324 lines
10 KiB
Rust
324 lines
10 KiB
Rust
//! # MP3 Decoder Module
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//!
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//! This module provides asynchronous streaming MP3 decoding capabilities.
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//! It decodes MP3 audio streams into PCM data (16-bit little-endian interleaved),
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//! which can then be fed directly into the FLAC encoder for transcoding.
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//!
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//! ## Architecture
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//!
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//! The decoder uses a multi-task pipeline for efficient streaming:
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//!
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//! ```text
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//! MP3 Input → [Ingest Task] → [Decode Task] → [Writer Task] → PCM Output (AsyncRead)
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//! ↓ ↓ ↓
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//! mpsc channel blocking I/O duplex stream
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//! ```
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//!
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//! - **Ingest Task**: Reads MP3 data in chunks and sends it through a channel
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//! - **Decode Task**: Runs in a blocking thread, decodes MP3 frames using minimp3
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//! - **Writer Task**: Writes decoded PCM data to a duplex stream
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//!
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//! This architecture ensures:
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//! - True streaming with minimal memory footprint
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//! - Non-blocking async I/O for the consumer
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//! - Proper backpressure through bounded channels
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//!
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//! ## Example: Basic MP3 Decoding
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//!
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//! ```no_run
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//! use pmoflac::decode_mp3_stream;
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//! use tokio::fs::File;
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//! use tokio::io::AsyncReadExt;
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//!
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//! #[tokio::main]
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//! async fn main() -> Result<(), Box<dyn std::error::Error>> {
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//! let file = File::open("audio.mp3").await?;
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//! let mut stream = decode_mp3_stream(file).await?;
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//!
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//! // Get stream information
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//! let info = stream.info();
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//! println!("Sample rate: {} Hz", info.sample_rate);
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//! println!("Channels: {}", info.channels);
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//! println!("Bits per sample: {}", info.bits_per_sample);
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//!
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//! // Read PCM data
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//! let mut pcm_buffer = Vec::new();
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//! stream.read_to_end(&mut pcm_buffer).await?;
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//!
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//! // Wait for decoding to complete
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//! stream.wait().await?;
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//!
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//! Ok(())
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//! }
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//! ```
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//!
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//! ## Example: MP3 to FLAC Transcoding
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//!
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//! ```no_run
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//! use pmoflac::{decode_mp3_stream, encode_flac_stream, PcmFormat, EncoderOptions};
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//! use tokio::fs::File;
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//! use tokio::io::AsyncReadExt;
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//!
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//! #[tokio::main]
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//! async fn main() -> Result<(), Box<dyn std::error::Error>> {
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//! // Decode MP3
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//! let mp3_file = File::open("input.mp3").await?;
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//! let stream = decode_mp3_stream(mp3_file).await?;
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//! let (info, pcm_reader) = stream.into_parts();
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//!
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//! // Encode to FLAC
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//! let format = PcmFormat {
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//! sample_rate: info.sample_rate,
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//! channels: info.channels,
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//! bits_per_sample: info.bits_per_sample,
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//! };
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//! let mut flac_stream = encode_flac_stream(
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//! pcm_reader,
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//! format,
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//! EncoderOptions::default()
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//! ).await?;
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//!
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//! // Write FLAC output
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//! let mut output = File::create("output.flac").await?;
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//! tokio::io::copy(&mut flac_stream, &mut output).await?;
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//! flac_stream.wait().await?;
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//!
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//! Ok(())
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//! }
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//! ```
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use std::{
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io,
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pin::Pin,
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task::{Context, Poll},
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};
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use bytes::Bytes;
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use minimp3::{Decoder as MiniMp3Decoder, Error as MiniMp3Error};
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use tokio::{
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io::{
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self as tokio_io, AsyncRead, AsyncReadExt, AsyncWriteExt, ReadBuf,
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},
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sync::{mpsc, oneshot},
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};
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use crate::{common::ChannelReader, pcm::StreamInfo, stream::ManagedAsyncReader};
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/// Size of chunks when reading MP3 input data (16 KB).
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///
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/// This size balances between efficient I/O operations and memory usage.
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/// Larger chunks reduce system call overhead, while smaller chunks reduce latency.
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const INGEST_CHUNK_SIZE: usize = 16 * 1024;
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/// Channel capacity for async message passing between tasks.
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///
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/// This bounded capacity provides backpressure: if the decoder can't keep up,
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/// the ingest task will wait before reading more data.
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const CHANNEL_CAPACITY: usize = 8;
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/// Errors that can occur while decoding MP3 data.
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#[derive(thiserror::Error, Debug, Clone)]
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pub enum Mp3Error {
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#[error("I/O error ({kind:?}): {message}")]
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Io {
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kind: io::ErrorKind,
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message: String,
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},
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#[error("MP3 decode error: {0}")]
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Decode(String),
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#[error("internal channel closed unexpectedly")]
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ChannelClosed,
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#[error("{role} task failed: {details}")]
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TaskJoin { role: &'static str, details: String },
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}
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impl From<io::Error> for Mp3Error {
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fn from(err: io::Error) -> Self {
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Mp3Error::Io {
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kind: err.kind(),
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message: err.to_string(),
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}
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}
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}
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impl From<String> for Mp3Error {
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fn from(msg: String) -> Self {
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Mp3Error::Decode(msg)
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}
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}
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/// An async stream that decodes MP3 audio into PCM samples.
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///
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/// This struct implements `AsyncRead`, allowing you to read decoded PCM data
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/// as it becomes available. The decoding happens in a background task.
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pub struct Mp3DecodedStream {
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info: StreamInfo,
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reader: ManagedAsyncReader<Mp3Error>,
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}
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impl Mp3DecodedStream {
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/// Returns metadata about the decoded MP3 stream.
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pub fn info(&self) -> &StreamInfo {
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&self.info
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}
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/// Consumes the stream and returns its components.
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pub fn into_parts(self) -> (StreamInfo, ManagedAsyncReader<Mp3Error>) {
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(self.info, self.reader)
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}
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/// Waits for the background decoding task to complete.
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///
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/// This should be called after reading all data to ensure proper cleanup
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/// and to catch any errors that occurred during decoding.
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pub async fn wait(self) -> Result<(), Mp3Error> {
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self.reader.wait().await
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}
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}
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impl AsyncRead for Mp3DecodedStream {
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fn poll_read(
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mut self: Pin<&mut Self>,
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cx: &mut Context<'_>,
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buf: &mut ReadBuf<'_>,
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) -> Poll<io::Result<()>> {
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Pin::new(&mut self.reader).poll_read(cx, buf)
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}
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}
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/// Decodes an MP3 stream into PCM audio data (16-bit little-endian interleaved).
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///
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/// This function spawns background tasks to perform the decoding asynchronously.
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/// The returned `Mp3DecodedStream` implements `AsyncRead` for streaming the PCM output.
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pub async fn decode_mp3_stream<R>(reader: R) -> Result<Mp3DecodedStream, Mp3Error>
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where
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R: AsyncRead + Unpin + Send + 'static,
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{
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let (ingest_tx, ingest_rx) = mpsc::channel::<Result<Bytes, Mp3Error>>(CHANNEL_CAPACITY);
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tokio::spawn(async move {
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let mut reader = tokio_io::BufReader::new(reader);
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let mut buf = vec![0u8; INGEST_CHUNK_SIZE];
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loop {
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match reader.read(&mut buf).await {
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Ok(0) => break,
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Ok(n) => {
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let chunk = Bytes::copy_from_slice(&buf[..n]);
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if ingest_tx.send(Ok(chunk)).await.is_err() {
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break;
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}
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}
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Err(err) => {
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let _ = ingest_tx.send(Err(Mp3Error::from(err))).await;
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break;
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}
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}
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}
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});
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let (pcm_tx, mut pcm_rx) = mpsc::channel::<Result<Vec<u8>, Mp3Error>>(CHANNEL_CAPACITY);
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let (pcm_reader, mut pcm_writer) = tokio_io::duplex(256 * 1024);
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let (info_tx, info_rx) = oneshot::channel::<Result<StreamInfo, Mp3Error>>();
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let blocking_handle = tokio::task::spawn_blocking(move || -> Result<(), Mp3Error> {
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let channel_reader = ChannelReader::<Mp3Error>::new(ingest_rx);
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let mut decoder = MiniMp3Decoder::new(channel_reader);
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let mut info_tx = Some(info_tx);
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let mut pcm_bytes = Vec::new();
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loop {
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match decoder.next_frame() {
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Ok(frame) => {
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if frame.channels == 0 {
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let err = Mp3Error::Decode("MP3 frame reported zero channels".into());
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if let Some(tx) = info_tx.take() {
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let _ = tx.send(Err(err.clone()));
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}
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return Err(err);
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}
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if let Some(tx) = info_tx.take() {
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let info = StreamInfo {
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sample_rate: frame.sample_rate as u32,
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channels: frame.channels as u8,
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bits_per_sample: 16,
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total_samples: None,
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max_block_size: 0,
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min_block_size: 0,
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};
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if tx.send(Ok(info.clone())).is_err() {
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// Consumer dropped; we can stop decoding early.
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return Ok(());
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}
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}
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pcm_bytes.clear();
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pcm_bytes.reserve(frame.data.len() * 2);
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for sample in &frame.data {
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pcm_bytes.extend_from_slice(&sample.to_le_bytes());
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}
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let chunk = std::mem::take(&mut pcm_bytes);
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if pcm_tx.blocking_send(Ok(chunk)).is_err() {
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break;
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}
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pcm_bytes = Vec::with_capacity(frame.data.len() * 2);
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}
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Err(MiniMp3Error::Eof) => break,
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Err(MiniMp3Error::InsufficientData) | Err(MiniMp3Error::SkippedData) => {
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// Decoder needs more data; continue ingesting.
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continue;
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}
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Err(MiniMp3Error::Io(err)) => {
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let err = Mp3Error::from(err);
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if let Some(tx) = info_tx.take() {
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let _ = tx.send(Err(err.clone()));
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}
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return Err(err);
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}
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}
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}
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if let Some(tx) = info_tx.take() {
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let err = Mp3Error::Decode("stream contained no decodable MP3 frames".into());
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let _ = tx.send(Err(err.clone()));
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return Err(err);
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}
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Ok(())
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});
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let writer_handle = tokio::spawn(async move {
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while let Some(chunk_result) = pcm_rx.recv().await {
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let chunk = chunk_result?;
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if chunk.is_empty() {
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continue;
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}
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pcm_writer
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.write_all(&chunk)
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.await
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.map_err(Mp3Error::from)?;
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}
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pcm_writer
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.shutdown()
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.await
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.map_err(Mp3Error::from)?;
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match blocking_handle.await {
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Ok(res) => res,
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Err(err) => Err(Mp3Error::TaskJoin {
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role: "mp3-decode",
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details: err.to_string(),
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}),
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}
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});
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let info = info_rx
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.await
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.map_err(|_| Mp3Error::ChannelClosed)??;
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let reader = ManagedAsyncReader::new("mp3-decode-writer", pcm_reader, writer_handle);
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Ok(Mp3DecodedStream { info, reader })
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}
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