421 lines
15 KiB
Rust
421 lines
15 KiB
Rust
//! # AIFF Decoder Module
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//!
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//! Streaming AIFF (Audio Interchange File Format) to PCM conversion without any
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//! seeking. The decoder parses the FORM/COMM/SSND chunks incrementally and emits
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//! little-endian interleaved PCM frames compatible with the rest of the
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//! pipeline.
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use std::{collections::VecDeque, fmt, io::Read};
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use tokio::{
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io::AsyncRead,
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sync::{mpsc, oneshot},
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};
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use crate::{
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common::ChannelReader,
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decoder_common::{
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spawn_ingest_task, spawn_writer_task, DecodedStream, DecoderError, CHANNEL_CAPACITY,
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DUPLEX_BUFFER_SIZE,
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},
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pcm::StreamInfo,
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stream::ManagedAsyncReader,
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};
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/// Errors that can occur while decoding AIFF data.
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pub type AiffError = DecoderError;
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/// Streaming reader that buffers bytes as they arrive and exposes convenience helpers.
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struct StreamingAiffReader<E>
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where
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E: fmt::Display + std::error::Error,
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{
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reader: ChannelReader<E>,
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buffer: VecDeque<u8>,
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finished: bool,
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}
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impl<E> StreamingAiffReader<E>
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where
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E: fmt::Display + std::error::Error,
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{
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fn new(reader: ChannelReader<E>) -> Self {
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Self {
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reader,
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buffer: VecDeque::new(),
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finished: false,
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}
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}
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fn fill_buffer(&mut self, len: usize) -> Result<(), AiffError> {
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while self.buffer.len() < len {
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if self.finished {
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break;
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}
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let mut chunk = [0u8; 4096];
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let read = self.reader.read(&mut chunk)?;
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if read == 0 {
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self.finished = true;
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} else {
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self.buffer.extend(&chunk[..read]);
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}
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}
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Ok(())
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}
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fn read_exact_vec(&mut self, len: usize) -> Result<Vec<u8>, AiffError> {
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self.fill_buffer(len)?;
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if self.buffer.len() < len {
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return Err(AiffError::Decode("unexpected EOF in AIFF stream".into()));
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}
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let mut out = Vec::with_capacity(len);
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for _ in 0..len {
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out.push(self.buffer.pop_front().unwrap());
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}
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Ok(out)
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}
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fn skip(&mut self, mut len: usize) -> Result<(), AiffError> {
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while len > 0 {
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if !self.buffer.is_empty() {
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let take = len.min(self.buffer.len());
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for _ in 0..take {
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self.buffer.pop_front();
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}
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len -= take;
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continue;
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}
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let mut chunk = [0u8; 4096];
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let read = self.reader.read(&mut chunk)?;
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if read == 0 {
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return Err(AiffError::Decode(
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"unexpected EOF while skipping chunk".into(),
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));
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}
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self.buffer.extend(&chunk[..read]);
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}
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Ok(())
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}
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}
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/// Compression / endianness mode for AIFF data.
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#[derive(Clone, Copy, Debug)]
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enum Compression {
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BigEndianPcm,
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LittleEndianPcm,
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}
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/// Parsed COMM chunk data.
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#[derive(Clone, Debug)]
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struct CommChunk {
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channels: u16,
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num_frames: u32,
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bits_per_sample: u16,
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sample_rate: u32,
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compression: Compression,
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}
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impl CommChunk {
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fn bytes_per_sample(&self) -> usize {
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((self.bits_per_sample as usize) + 7) / 8
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}
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fn validate(&self) -> Result<(), AiffError> {
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if self.channels == 0 {
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return Err(AiffError::Decode("AIFF channel count must be > 0".into()));
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}
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if self.sample_rate == 0 {
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return Err(AiffError::Decode("AIFF sample rate must be > 0".into()));
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}
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match self.bytes_per_sample() {
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1 | 2 | 3 | 4 => Ok(()),
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other => Err(AiffError::Decode(format!(
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"unsupported AIFF bytes per sample: {}",
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other
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))),
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}
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}
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}
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/// Async stream alias for decoded AIFF audio.
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pub type AiffDecodedStream = DecodedStream<AiffError>;
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/// Decode an AIFF stream into PCM audio (little-endian interleaved).
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pub async fn decode_aiff_stream<R>(reader: R) -> Result<AiffDecodedStream, AiffError>
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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(CHANNEL_CAPACITY);
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spawn_ingest_task::<_, AiffError>(reader, ingest_tx);
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let (pcm_tx, pcm_rx) = mpsc::channel(CHANNEL_CAPACITY);
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let (pcm_reader, pcm_writer) = tokio::io::duplex(DUPLEX_BUFFER_SIZE);
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let (info_tx, info_rx) = oneshot::channel::<Result<StreamInfo, AiffError>>();
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let blocking_handle = tokio::task::spawn_blocking(move || -> Result<(), AiffError> {
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let mut info_tx = Some(info_tx);
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let result: Result<(), AiffError> = (|| {
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let channel_reader = ChannelReader::<AiffError>::new(ingest_rx);
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let mut aiff_reader = StreamingAiffReader::new(channel_reader);
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// Parse FORM header
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let form_header = aiff_reader.read_exact_vec(12)?;
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if &form_header[0..4] != b"FORM" {
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return Err(AiffError::Decode("missing FORM header".into()));
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}
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let form_type = <[u8; 4]>::try_from(&form_header[8..12]).unwrap();
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if form_type != *b"AIFF" && form_type != *b"AIFC" {
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return Err(AiffError::Decode(
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"unsupported FORM type (expected AIFF/AIFC)".into(),
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));
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}
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let mut comm_chunk: Option<CommChunk> = None;
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let mut stream_info_sent = false;
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loop {
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let header = match aiff_reader.read_exact_vec(8) {
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Ok(bytes) => bytes,
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Err(AiffError::Decode(msg)) if msg.contains("unexpected EOF") => break,
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Err(err) => return Err(err),
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};
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let chunk_id = <[u8; 4]>::try_from(&header[..4]).unwrap();
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let chunk_size =
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u32::from_be_bytes([header[4], header[5], header[6], header[7]]) as usize;
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let padded_size = if chunk_size % 2 == 0 {
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chunk_size
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} else {
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chunk_size + 1
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};
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match &chunk_id {
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b"COMM" => {
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let data = aiff_reader.read_exact_vec(chunk_size)?;
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if form_type == *b"AIFF" && data.len() < 18 {
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return Err(AiffError::Decode("COMM chunk too small".into()));
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}
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if data.len() < 18 {
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return Err(AiffError::Decode("COMM chunk too small for AIFC".into()));
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}
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let channels = u16::from_be_bytes([data[0], data[1]]);
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let num_frames = u32::from_be_bytes([data[2], data[3], data[4], data[5]]);
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let bits_per_sample = u16::from_be_bytes([data[6], data[7]]);
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let sample_rate = parse_extended_f80(&data[8..18])?;
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let compression = if form_type == *b"AIFC" {
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if data.len() < 22 {
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return Err(AiffError::Decode(
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"AIFC COMM chunk missing compression type".into(),
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));
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}
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match &data[18..22] {
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b"NONE" => Compression::BigEndianPcm,
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b"sowt" => Compression::LittleEndianPcm,
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code => {
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return Err(AiffError::Decode(format!(
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"unsupported AIFC compression type: {}",
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String::from_utf8_lossy(code)
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)))
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}
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}
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} else {
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Compression::BigEndianPcm
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};
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let comm = CommChunk {
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channels,
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num_frames,
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bits_per_sample,
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sample_rate,
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compression,
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};
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comm.validate()?;
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comm_chunk = Some(comm);
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if padded_size > chunk_size {
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aiff_reader.skip(padded_size - chunk_size)?;
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}
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}
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b"SSND" => {
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let comm = comm_chunk.as_ref().ok_or_else(|| {
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AiffError::Decode("SSND chunk encountered before COMM".into())
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})?;
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let header = aiff_reader.read_exact_vec(8)?;
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let offset =
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u32::from_be_bytes([header[0], header[1], header[2], header[3]])
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as usize;
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let _block_size =
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u32::from_be_bytes([header[4], header[5], header[6], header[7]])
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as usize;
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if offset > 0 {
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aiff_reader.skip(offset)?;
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}
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let data_bytes = chunk_size
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.checked_sub(8)
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.ok_or_else(|| AiffError::Decode("invalid SSND chunk size".into()))?;
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let bytes_per_sample = comm.bytes_per_sample();
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let info = StreamInfo {
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sample_rate: comm.sample_rate,
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channels: comm.channels as u8,
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bits_per_sample: comm.bits_per_sample as u8,
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total_samples: Some(comm.num_frames as u64),
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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 !stream_info_sent {
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if let Some(tx) = info_tx.take() {
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if tx.send(Ok(info.clone())).is_err() {
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return Ok(());
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}
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}
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stream_info_sent = true;
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}
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let mut remaining = data_bytes;
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while remaining > 0 {
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let mut to_read = remaining.min(8192);
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let residue = to_read % bytes_per_sample;
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if residue != 0 {
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to_read -= residue;
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}
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if to_read == 0 {
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to_read = bytes_per_sample;
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}
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let mut chunk = aiff_reader.read_exact_vec(to_read)?;
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match comm.compression {
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Compression::BigEndianPcm => {
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chunk = convert_be_pcm(chunk, comm.bits_per_sample)?;
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}
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Compression::LittleEndianPcm => {
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// data already little-endian; no conversion
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}
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}
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if !chunk.is_empty() {
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if pcm_tx.blocking_send(Ok(chunk)).is_err() {
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return Ok(());
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}
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}
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remaining = remaining
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.checked_sub(to_read)
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.ok_or_else(|| AiffError::Decode("SSND chunk underflow".into()))?;
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}
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if padded_size > chunk_size {
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aiff_reader.skip(1)?;
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}
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break;
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}
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_ => {
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aiff_reader.skip(chunk_size)?;
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if padded_size > chunk_size {
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aiff_reader.skip(padded_size - chunk_size)?;
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}
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}
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}
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}
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if !stream_info_sent {
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return Err(AiffError::Decode(
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"no SSND chunk found in AIFF stream".into(),
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));
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}
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Ok(())
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})();
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match result {
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Ok(()) => Ok(()),
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Err(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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Err(err)
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}
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}
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});
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let writer_handle = spawn_writer_task(pcm_rx, pcm_writer, blocking_handle, "aiff-decode");
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let info = info_rx.await.map_err(|_| AiffError::ChannelClosed)??;
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let reader = ManagedAsyncReader::new("aiff-decode-writer", pcm_reader, writer_handle);
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Ok(DecodedStream::new(info, reader))
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}
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fn parse_extended_f80(bytes: &[u8]) -> Result<u32, AiffError> {
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if bytes.len() != 10 {
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return Err(AiffError::Decode("invalid 80-bit float length".into()));
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}
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let sign = if bytes[0] & 0x80 != 0 { -1.0 } else { 1.0 };
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let exponent = (((bytes[0] & 0x7F) as i32) << 8 | bytes[1] as i32) - 16383;
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let mut mantissa: u64 = 0;
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for b in &bytes[2..10] {
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mantissa = (mantissa << 8) | (*b as u64);
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}
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if exponent == -16383 && mantissa == 0 {
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return Ok(0);
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}
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let magnitude = mantissa as f64 / (1u64 << 63) as f64;
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let value = sign * magnitude * 2f64.powi(exponent);
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if value <= 0.0 {
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return Err(AiffError::Decode("invalid or negative sample rate".into()));
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}
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Ok(value.round() as u32)
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}
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fn convert_be_pcm(mut chunk: Vec<u8>, bits_per_sample: u16) -> Result<Vec<u8>, AiffError> {
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let bytes_per_sample = ((bits_per_sample as usize) + 7) / 8;
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if chunk.len() % bytes_per_sample != 0 {
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return Err(AiffError::Decode(
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"AIFF PCM data not aligned to whole samples".into(),
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));
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}
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match bytes_per_sample {
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1 => Ok(chunk),
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2 => {
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for sample in chunk.chunks_mut(2) {
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sample.swap(0, 1);
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}
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Ok(chunk)
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}
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3 => {
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let mut out = Vec::with_capacity(chunk.len());
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for sample in chunk.chunks(3) {
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let value =
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((sample[0] as i32) << 16) | ((sample[1] as i32) << 8) | (sample[2] as i32);
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let value = if value & 0x0080_0000 != 0 {
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value | !0x00FF_FFFF
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} else {
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value
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};
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let le = value.to_le_bytes();
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out.extend_from_slice(&le[..3]);
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}
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Ok(out)
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}
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4 => {
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for sample in chunk.chunks_mut(4) {
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sample.swap(0, 3);
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sample.swap(1, 2);
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}
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Ok(chunk)
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}
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other => Err(AiffError::Decode(format!(
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"unsupported bytes per sample: {}",
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other
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))),
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}
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}
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