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Builds out the full v1 scope: a vendored+patched openscreen subset for low-latency Cast Streaming (Mirroring receiver 0F5096E8) alongside the existing Cast V2/HLS and new DLNA/AVTransport casting paths, breadcastd's Idle/Casting state machine with a private IPC socket, the breadcast GTK4 popup as a thin IPC client, and bread.cast.*/bread.command.cast.* breadd integration (device discovery, start/stop, mirroring lifecycle events). Also adds bakery/systemd/Forgejo CI packaging. Validated end-to-end against a real Chromecast/Google TV: negotiated Cast Streaming session, live pipeline playback, and daemon+GUI click-to-cast/ stop through the actual popup.
203 lines
7.4 KiB
C++
203 lines
7.4 KiB
C++
// Copyright 2019 The Chromium Authors
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#ifndef CAST_STREAMING_IMPL_RTCP_COMMON_H_
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#define CAST_STREAMING_IMPL_RTCP_COMMON_H_
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#include <stdint.h>
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#include <optional>
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#include <tuple>
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#include <vector>
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#include "cast/streaming/impl/ntp_time.h"
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#include "cast/streaming/impl/rtp_defines.h"
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#include "cast/streaming/impl/statistics_common.h"
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#include "cast/streaming/public/frame_id.h"
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#include "cast/streaming/rtp_time.h"
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#include "cast/streaming/ssrc.h"
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#include "platform/base/span.h"
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namespace openscreen::cast {
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struct RtcpCommonHeader {
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RtcpCommonHeader();
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~RtcpCommonHeader();
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RtcpPacketType packet_type = RtcpPacketType::kNull;
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union {
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// The number of report blocks if `packet_type` is kSenderReport or
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// kReceiverReport.
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int report_count;
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// Indicates the type of an application-defined message if `packet_type` is
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// kApplicationDefined or kPayloadSpecific.
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RtcpSubtype subtype;
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// Otherwise, not used.
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} with{0};
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// The size (in bytes) of the RTCP packet, not including the header.
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int payload_size = 0;
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// Serializes this header into the first `kRtcpCommonHeaderSize` bytes of the
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// given `buffer` and adjusts `buffer` to point to the first byte after it.
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void AppendFields(ByteBuffer& buffer) const;
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// Parse from the 4-byte wire format in `buffer`. Returns nullopt if the data
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// is corrupt.
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static std::optional<RtcpCommonHeader> Parse(ByteView buffer);
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};
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// The middle 32-bits of the 64-bit NtpTimestamp field from the Sender Reports.
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// This is used as an opaque identifier that the Receiver will use in its
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// reports to refer to specific previous Sender Reports.
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using StatusReportId = uint32_t;
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constexpr StatusReportId ToStatusReportId(NtpTimestamp ntp_timestamp) {
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return static_cast<uint32_t>(ntp_timestamp >> 16);
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}
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// One of these is optionally included with a Sender Report or a Receiver
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// Report. See: https://tools.ietf.org/html/rfc3550#section-6.4.1
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struct RtcpReportBlock {
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RtcpReportBlock();
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~RtcpReportBlock();
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// The intended recipient of this report block.
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Ssrc ssrc = 0;
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// The fraction of RTP packets lost since the last report, specified as a
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// variable numerator and fixed denominator. The numerator will always be in
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// the range [0,255] since, semantically:
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//
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// a. Negative values are impossible.
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// b. Values greater than 255 would indicate 100% packet loss, and so a
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// report block would not be generated in the first place.
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int packet_fraction_lost_numerator = 0;
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static constexpr int kPacketFractionLostDenominator = 256;
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// The total number of RTP packets lost since the start of the session. This
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// value will always be in the range [0,2^24-1], as the wire format only
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// provides 24 bits; so, wrap-around is possible.
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int cumulative_packets_lost = 0;
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// The highest sequence number received in any RTP packet. Wrap-around is
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// possible.
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uint32_t extended_high_sequence_number = 0;
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// An estimate of the recent variance in RTP packet arrival times.
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RtpTimeDelta jitter;
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// The last Status Report received.
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StatusReportId last_status_report_id{};
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// The delay between when the peer received the most-recent Status Report and
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// when this report was sent. The timebase is 65536 ticks per second and,
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// because of the wire format, this value will always be in the range
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// [0,65536) seconds.
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using Delay = std::chrono::duration<int64_t, std::ratio<1, 65536>>;
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Delay delay_since_last_report{};
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// Convenience helper to compute/assign the `packet_fraction_lost_numerator`,
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// based on the `num_apparently_sent` and `num_received` packet counts since
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// the last report was sent.
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void SetPacketFractionLostNumerator(int64_t num_apparently_sent,
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int64_t num_received);
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// Convenience helper to compute/assign the `cumulative_packets_lost`, based
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// on the `num_apparently_sent` and `num_received` packet counts since the
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// start of the entire session.
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void SetCumulativePacketsLost(int64_t num_apparently_sent,
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int64_t num_received);
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// Convenience helper to convert the given `local_clock_delay` to the
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// RtcpReportBlock::Delay timebase, then clamp and assign it to
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// `delay_since_last_report`.
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void SetDelaySinceLastReport(Clock::duration local_clock_delay);
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// Serializes this report block in the first `kRtcpReportBlockSize` bytes of
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// the given `buffer` and adjusts `buffer` to point to the first byte after
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// it.
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void AppendFields(ByteBuffer& buffer) const;
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// Scans the wire-format report blocks in `buffer`, searching for one with the
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// matching `ssrc` and, if found, returns the parse result. Returns nullopt if
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// the data is corrupt or no report block with the matching SSRC was found.
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static std::optional<RtcpReportBlock> ParseOne(ByteView buffer,
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int report_count,
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Ssrc ssrc);
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};
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struct RtcpSenderReport {
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RtcpSenderReport();
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~RtcpSenderReport();
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// The point-in-time at which this report was sent, according to both: 1) the
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// common reference clock shared by all RTP streams; 2) the RTP timestamp on
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// the media capture/playout timeline. Together, these are used by a Receiver
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// to achieve A/V synchronization across RTP streams for playout.
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Clock::time_point reference_time{};
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RtpTimeTicks rtp_timestamp;
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// The total number of RTP packets transmitted since the start of the session
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// (wrap-around is possible).
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uint32_t send_packet_count = 0;
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// The total number of payload bytes transmitted in RTP packets since the
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// start of the session (wrap-around is possible).
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uint32_t send_octet_count = 0;
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// The report block, if present. While the RTCP spec allows for zero or
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// multiple reports, Cast Streaming only uses zero or one.
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std::optional<RtcpReportBlock> report_block;
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};
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// A pair of IDs that refers to a specific missing packet within a frame. If
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// `packet_id` is kAllPacketsLost, then it represents all the packets of a
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// frame.
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struct PacketNack {
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FrameId frame_id;
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FramePacketId packet_id;
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constexpr bool operator==(const PacketNack& other) const {
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return frame_id == other.frame_id && packet_id == other.packet_id;
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}
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constexpr bool operator!=(const PacketNack& other) const {
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return frame_id != other.frame_id || packet_id != other.packet_id;
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}
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constexpr bool operator<(const PacketNack& other) const {
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return (frame_id < other.frame_id) ||
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(frame_id == other.frame_id && packet_id < other.packet_id);
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}
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};
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// Statistics events sent from the receiver over RTCP.
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struct RtcpReceiverEventLogMessage {
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// The statistics event type, may be either a receiver side frame event or
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// packet event.
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StatisticsEvent::Type type;
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// The time at which this event occurred.
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Clock::time_point timestamp;
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// Only set for frame played out events.
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// If this value is zero the frame is rendered on time.
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// If this value is positive it means the frame is rendered late.
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// If this value is negative it means the frame is rendered early.
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Clock::duration delay;
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// Only set for packet events.
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// The ID of the packet associated with this event.
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FramePacketId packet_id;
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};
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struct RtcpReceiverFrameLogMessage {
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RtpTimeTicks rtp_timestamp;
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std::vector<RtcpReceiverEventLogMessage> messages;
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};
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} // namespace openscreen::cast
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#endif // CAST_STREAMING_IMPL_RTCP_COMMON_H_
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