Extend isH264IDRStart to handle STAP-A aggregates (NAL type 24, RFC 6184 §5.7.1). The first NAL in the aggregate starts at byte 3 (after the 2-byte size field); if its type is 5 (IDR slice) the packet is treated as an IDR start and the burst cache is reset. This closes the gap noted in NOTES.md: a publisher using STAP-A for IDR (e.g. a custom GStreamer pipeline or hardware encoder) will now correctly reset the burst rather than accumulating packets until hitting the 512- packet / 2 MiB capacity cap.
102 lines
3.4 KiB
Go
102 lines
3.4 KiB
Go
package webrtc
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import (
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"sync"
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"github.com/pion/rtp"
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)
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// keyFrameCache retains the most recent H.264 keyframe burst so that
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// new WHEP subscribers can receive it immediately on Subscribe(),
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// cutting first-frame latency from up to one IDR interval (typically
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// 2 s at a 0.5 Hz keyframe rate) to nearly zero.
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//
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// A "burst" spans all RTP packets from the first fragment of an IDR NAL
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// until (but not including) the next IDR NAL. The cache is bounded by
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// maxPackets and maxBytes to cap per-stream memory usage.
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//
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// Thread safety: all public methods are safe for concurrent use.
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// push() is intended to be called only from the single-goroutine
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// readLoop — the lock it holds is small and brief.
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type keyFrameCache struct {
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mu sync.Mutex
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packets []*rtp.Packet
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byteLen int
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maxPackets int
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maxBytes int
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}
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// newKeyFrameCache returns a cache bounded to 512 packets / 2 MiB.
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// At typical H.264 streaming bitrates (1–4 Mbps), an IDR frame plus a
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// handful of subsequent P-frames fits comfortably within these limits.
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func newKeyFrameCache() *keyFrameCache {
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return &keyFrameCache{
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packets: make([]*rtp.Packet, 0, 64),
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maxPackets: 512,
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maxBytes: 2 << 20, // 2 MiB
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}
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}
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// isH264IDRStart returns true if pkt begins an H.264 IDR (keyframe)
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// NAL. It recognises three RFC 6184 packetisation modes:
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//
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// - Single NAL unit (type 5): the entire payload is one IDR slice.
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// - FU-A fragment (type 28): the FU header byte has the start bit set
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// (0x80) and the inner NAL type is 5.
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// - STAP-A aggregate (type 24): the first NAL in the aggregate is an
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// IDR slice. STAP-A format: byte 0 = NAL header (type 24), bytes
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// 1–2 = first NAL size (big-endian uint16), byte 3 = first NAL
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// header. Minimum valid payload: 4 bytes.
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func isH264IDRStart(pkt *rtp.Packet) bool {
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p := pkt.Payload
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if len(p) == 0 {
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return false
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}
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nalType := p[0] & 0x1F
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switch nalType {
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case 5: // Single NAL unit, IDR slice
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return true
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case 24: // STAP-A — bytes 1–2 are the first NAL's size; byte 3 is its header
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return len(p) >= 4 && p[3]&0x1F == 5
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case 28: // FU-A — byte 1 is the FU header: bit 7 = start, bits 4–0 = inner type
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return len(p) >= 2 && p[1]&0x80 != 0 && p[1]&0x1F == 5
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}
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return false
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}
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// push appends pkt to the cache. If pkt is the start of an H.264 IDR
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// NAL the existing burst is cleared first so the cache always holds
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// exactly one complete keyframe burst. Packets beyond the capacity
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// limits are silently dropped.
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//
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// push is called exclusively from readLoop (a single goroutine); the
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// isH264IDRStart check outside the lock is therefore safe.
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func (c *keyFrameCache) push(pkt *rtp.Packet) {
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isIDR := isH264IDRStart(pkt)
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payloadLen := len(pkt.Payload)
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c.mu.Lock()
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if isIDR {
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c.packets = c.packets[:0]
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c.byteLen = 0
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}
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if len(c.packets) < c.maxPackets && c.byteLen+payloadLen <= c.maxBytes {
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c.packets = append(c.packets, pkt)
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c.byteLen += payloadLen
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}
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c.mu.Unlock()
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}
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// snapshot returns a shallow copy of the current burst. The returned
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// slice is safe to iterate without holding any lock; the *rtp.Packet
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// values are never mutated after being placed in the cache.
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// Returns nil when the cache is empty.
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func (c *keyFrameCache) snapshot() []*rtp.Packet {
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c.mu.Lock()
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defer c.mu.Unlock()
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if len(c.packets) == 0 {
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return nil
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}
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snap := make([]*rtp.Packet, len(c.packets))
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copy(snap, c.packets)
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return snap
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}
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