2025-10-19 13:42:29 +02:00
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use crate::{
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nodes::{AudioError, MultiSubscriberNode},
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AudioChunk,
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};
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2025-10-11 00:33:13 +02:00
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use std::sync::Arc;
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use tokio::sync::mpsc;
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/// DspNode - Applique des transformations DSP aux chunks audio
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///
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/// Clone les données uniquement si elles doivent être modifiées
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pub struct DspNode {
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rx: mpsc::Receiver<Arc<AudioChunk>>,
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subscribers: MultiSubscriberNode,
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gain: f32,
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}
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impl DspNode {
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pub fn new(channel_size: usize, gain: f32) -> (Self, mpsc::Sender<Arc<AudioChunk>>) {
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let (tx, rx) = mpsc::channel(channel_size);
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let node = Self {
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rx,
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subscribers: MultiSubscriberNode::new(),
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gain,
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};
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(node, tx)
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}
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pub fn add_subscriber(&mut self, tx: mpsc::Sender<Arc<AudioChunk>>) {
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self.subscribers.add_subscriber(tx);
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}
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/// Applique le gain aux chunks
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pub async fn run(mut self) -> Result<(), AudioError> {
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while let Some(chunk) = self.rx.recv().await {
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if (self.gain - 1.0).abs() < f32::EPSILON {
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// Gain = 1.0, pas de transformation nécessaire
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self.subscribers.push(chunk).await?;
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} else {
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// Clone les données pour les modifier
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let (mut left_data, mut right_data) = chunk.clone_data();
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// Appliquer le gain
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for sample in &mut left_data {
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*sample *= self.gain;
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}
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for sample in &mut right_data {
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*sample *= self.gain;
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}
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2025-10-19 13:42:29 +02:00
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let new_chunk =
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AudioChunk::new(chunk.order, left_data, right_data, chunk.sample_rate);
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2025-10-11 00:33:13 +02:00
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self.subscribers.push(Arc::new(new_chunk)).await?;
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}
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}
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Ok(())
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}
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/// Met à jour le gain dynamiquement (nécessite un `Arc<RwLock<f32>>` dans une version réelle)
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pub fn set_gain(&mut self, gain: f32) {
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self.gain = gain;
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}
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}
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/// DspNode avec filtre passe-bas simple (mock)
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#[allow(dead_code)]
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pub struct LowPassDspNode {
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rx: mpsc::Receiver<Arc<AudioChunk>>,
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subscribers: MultiSubscriberNode,
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alpha: f32, // Coefficient du filtre
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prev_left: f32,
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prev_right: f32,
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}
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impl LowPassDspNode {
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#[allow(dead_code)]
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pub fn new(channel_size: usize, cutoff_ratio: f32) -> (Self, mpsc::Sender<Arc<AudioChunk>>) {
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let (tx, rx) = mpsc::channel(channel_size);
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// Filtre RC simple: alpha = dt / (RC + dt)
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// cutoff_ratio entre 0 (tout couper) et 1 (tout passer)
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let alpha = cutoff_ratio.clamp(0.0, 1.0);
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let node = Self {
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rx,
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subscribers: MultiSubscriberNode::new(),
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alpha,
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prev_left: 0.0,
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prev_right: 0.0,
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};
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(node, tx)
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}
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#[allow(dead_code)]
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pub fn add_subscriber(&mut self, tx: mpsc::Sender<Arc<AudioChunk>>) {
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self.subscribers.add_subscriber(tx);
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}
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#[allow(dead_code)]
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pub async fn run(mut self) -> Result<(), AudioError> {
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while let Some(chunk) = self.rx.recv().await {
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let (left_data, right_data) = chunk.clone_data();
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let mut new_left = Vec::with_capacity(left_data.len());
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let mut new_right = Vec::with_capacity(right_data.len());
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// Appliquer le filtre
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for &sample in &left_data {
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self.prev_left = self.prev_left + self.alpha * (sample - self.prev_left);
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new_left.push(self.prev_left);
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}
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for &sample in &right_data {
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self.prev_right = self.prev_right + self.alpha * (sample - self.prev_right);
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new_right.push(self.prev_right);
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}
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2025-10-19 13:42:29 +02:00
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let new_chunk = AudioChunk::new(chunk.order, new_left, new_right, chunk.sample_rate);
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2025-10-11 00:33:13 +02:00
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self.subscribers.push(Arc::new(new_chunk)).await?;
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}
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Ok(())
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}
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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#[tokio::test]
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async fn test_dsp_node_unity_gain() {
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let (mut node, tx) = DspNode::new(10, 1.0);
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let (out_tx, mut out_rx) = mpsc::channel(10);
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node.add_subscriber(out_tx);
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tokio::spawn(async move {
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node.run().await.unwrap();
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});
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// Envoyer un chunk
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let chunk = AudioChunk::new(0, vec![1.0, 2.0, 3.0], vec![4.0, 5.0, 6.0], 48000);
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let chunk_arc = Arc::new(chunk);
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tx.send(chunk_arc.clone()).await.unwrap();
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// Avec gain = 1.0, le chunk ne devrait pas être cloné
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let received = out_rx.recv().await.unwrap();
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assert!(Arc::ptr_eq(&chunk_arc, &received));
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}
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#[tokio::test]
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async fn test_dsp_node_gain() {
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let (mut node, tx) = DspNode::new(10, 2.0);
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let (out_tx, mut out_rx) = mpsc::channel(10);
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node.add_subscriber(out_tx);
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tokio::spawn(async move {
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node.run().await.unwrap();
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});
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// Envoyer un chunk
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let chunk = AudioChunk::new(0, vec![1.0, 2.0, 3.0], vec![4.0, 5.0, 6.0], 48000);
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tx.send(Arc::new(chunk)).await.unwrap();
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// Vérifier que le gain a été appliqué
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let received = out_rx.recv().await.unwrap();
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assert_eq!(received.left[0], 2.0);
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assert_eq!(received.left[1], 4.0);
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assert_eq!(received.left[2], 6.0);
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assert_eq!(received.right[0], 8.0);
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assert_eq!(received.right[1], 10.0);
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assert_eq!(received.right[2], 12.0);
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}
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#[tokio::test]
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async fn test_lowpass_dsp_node() {
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let (mut node, tx) = LowPassDspNode::new(10, 0.5);
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let (out_tx, mut out_rx) = mpsc::channel(10);
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node.add_subscriber(out_tx);
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tokio::spawn(async move {
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node.run().await.unwrap();
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});
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// Envoyer un chunk avec un signal carré
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let chunk = AudioChunk::new(
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0,
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vec![1.0, 1.0, 1.0, -1.0, -1.0, -1.0],
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vec![1.0, 1.0, 1.0, -1.0, -1.0, -1.0],
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48000,
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);
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tx.send(Arc::new(chunk)).await.unwrap();
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// Le filtre devrait lisser le signal
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let received = out_rx.recv().await.unwrap();
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// Vérifier que le signal est lissé (valeurs intermédiaires)
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assert!(received.left[0].abs() < 1.0); // Premier échantillon lissé
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assert!(received.left[2].abs() < 1.0); // Signal ne devrait pas atteindre 1.0 immédiatement
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}
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#[tokio::test]
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async fn test_dsp_node_multiple_subscribers() {
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let (mut node, tx) = DspNode::new(10, 0.5);
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let (out_tx1, mut out_rx1) = mpsc::channel(10);
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let (out_tx2, mut out_rx2) = mpsc::channel(10);
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node.add_subscriber(out_tx1);
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node.add_subscriber(out_tx2);
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tokio::spawn(async move {
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node.run().await.unwrap();
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});
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let chunk = AudioChunk::new(0, vec![2.0, 4.0], vec![2.0, 4.0], 48000);
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tx.send(Arc::new(chunk)).await.unwrap();
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// Les deux abonnés devraient recevoir le même Arc
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let received1 = out_rx1.recv().await.unwrap();
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let received2 = out_rx2.recv().await.unwrap();
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assert!(Arc::ptr_eq(&received1, &received2));
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assert_eq!(received1.left[0], 1.0); // 2.0 * 0.5
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assert_eq!(received1.left[1], 2.0); // 4.0 * 0.5
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}
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}
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