key-stream 0.10.0

A library for async key streaming.
Documentation
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//! Async key-based message streaming library.
//!
//! Enables sending messages to multiple receivers, grouped by keys, with automatic cleanup of unused keys.
//! No messages are sent until a key is subscribed to, and keys are automatically removed when all receivers are dropped.
//! Cleanup is performed by a background task, so task switching is required for timely removal.
//! The memory usage of the keys map is optimized by shrinking it when many keys are removed.
//!
//! The main entry point is [`KeyStream`], created with [`KeyStream::new`].
//! It manages the keys and contains a background task for cleaning up unused keys.
//! The cleanup task is immediately notified when a key is dropped, rather than relying on periodic checks.
//! Use [`KeyStream::sender`] to obtain a sender handle for sending messages and subscribing to keys.
//! Use [`KeySender::send`] to send messages to a key, and [`KeySender::subscribe`] to subscribe to a key and receive a [`KeyReceiver`] for that key.
//! [`KeyReceiver::recv`] can be used to receive messages for a key, waiting asynchronously until a message is available.
//! [`KeyReceiver`] can also be converted into a stream of messages using [`KeyReceiver::to_async_stream`].
//!
//! # Examples
//!
//! ```
//! use key_stream::KeyStream;
//! use tokio;
//!
//! # #[tokio::main(flavor = "current_thread")]
//! # async fn main() {
//! let key_stream = KeyStream::<i32, String>::new(10);
//! let sender = key_stream.sender();
//! let mut receiver = sender.subscribe(1).await;
//! sender.send(&1, "value".to_string()).await.unwrap();
//! assert_eq!(receiver.recv().await.unwrap(), "value".to_string());
//! # }
//! ```
//!
//! ## Key cleanup example
//!
//! ```rust
//! use key_stream::KeyStream;
//! # #[tokio::main(flavor = "current_thread")]
//! # async fn main() {
//! let key_stream = KeyStream::<i32, String>::new(10);
//! let sender = key_stream.sender();
//! let receiver = sender.subscribe(1).await;
//! assert_eq!(key_stream.n_keys().await, 1);
//! drop(receiver);
//! // give the key drop task a chance to run
//! tokio::task::yield_now().await;
//! let result = sender
//!     .send(&1, "value".to_string())
//!     .await
//!     .unwrap();
//! assert_eq!(result, 0);
//! assert_eq!(key_stream.n_keys().await, 0);
//! # }
//! ```
use futures::Stream;
use std::hash::Hash;
use std::{collections::HashMap, sync::Arc};
use tokio::sync::broadcast::error::RecvError;
use tokio::sync::mpsc::{UnboundedReceiver, UnboundedSender, unbounded_channel};
use tokio::sync::{RwLock, broadcast};

/// Trait bound for types usable as keys in [`KeyStream`].
/// Must be hashable, comparable, cloneable, thread-safe, and `'static`.
pub trait Key: Hash + Eq + Clone + Send + Sync + 'static {}

/// Trait bound for types usable as values in [`KeyStream`].
/// Must be cloneable, thread-safe, and `'static`.
pub trait Value: Clone + Send + 'static {}

impl<T: Clone + Send + 'static> Value for T {}
impl<T: std::hash::Hash + Eq + Clone + Send + Sync + 'static> Key for T {}

type Streams<K, V> = Arc<RwLock<HashMap<K, broadcast::Sender<V>>>>;

/// The main entry point for key-based async message streaming.
///
/// Use [`KeyStream::new`] to create, then call [`KeyStream::sender`] to get a sender handle.
///
/// # Example
/// ```
/// use key_stream::KeyStream;
/// use tokio;
/// # #[tokio::main(flavor = "current_thread")]
/// # async fn main() {
/// let key_stream = KeyStream::<i32, String>::new(10);
/// let sender = key_stream.sender();
/// let mut receiver = sender.subscribe(1).await;
/// sender.send(&1, "value".to_string()).await.unwrap();
/// assert_eq!(receiver.recv().await.unwrap(), "value".to_string());
/// # }
/// ```
pub struct KeyStream<K: Key, V: Value> {
    broadcast_capacity: usize,
    streams: Streams<K, V>,
    sender: UnboundedSender<K>,
    drop_keys_task: Option<tokio::task::JoinHandle<()>>,
}

/// Handle for sending and subscribing to messages by key.
///
/// Created via [`KeyStream::sender`].
pub struct KeySender<K: Key, V: Value> {
    streams: Streams<K, V>,
    broadcast_capacity: usize,
    drop_notify: UnboundedSender<K>,
}

/// A receiver for messages for a specific key.
///
/// Created via [`KeySender::subscribe`].
pub struct KeyReceiver<K: Key, V: Value> {
    key: K,
    receiver: broadcast::Receiver<V>,
    on_drop: UnboundedSender<K>,
}

impl<K: Key, V: Value> KeyStream<K, V> {
    /// Create a new [`KeyStream`] with the given broadcast channel capacity per key.
    pub fn new(broadcast_capacity: usize) -> Self {
        let (sender, receiver) = unbounded_channel::<K>();
        let streams = Arc::new(RwLock::new(HashMap::<K, broadcast::Sender<V>>::new()));
        let on_drop_task = tokio::spawn(cleanup_keys(receiver, Arc::clone(&streams)));
        Self {
            broadcast_capacity,
            streams,
            sender,
            drop_keys_task: Some(on_drop_task),
        }
    }

    /// Get a sender handle for publishing and subscribing to keys.
    pub fn sender(&self) -> KeySender<K, V> {
        KeySender::new(
            Arc::clone(&self.streams),
            self.broadcast_capacity,
            self.sender.clone(),
        )
    }

    /// Get the number of keys currently tracked.
    pub async fn n_keys(&self) -> usize {
        self.streams.read().await.len()
    }

    /// Get the current capacity of the keys map.
    pub async fn key_capacity(&self) -> usize {
        self.streams.read().await.capacity()
    }
}

impl<K: Key, V: Value> KeySender<K, V> {
    fn new(streams: Streams<K, V>, broadcast_capacity: usize, sender: UnboundedSender<K>) -> Self {
        Self {
            streams,
            broadcast_capacity,
            drop_notify: sender,
        }
    }

    /// Send a value to all receivers subscribed to the given key.
    ///
    /// Returns the number of receivers the message was sent to, or 0 if none.
    pub async fn send(&self, key: &K, value: V) -> Result<usize, broadcast::error::SendError<V>> {
        let streams = self.streams.read().await;
        if let Some(sender) = streams.get(key) {
            sender.send(value)
        } else {
            Ok(0)
        }
    }

    /// Subscribe to messages for the given key.
    ///
    /// Returns a [`KeyReceiver`] for receiving messages.
    pub async fn subscribe(&self, key: K) -> KeyReceiver<K, V> {
        let streams = self.streams.read().await;
        let inner = if let Some(sender) = streams.get(&key) {
            sender.subscribe()
        } else {
            drop(streams);
            let mut streams = self.streams.write().await;
            let sender = streams.entry(key.clone()).or_insert_with(|| {
                let (sender, _) = broadcast::channel(self.broadcast_capacity);
                sender
            });
            sender.subscribe()
        };
        self.create_receiver(key, inner)
    }

    /// Get the number of keys currently tracked.
    pub async fn n_keys(&self) -> usize {
        self.streams.read().await.len()
    }

    /// Get the current capacity of the keys map.
    pub async fn key_capacity(&self) -> usize {
        self.streams.read().await.capacity()
    }

    fn create_receiver(&self, key: K, inner: broadcast::Receiver<V>) -> KeyReceiver<K, V> {
        KeyReceiver {
            key,
            receiver: inner,
            on_drop: self.drop_notify.clone(),
        }
    }
}

impl<K: Key, V: Value> KeyReceiver<K, V> {
    /// Receive the next message for this key, waiting asynchronously.
    /// See, tokio::sync::broadcast::Receiver::recv for more details.
    pub async fn recv(&mut self) -> Result<V, broadcast::error::RecvError> {
        self.receiver.recv().await
    }

    /// Try to receive the next message for this key without waiting..
    /// See, tokio::sync::broadcast::Receiver::try_recv for more details.
    pub async fn try_recv(&mut self) -> Result<V, broadcast::error::TryRecvError> {
        self.receiver.try_recv()
    }

    /// Receive the next message for this key, blocking the current thread.
    /// Only use in synchronous contexts.
    /// See, tokio::sync::broadcast::Receiver::blocking_recv for more details.
    pub fn blocking_recv(&mut self) -> Result<V, broadcast::error::RecvError> {
        self.receiver.blocking_recv()
    }

    /// Consume this receiver and convert it into a stream of messages for this key.
    pub fn to_async_stream(self) -> impl Stream<Item = Result<V, RecvError>> {
        futures::stream::unfold(self, |mut receiver| async {
            let item = receiver.recv().await;
            Some((item, receiver))
        })
    }
}

impl<K: Key, V: Value> Clone for KeySender<K, V> {
    fn clone(&self) -> Self {
        Self {
            streams: Arc::clone(&self.streams),
            broadcast_capacity: self.broadcast_capacity,
            drop_notify: self.drop_notify.clone(),
        }
    }
}

impl<K: Key, V: Value> Drop for KeyStream<K, V> {
    fn drop(&mut self) {
        if let Some(task) = self.drop_keys_task.take() {
            task.abort();
        }
    }
}

impl<K: Key, V: Value> Drop for KeyReceiver<K, V> {
    fn drop(&mut self) {
        let _ = self.on_drop.send(self.key.clone());
    }
}

async fn cleanup_keys<K: Key, V: Value>(
    mut receiver: UnboundedReceiver<K>,
    streams: Streams<K, V>,
) {
    while let Some(key) = receiver.recv().await {
        let mut streams = streams.write().await;
        if let Some(sender) = streams.get(&key)
            && sender.receiver_count() == 0
        {
            streams.remove(&key);
            optimize_dict_mem(&mut streams);
        }
    }
}

fn optimize_dict_mem<K: Key, V: Value>(streams: &mut HashMap<K, broadcast::Sender<V>>) {
    // If the number of keys is less than half the capacity and the capacity is big enough,
    // shrink the capacity to save memory
    let cap = streams.capacity() >> 1;
    let len = streams.len();
    if cap > 64 && len < cap {
        streams.shrink_to(cap);
    }
}

#[cfg(test)]
mod tests {
    use std::pin::Pin;
    use tokio::task::JoinSet;
    use tokio::time::{Duration, timeout};

    use super::*;

    #[tokio::test]
    async fn test_recv() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let mut receiver = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        assert_eq!(receiver.recv().await.unwrap(), "value".to_string());
    }

    #[tokio::test]
    async fn test_no_receiver() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let result = sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        assert_eq!(result, 0);
        assert_eq!(key_stream.n_keys().await, 0);
    }

    #[tokio::test]
    async fn test_send_after_drop() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let receiver = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        drop(receiver);
        // give the on_drop task a chance to run
        tokio::task::yield_now().await;
        let result = sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        assert_eq!(result, 0);
        assert_eq!(key_stream.n_keys().await, 0);
    }

    #[tokio::test]
    async fn test_lagged() {
        let key_stream = KeyStream::<String, String>::new(1);
        let sender = key_stream.sender();
        let mut receiver = sender.subscribe("1".to_string()).await;
        let result = sender
            .send(&"1".to_string(), "value1".to_string())
            .await
            .unwrap();
        assert_eq!(result, 1);
        let result = sender
            .send(&"1".to_string(), "value2".to_string())
            .await
            .unwrap();
        assert_eq!(result, 1);
        assert_eq!(
            receiver.recv().await,
            Err(broadcast::error::RecvError::Lagged(1))
        );
        assert_eq!(receiver.recv().await.unwrap(), "value2".to_string());
    }

    #[tokio::test]
    async fn test_recv_struct() {
        #[derive(Clone, Debug)]
        struct MyStruct {
            field1: String,
            field2: i32,
        }
        let key_stream = KeyStream::<String, MyStruct>::new(10);
        let sender = key_stream.sender();
        let mut receiver = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(
                &"1".to_string(),
                MyStruct {
                    field1: "value".to_string(),
                    field2: 42,
                },
            )
            .await
            .unwrap();
        let received = receiver.recv().await.unwrap();
        assert_eq!(received.field1, "value".to_string());
        assert_eq!(received.field2, 42);
    }

    #[tokio::test]
    async fn test_recv_arc_struct() {
        #[derive(Debug)]
        struct MyStruct {
            field1: String,
            field2: i32,
        }
        let key_stream = KeyStream::<String, Arc<MyStruct>>::new(10);
        let sender = key_stream.sender();
        let mut receiver = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(
                &"1".to_string(),
                Arc::new(MyStruct {
                    field1: "value".to_string(),
                    field2: 42,
                }),
            )
            .await
            .unwrap();
        let received = receiver.recv().await.unwrap();

        assert_eq!(received.field1, "value".to_string());
        assert_eq!(received.field2, 42);
    }

    #[tokio::test]
    async fn test_messages_broadcasted() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let mut receiver1 = sender.subscribe("1".to_string()).await;
        let mut receiver2 = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        assert_eq!(receiver1.recv().await.unwrap(), "value".to_string());
        assert_eq!(receiver2.recv().await.unwrap(), "value".to_string());
    }

    #[tokio::test]
    async fn test_key_filter() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let mut receiver1 = sender.subscribe("1".to_string()).await;
        let mut receiver2 = sender.subscribe("2".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 2);
        sender
            .send(&"1".to_string(), "value1".to_string())
            .await
            .unwrap();
        sender
            .send(&"2".to_string(), "value2".to_string())
            .await
            .unwrap();
        assert_eq!(receiver1.recv().await.unwrap(), "value1".to_string());
        assert_eq!(receiver2.recv().await.unwrap(), "value2".to_string());
        assert_eq!(
            receiver1.try_recv().await,
            Err(broadcast::error::TryRecvError::Empty)
        );
        assert_eq!(
            receiver2.try_recv().await,
            Err(broadcast::error::TryRecvError::Empty)
        );
    }

    #[tokio::test]
    async fn test_key_drop() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let receiver = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        drop(receiver);
        // give the on_drop task a chance to run
        tokio::task::yield_now().await;
        assert_eq!(key_stream.n_keys().await, 0);
    }

    #[tokio::test]
    async fn test_key_non_dropped_if_other_receiver_exists() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let receiver1 = sender.subscribe("1".to_string()).await;
        let _receiver2 = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        drop(receiver1);
        // give the on_drop task a chance to run
        tokio::task::yield_now().await;
        assert_eq!(key_stream.n_keys().await, 1);
    }

    #[tokio::test]
    async fn test_two_clients() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender1 = key_stream.sender();
        let sender2 = key_stream.sender();
        let mut receiver1 = sender1.subscribe("1".to_string()).await;
        let mut receiver2 = sender2.subscribe("1".to_string()).await;

        assert_eq!(key_stream.n_keys().await, 1);

        sender1
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();

        assert_eq!(receiver1.recv().await.unwrap(), "value".to_string());
        assert_eq!(receiver2.recv().await.unwrap(), "value".to_string());
        assert_eq!(
            receiver1.try_recv().await,
            Err(broadcast::error::TryRecvError::Empty)
        );
        assert_eq!(
            receiver2.try_recv().await,
            Err(broadcast::error::TryRecvError::Empty)
        );

        drop(sender2);
        // give the on_drop task a chance to run
        tokio::task::yield_now().await;

        assert_eq!(key_stream.n_keys().await, 1);

        sender1
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();

        assert_eq!(receiver1.recv().await.unwrap(), "value".to_string());
    }

    #[tokio::test]
    async fn test_reconnect() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let mut receiver1 = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        assert_eq!(receiver1.recv().await.unwrap(), "value".to_string());
        drop(receiver1);
        // give the on_drop task a chance to run
        tokio::task::yield_now().await;
        assert_eq!(key_stream.n_keys().await, 0);
        let mut receiver2 = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value2".to_string())
            .await
            .unwrap();
        assert_eq!(receiver2.recv().await.unwrap(), "value2".to_string());
    }

    #[tokio::test]
    async fn test_resubscribe_before_cleanup_runs() {
        // Interleaved drop/resubscribe on the same key: dropping receiver1 queues a
        // cleanup notification, but we resubscribe *before* the cleanup task runs.
        // The stale notification must NOT remove the key, because receiver2 is live.
        // This exercises the `receiver_count() == 0` re-check under the write lock.
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let receiver1 = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);

        // Drop receiver1 (queues a cleanup notification for key "1") and immediately
        // resubscribe without yielding, so the cleanup task has not processed the
        // notification yet when the key is re-registered.
        drop(receiver1);
        let mut receiver2 = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);

        // Now let the cleanup task process the stale notification. It must see
        // receiver2 still alive (receiver_count() == 1) and keep the key.
        tokio::task::yield_now().await;
        assert_eq!(key_stream.n_keys().await, 1);

        // The key must still deliver messages to the live receiver.
        let result = sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        assert_eq!(result, 1);
        assert_eq!(receiver2.recv().await.unwrap(), "value".to_string());
    }

    #[tokio::test]
    async fn test_shrink_dict() {
        let key_stream = KeyStream::<i32, String>::new(1);
        let sender = key_stream.sender();
        let mut set = JoinSet::new();
        let mut subs = (0..500)
            .map(|i| {
                set.spawn({
                    let value = sender.clone();
                    async move { value.subscribe(i).await }
                })
            })
            .collect::<Vec<_>>();
        set.join_all().await;
        assert_eq!(key_stream.n_keys().await, 500);
        subs.drain(0..400);
        // give the on_drop task a chance to run
        tokio::task::yield_now().await;
        assert!(key_stream.key_capacity().await < 500);
    }

    #[tokio::test]
    async fn test_drop_sender() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let mut receiver = sender.subscribe("1".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 1);
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        drop(sender);
        tokio::task::yield_now().await;
        assert_eq!(receiver.recv().await.unwrap(), "value".to_string());
        assert_eq!(
            receiver.try_recv().await,
            Err(broadcast::error::TryRecvError::Empty)
        );
    }

    #[tokio::test]
    async fn test_drop_stream() {
        // This test ensures that dropping the KeyStream doesn't cause any panics
        // actual data may vary
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        drop(key_stream);
        let mut receiver = sender.subscribe("1".to_string()).await;
        sender
            .send(&"1".to_string(), "value".to_string())
            .await
            .unwrap();
        tokio::task::yield_now().await;
        assert_eq!(receiver.recv().await.unwrap(), "value".to_string());
        assert_eq!(
            receiver.try_recv().await,
            Err(broadcast::error::TryRecvError::Empty)
        );
    }

    #[tokio::test]
    async fn test_len_and_capacity() {
        let key_stream = KeyStream::<String, String>::new(10);
        let sender1 = key_stream.sender();
        let sender2 = key_stream.sender();
        assert_eq!(key_stream.n_keys().await, 0);
        assert_eq!(sender1.n_keys().await, 0);
        assert_eq!(sender2.n_keys().await, 0);
        assert_eq!(
            key_stream.key_capacity().await,
            sender1.key_capacity().await
        );
        assert_eq!(
            key_stream.key_capacity().await,
            sender2.key_capacity().await
        );
        let _receiver1 = sender1.subscribe("1".to_string()).await;
        let _receiver2 = sender2.subscribe("2".to_string()).await;
        let _receiver3 = sender2.subscribe("3".to_string()).await;
        assert_eq!(key_stream.n_keys().await, 3);
        assert_eq!(sender1.n_keys().await, 3);
        assert_eq!(sender2.n_keys().await, 3);
        assert_eq!(
            key_stream.key_capacity().await,
            sender1.key_capacity().await
        );
        assert_eq!(
            key_stream.key_capacity().await,
            sender2.key_capacity().await
        );
    }

    #[tokio::test]
    async fn test_stream() {
        use futures::StreamExt;
        type WatchStream =
            Pin<Box<dyn futures::Stream<Item = Result<String, RecvError>> + Send + 'static>>;
        let key_stream = KeyStream::<String, String>::new(10);
        let sender = key_stream.sender();
        let receiver = sender.subscribe("1".to_string()).await;
        sender
            .send(&"1".to_string(), "value1".to_string())
            .await
            .unwrap();
        let stream = receiver.to_async_stream();
        let stream = Box::pin(stream) as WatchStream;
        sender
            .send(&"1".to_string(), "value2".to_string())
            .await
            .unwrap();
        let msg = timeout(Duration::from_secs(1), stream.take(2).collect::<Vec<_>>()).await;
        let msg = msg.expect("timeout");
        assert_eq!(
            msg,
            vec![Ok("value1".to_string()), Ok("value2".to_string())]
        );
    }
}