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This might look like a simple question, but it's boggling my mind: Assume I can't run Daemons, how would I set up a websocket server?

(Details: Apache 2.2.21, PHP 5.3.9, so preferably with PHP)

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Still need daemon.. like ZeroMQ –  Artjom Kurapov Apr 10 '12 at 9:18
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3 Answers

up vote 2 down vote accepted

By not wanting daemons I assume you are asking for something that runs in Apache/PHP rather than as a standalone program/server that you have to run.

Note that PHP does not yet have a good option that support the old Hixie WebSocket protocol and the newer HyBi/IETF protocol at the same time (most other languages have a server that supports both).

If you are willing to consider non-PHP options, these projects can be integrated into Apache and support both revisions of the protocol:

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http://code.google.com/p/phpwebsocket/

Servers need to run as daemons... what's the point of a server otherwise?

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Maybe http://code.google.com/p/phpwebsocket/ can help you.

From the howto:

// Server side
log("Handshaking...");
list($resource,$host,$origin) = getheaders($buffer);
$upgrade = "HTTP/1.1 101 Web Socket Protocol Handshake\r\n" .
       "Upgrade: WebSocket\r\n" .
       "Connection: Upgrade\r\n" .
       "WebSocket-Origin: " . $origin . "\r\n" .
       "WebSocket-Location: ws://" . $host . $resource . "\r\n" .
       "\r\n";
$handshake = true;
socket_write($socket,$upgrade.chr(0),strlen($upgrade.chr(0)));


// Client side
var host = "ws://localhost:12345/websocket/server.php";
try{
  socket = new WebSocket(host);
  log('WebSocket - status '+socket.readyState);
  socket.onopen    = function(msg){ log("Welcome - status "+this.readyState); };
  socket.onmessage = function(msg){ log("Received: "+msg.data); };
  socket.onclose   = function(msg){ log("Disconnected - status "+this.readyState);     };
}
catch(ex){ log(ex); }
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