21

I want to statically remove all users from a room, effectively deleting that room. The idea is that another room with the same name may be created again in the future, but I want it created empty (without the listeners from the previous room).

I'm not interested in managing the room status myself but rather curious as if I can leverage socket.io internals to do this. Is this possible? (see also this question)

5 Answers 5

24

Is that what you want ?

io.sockets.clients(someRoom).forEach(function(s){
    s.leave(someRoom);
});
2
  • 1
    Can't check right now but this might work too : io.sockets.in(someRoom).leave(someRoom) Commented Apr 28, 2014 at 13:36
  • 3
    @DenysSéguret io.sockets.in(room).leave(room) it throws an error saying io.sockets.in(...).leave is not a function. And the above solution also doesn't work. That one also throwing an error io.sockets.clients(...).forEach is not a function
    – Naren
    Commented Nov 19, 2019 at 19:15
17

For an up-to-date answer to this question, everyone who wants to remove a room can make use of Namespace.clients(cb). The cb callback will receive an error object as the first argument (null if no error) and a list of socket IDs as the second argument.

It should work fine with socket.io v2.1.0, not sure which version is the earliest compatible one.

io.of('/').in('chat').clients((error, socketIds) => {
  if (error) throw error;

  socketIds.forEach(socketId => io.sockets.sockets[socketId].leave('chat'));

});

@See https://github.com/socketio/socket.io/issues/3042
@See https://socket.io/docs/server-api/#namespace-clients-callback

3
  • Works for me in 2.2.0.
    – tremby
    Commented Aug 23, 2019 at 18:56
  • 1
    What if using a cluster with redis-adapter, does the io.sockets.sockets[socketId] is available in all processes?
    – CORSAIR
    Commented Jul 22, 2020 at 11:50
  • This worked for me while the answer doesn't work.
    – Ali Has
    Commented Jan 10, 2021 at 8:52
9

if you are using socket io v4 or greater you can use this:

io.in("room1").socketsLeave("room1");

//all the clients in room1 will leave romm1
//hence deleting the room automatically
//as there are no more active users in it
6

Also, it's worth mentioning that...

Upon disconnection, sockets leave all the channels they were part of automatically, and no special teardown is needed on your part.

https://socket.io/docs/rooms-and-namespaces/ (Disconnection)

3
  • 1
    This doesn't solve the problem described - ie. how can these users/sockets be removed in the first place? If you're simply interested in adding some useful information, perhaps that would be worthwhile just as a comment? Commented Apr 12, 2020 at 3:04
  • 1
    "The idea is that another room with the same name may be created again in the future, but I want it created empty..." And then read what I quoted from the documentation. When a socket disconnects, it leaves all the channels automatically, so there's no need for teardown. I see no reason for your downvote. Sorry but your argument doesn't really make sense for me. Perhaps I misunderstood? :) Commented Apr 12, 2020 at 16:47
  • 2
    @JakubDuchon, thank you for your contribution to this question. Your answer helps me :) and anyone who thinks they may have to manually manage a room's deletion.
    – zelusp
    Commented Oct 15, 2020 at 18:53
0

To add onto ROCK ON's answer for for version 4.X. If you need to do more than just leave the room, you can do:

const sockets = await io.in(room).fetchSockets();
sockets.forEach(s => {
  // Do stuff
  s.emit('host disconnected', room);
  s.leave(room);
});

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