18

In the 0.9.x version, we can get socket by ID like this:

io.sockets.socket(socketId)

But in 1.0.x we can't. How to find a socket by id in 1.0.x?

6 Answers 6

50

For socket.io 1.0 use:

io.sockets.connected[socketId]

For 0.9 its io.sockets.sockets[socketId] and not io.sockets.socket[socketId]

2
  • 2
    For namespaced connections I could not access it via io.sockets.connected[socketId].emit() but it did work similarly var nsp = io.of('/my-namespace'); then nsp.connected[socketId].emit(). Thanks
    – Luckylooke
    Sep 22, 2016 at 5:03
  • Agreeing with @Luckylooke, I can put it into a one liner like this: io.of('/namespace').connected[socketId].emit('message-tag', data, callback) I think it is worth to mention that I can also pass a callback function as a bridge to request data from the connected client this way.
    – Aryo
    Jan 26, 2020 at 22:03
19

you can also use like:

io.to(socketid).emit();
0
17

Socket.io Version 4.0.0

io.sockets.sockets.get(socketId);

8

Version 3.0.3

// in "of", you can put '/' or whatever namespace you're using
    
io.of('/').sockets.get(socketId)

Basically, sockets is no longer a simple Object. It's a Map, so you have to use .get().

1
  • Also works for v4.2.0 Oct 7, 2021 at 9:34
7

Socket.io Version 2.0.3+

    let namespace = null;
    let ns = _io.of(namespace || "/");
    let socket = ns.connected[socketId] // assuming you have  id of the socket
3

The most simlple way I tried is:

var socket1 = io.of("/").connected[socketId];

Then you can do

socket1.join("some room");
socket1.leave("some room");
socket1.emit();

or other things you want.

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