Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

To send something to all clients, you use:

io.sockets.emit('response', data);

To receive from clients, you use:

socket.on('cursor', function(data) {
  ...
});

How can I combine the two so that when recieving a message on the server from a client, I send that message to all users except the one sending the message.

socket.on('cursor', function(data) {
  io.sockets.emit('response', data);
});

Do I have to hack it around by sending the client-id with the message and then checking on the clientside or is there an easier way?

share|improve this question

6 Answers 6

up vote 172 down vote accepted

Here is my list

 // send to current request socket client
 socket.emit('message', "this is a test");

 // sending to all clients, include sender
 io.sockets.emit('message', "this is a test");

 // sending to all clients except sender
 socket.broadcast.emit('message', "this is a test");

 // sending to all clients in 'game' room(channel) except sender
 socket.broadcast.to('game').emit('message', 'nice game');

  // sending to all clients in 'game' room(channel), include sender
 io.sockets.in('game').emit('message', 'cool game');

 // sending to individual socketid
 io.sockets.socket(socketid).emit('message', 'for your eyes only');
share|improve this answer
1  
Would you like to contribute this to the FAQ? or can I do it for you? (I'd provide a backlink here) –  Kos Oct 18 '12 at 13:38
    
Okey, Kao you can do it for me, thanks. –  LearnRPG Nov 25 '12 at 0:01
    
// sending to all clients in 'game' room(channel), include sender io.sockets.in('game').emit('message', 'cool game'); can we send the message excluding sender in this? –  Thirumalai murugan Dec 7 '13 at 12:40
1  
i dont' have an io here.only socket –  chovy Dec 8 '13 at 0:46
10  
How does it work on v1.0.x? –  Pablo De Nadai Jun 5 '14 at 23:53

From the @LearnRPG answer but with 1.0:

 // send to current request socket client
 socket.emit('message', "this is a test");

 // sending to all clients, include sender
 io.sockets.emit('message', "this is a test"); //still works
 //or
 io.emit('message', 'this is a test');

 // sending to all clients except sender
 socket.broadcast.emit('message', "this is a test");

 // sending to all clients in 'game' room(channel) except sender
 socket.broadcast.to('game').emit('message', 'nice game');

 // sending to all clients in 'game' room(channel), include sender
 // docs says "simply use to or in when broadcasting or emitting"
 io.in('game').emit('message', 'cool game');

 // sending to individual socketid, socketid is like a room
 socket.broadcast.to(socketid).emit('message', 'for your eyes only');
share|improve this answer

For namespaces within rooms looping the list of clients in a room (similar to Nav's answer) is one of only two approaches I've found that will work. The other is to use exclude. E.G.

socket.on('message',function(data) {
    io.of( 'namespace' ).in( data.roomID ).except( socket.id ).emit('message',data);
}
share|improve this answer
3  
except has been removed from 1.x :/ –  coulix Jun 5 '14 at 23:13

broadcast.emit sends the msg to all other clients (except for the sender)

socket.on('cursor', function(data) {
  socket.broadcast.emit('msg', data);
});
share|improve this answer

use this coding

io.sockets.on('connection', function (socket) {

    socket.on('mousemove', function (data) {

        socket.broadcast.emit('moving', data);
    });

this socket.broadcast.emit() will emit everthing in the function except to the server which is emitting

share|improve this answer
1  
how do you get io inside this if the callback is defined in anther file –  chovy Dec 8 '13 at 0:47
    
I have my app in multiple files, and I concat them with PrePros or Koala instead of requiring them, it allows me to share all of their variables –  Steel Brain Oct 18 '14 at 4:53

Other cases

io.of('/chat').on('connection', function (socket) {
    //sending to all clients in 'room' and you
    io.of('/chat').in('room').emit('message', "data");
};
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.