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pmomusic/pmoaudio/src/nodes/decoder_node.rs

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2025-10-11 00:33:13 +02:00
use crate::{AudioChunk, nodes::{AudioError, MultiSubscriberNode}};
use std::sync::Arc;
use tokio::sync::mpsc;
/// DecoderNode - Décode des chunks audio
///
/// Version mock qui passe simplement les chunks (ou simule un décodage simple)
pub struct DecoderNode {
rx: mpsc::Receiver<Arc<AudioChunk>>,
subscribers: MultiSubscriberNode,
}
impl DecoderNode {
pub fn new(channel_size: usize) -> (Self, mpsc::Sender<Arc<AudioChunk>>) {
let (tx, rx) = mpsc::channel(channel_size);
let node = Self {
rx,
subscribers: MultiSubscriberNode::new(),
};
(node, tx)
}
pub fn add_subscriber(&mut self, tx: mpsc::Sender<Arc<AudioChunk>>) {
self.subscribers.add_subscriber(tx);
}
/// Mode passthrough - passe les chunks sans modification
pub async fn run_passthrough(mut self) -> Result<(), AudioError> {
while let Some(chunk) = self.rx.recv().await {
self.subscribers.push(chunk).await?;
}
Ok(())
}
/// Mode mock décodage - simule un changement de sample rate
pub async fn run_with_resampling(mut self, target_sample_rate: u32) -> Result<(), AudioError> {
while let Some(chunk) = self.rx.recv().await {
if chunk.sample_rate == target_sample_rate {
// Pas besoin de resampling
self.subscribers.push(chunk).await?;
} else {
// Simuler un resampling (mock simple)
let ratio = target_sample_rate as f64 / chunk.sample_rate as f64;
let new_len = (chunk.len() as f64 * ratio) as usize;
let (left_data, right_data) = chunk.clone_data();
let mut new_left = Vec::with_capacity(new_len);
let mut new_right = Vec::with_capacity(new_len);
// Resampling linéaire simple (mock)
for i in 0..new_len {
let src_pos = i as f64 / ratio;
let src_idx = src_pos as usize;
if src_idx < left_data.len() - 1 {
let frac = src_pos - src_idx as f64;
let left_sample =
left_data[src_idx] * (1.0 - frac as f32) + left_data[src_idx + 1] * frac as f32;
let right_sample =
right_data[src_idx] * (1.0 - frac as f32) + right_data[src_idx + 1] * frac as f32;
new_left.push(left_sample);
new_right.push(right_sample);
} else if src_idx < left_data.len() {
new_left.push(left_data[src_idx]);
new_right.push(right_data[src_idx]);
}
}
let new_chunk = AudioChunk::new(chunk.order, new_left, new_right, target_sample_rate);
self.subscribers.push(Arc::new(new_chunk)).await?;
}
}
Ok(())
}
}
#[cfg(test)]
mod tests {
use super::*;
#[tokio::test]
async fn test_decoder_passthrough() {
let (mut node, tx) = DecoderNode::new(10);
let (out_tx, mut out_rx) = mpsc::channel(10);
node.add_subscriber(out_tx);
tokio::spawn(async move {
node.run_passthrough().await.unwrap();
});
// Envoyer un chunk
let chunk = AudioChunk::new(0, vec![1.0, 2.0, 3.0], vec![4.0, 5.0, 6.0], 48000);
let chunk_arc = Arc::new(chunk);
tx.send(chunk_arc.clone()).await.unwrap();
// Recevoir le chunk
let received = out_rx.recv().await.unwrap();
assert!(Arc::ptr_eq(&chunk_arc, &received));
}
#[tokio::test]
async fn test_decoder_resampling() {
let (mut node, tx) = DecoderNode::new(10);
let (out_tx, mut out_rx) = mpsc::channel(10);
node.add_subscriber(out_tx);
tokio::spawn(async move {
node.run_with_resampling(96000).await.unwrap();
});
// Envoyer un chunk à 48000 Hz
let chunk = AudioChunk::new(0, vec![1.0; 100], vec![1.0; 100], 48000);
tx.send(Arc::new(chunk)).await.unwrap();
// Recevoir le chunk resampleé
let received = out_rx.recv().await.unwrap();
assert_eq!(received.sample_rate, 96000);
// Le chunk devrait être environ 2x plus grand
assert!(received.len() > 150 && received.len() < 250);
}
#[tokio::test]
async fn test_decoder_no_resampling_needed() {
let (mut node, tx) = DecoderNode::new(10);
let (out_tx, mut out_rx) = mpsc::channel(10);
node.add_subscriber(out_tx);
tokio::spawn(async move {
node.run_with_resampling(48000).await.unwrap();
});
// Envoyer un chunk déjà au bon sample rate
let chunk = AudioChunk::new(0, vec![1.0; 100], vec![1.0; 100], 48000);
let chunk_arc = Arc::new(chunk);
tx.send(chunk_arc.clone()).await.unwrap();
// Le chunk devrait être passé sans modification
let received = out_rx.recv().await.unwrap();
assert!(Arc::ptr_eq(&chunk_arc, &received));
}
}