState = "searching"
  1002. }
  1003. return playbackMode, stereoState
  1004. }
  1005. func (sess *streamSession) audioInfo() AudioInfo {
  1006. return AudioInfo{
  1007. SampleRate: sess.sampleRate,
  1008. Channels: sess.channels,
  1009. Format: "s16le",
  1010. DemodName: sess.demodName,
  1011. PlaybackMode: sess.playbackMode,
  1012. StereoState: sess.stereoState,
  1013. }
  1014. }
  1015. func sendAudioInfo(subs []audioSub, info AudioInfo) {
  1016. infoJSON, _ := json.Marshal(info)
  1017. tagged := make([]byte, 1+len(infoJSON))
  1018. tagged[0] = 0x00 // tag: audio_info
  1019. copy(tagged[1:], infoJSON)
  1020. for _, sub := range subs {
  1021. select {
  1022. case sub.ch <- tagged:
  1023. default:
  1024. }
  1025. }
  1026. }
  1027. func defaultAudioInfoForMode(mode string) AudioInfo {
  1028. demodName := "NFM"
  1029. if requested := normalizeRequestedMode(mode); requested != "" {
  1030. demodName = requested
  1031. }
  1032. channels := 1
  1033. if demodName == "WFM_STEREO" {
  1034. channels = 2
  1035. } else if d := demod.Get(demodName); d != nil {
  1036. channels = d.Channels()
  1037. }
  1038. playbackMode, stereoState := initialPlaybackState(demodName)
  1039. return AudioInfo{
  1040. SampleRate: streamAudioRate,
  1041. Channels: channels,
  1042. Format: "s16le",
  1043. DemodName: demodName,
  1044. PlaybackMode: playbackMode,
  1045. StereoState: stereoState,
  1046. }
  1047. }
  1048. func normalizeRequestedMode(mode string) string {
  1049. switch strings.ToUpper(strings.TrimSpace(mode)) {
  1050. case "", "AUTO":
  1051. return ""
  1052. case "WFM", "WFM_STEREO", "NFM", "AM", "USB", "LSB", "CW":
  1053. return strings.ToUpper(strings.TrimSpace(mode))
  1054. default:
  1055. return ""
  1056. }
  1057. }
  1058. // growIQ returns a complex64 slice of at least n elements, reusing sess.scratchIQ.
  1059. func (sess *streamSession) growIQ(n int) []complex64 {
  1060. if cap(sess.scratchIQ) >= n {
  1061. return sess.scratchIQ[:n]
  1062. }
  1063. sess.scratchIQ = make([]complex64, n, n*5/4)
  1064. return sess.scratchIQ
  1065. }
  1066. // growAudio returns a float32 slice of at least n elements, reusing sess.scratchAudio.
  1067. func (sess *streamSession) growAudio(n int) []float32 {
  1068. if cap(sess.scratchAudio) >= n {
  1069. return sess.scratchAudio[:n]
  1070. }
  1071. sess.scratchAudio = make([]float32, n, n*5/4)
  1072. return sess.scratchAudio
  1073. }
  1074. // growPCM returns a byte slice of at least n bytes, reusing sess.scratchPCM.
  1075. func (sess *streamSession) growPCM(n int) []byte {
  1076. if cap(sess.scratchPCM) >= n {
  1077. return sess.scratchPCM[:n]
  1078. }
  1079. sess.scratchPCM = make([]byte, n, n*5/4)
  1080. return sess.scratchPCM
  1081. }
  1082. func convertToListenOnly(sess *streamSession) {
  1083. if sess.wavBuf != nil {
  1084. _ = sess.wavBuf.Flush()
  1085. }
  1086. if sess.wavFile != nil {
  1087. fixStreamWAVHeader(sess.wavFile, sess.wavSamples, sess.sampleRate, sess.channels)
  1088. sess.wavFile.Close()
  1089. }
  1090. sess.wavFile = nil
  1091. sess.wavBuf = nil
  1092. sess.listenOnly = true
  1093. log.Printf("STREAM: converted signal=%d to listen-only", sess.signalID)
  1094. }
  1095. func closeSession(sess *streamSession, policy *Policy) {
  1096. if sess.listenOnly {
  1097. return
  1098. }
  1099. if sess.wavBuf != nil {
  1100. _ = sess.wavBuf.Flush()
  1101. }
  1102. if sess.wavFile != nil {
  1103. fixStreamWAVHeader(sess.wavFile, sess.wavSamples, sess.sampleRate, sess.channels)
  1104. sess.wavFile.Close()
  1105. sess.wavFile = nil
  1106. sess.wavBuf = nil
  1107. }
  1108. dur := sess.lastFeed.Sub(sess.startTime)
  1109. files := map[string]any{
  1110. "audio": "audio.wav",
  1111. "audio_sample_rate": sess.sampleRate,
  1112. "audio_channels": sess.channels,
  1113. "audio_demod": sess.demodName,
  1114. "recording_mode": "streaming",
  1115. }
  1116. meta := Meta{
  1117. EventID: sess.signalID,
  1118. Start: sess.startTime,
  1119. End: sess.lastFeed,
  1120. CenterHz: sess.centerHz,
  1121. BandwidthHz: sess.bwHz,
  1122. SampleRate: sess.sampleRate,
  1123. SNRDb: sess.snrDb,
  1124. PeakDb: sess.peakDb,
  1125. Class: sess.class,
  1126. DurationMs: dur.Milliseconds(),
  1127. Files: files,
  1128. }
  1129. b, err := json.MarshalIndent(meta, "", " ")
  1130. if err == nil {
  1131. _ = os.WriteFile(filepath.Join(sess.dir, "meta.json"), b, 0o644)
  1132. }
  1133. if policy != nil {
  1134. enforceQuota(policy.OutputDir, policy.MaxDiskMB)
  1135. }
  1136. }
  1137. func (st *Streamer) fanoutPCM(sess *streamSession, pcm []byte, pcmLen int) {
  1138. if len(sess.audioSubs) == 0 {
  1139. return
  1140. }
  1141. // Tag + copy for all subscribers: 0x01 prefix = PCM audio
  1142. tagged := make([]byte, 1+pcmLen)
  1143. tagged[0] = 0x01
  1144. copy(tagged[1:], pcm[:pcmLen])
  1145. alive := sess.audioSubs[:0]
  1146. for _, sub := range sess.audioSubs {
  1147. select {
  1148. case sub.ch <- tagged:
  1149. default:
  1150. }
  1151. alive = append(alive, sub)
  1152. }
  1153. sess.audioSubs = alive
  1154. }
  1155. func (st *Streamer) classAllowed(cls *classifier.Classification) bool {
  1156. if len(st.policy.ClassFilter) == 0 {
  1157. return true
  1158. }
  1159. if cls == nil {
  1160. return false
  1161. }
  1162. for _, f := range st.policy.ClassFilter {
  1163. if strings.EqualFold(f, string(cls.ModType)) {
  1164. return true
  1165. }
  1166. }
  1167. return false
  1168. }
  1169. // ErrNoSession is returned when no matching signal session exists.
  1170. var ErrNoSession = errors.New("no active or pending session for this frequency")
  1171. // ---------------------------------------------------------------------------
  1172. // WAV header helpers
  1173. // ---------------------------------------------------------------------------
  1174. func writeStreamWAVHeader(f *os.File, sampleRate int, channels int) error {
  1175. if channels <= 0 {
  1176. channels = 1
  1177. }
  1178. hdr := make([]byte, 44)
  1179. copy(hdr[0:4], "RIFF")
  1180. binary.LittleEndian.PutUint32(hdr[4:8], 36)
  1181. copy(hdr[8:12], "WAVE")
  1182. copy(hdr[12:16], "fmt ")
  1183. binary.LittleEndian.PutUint32(hdr[16:20], 16)
  1184. binary.LittleEndian.PutUint16(hdr[20:22], 1)
  1185. binary.LittleEndian.PutUint16(hdr[22:24], uint16(channels))
  1186. binary.LittleEndian.PutUint32(hdr[24:28], uint32(sampleRate))
  1187. binary.LittleEndian.PutUint32(hdr[28:32], uint32(sampleRate*channels*2))
  1188. binary.LittleEndian.PutUint16(hdr[32:34], uint16(channels*2))
  1189. binary.LittleEndian.PutUint16(hdr[34:36], 16)
  1190. copy(hdr[36:40], "data")
  1191. binary.LittleEndian.PutUint32(hdr[40:44], 0)
  1192. _, err := f.Write(hdr)
  1193. return err
  1194. }
  1195. func fixStreamWAVHeader(f *os.File, totalSamples int64, sampleRate int, channels int) {
  1196. dataSize := uint32(totalSamples * 2)
  1197. var buf [4]byte
  1198. binary.LittleEndian.PutUint32(buf[:], 36+dataSize)
  1199. if _, err := f.Seek(4, 0); err != nil {
  1200. return
  1201. }
  1202. _, _ = f.Write(buf[:])
  1203. binary.LittleEndian.PutUint32(buf[:], uint32(sampleRate))
  1204. if _, err := f.Seek(24, 0); err != nil {
  1205. return
  1206. }
  1207. _, _ = f.Write(buf[:])
  1208. binary.LittleEndian.PutUint32(buf[:], uint32(sampleRate*channels*2))
  1209. if _, err := f.Seek(28, 0); err != nil {
  1210. return
  1211. }
  1212. _, _ = f.Write(buf[:])
  1213. binary.LittleEndian.PutUint32(buf[:], dataSize)
  1214. if _, err := f.Seek(40, 0); err != nil {
  1215. return
  1216. }
  1217. _, _ = f.Write(buf[:])
  1218. }