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I'm trying to send a broadcast from java on my mac. This seems like it should work, but I'm getting a SecurityException. I've verified that there isn't a SecurityManager installed, and tried running my class using sudo.

The code:

public static void main(String[] args) throws Exception{
    SocketAddress sockAddr = new InetSocketAddress("192.168.0.255",
            4000);
    ByteBuffer bb = ByteBuffer.allocate(10);
    bb.put(new Byte("1"));
    DatagramChannel channel = DatagramChannel.open();
    channel.send(bb, sockAddr);
}

The exception:

Exception in thread "main" java.net.SocketException: Permission denied
    at sun.nio.ch.DatagramChannelImpl.send0(Native Method)
    at sun.nio.ch.DatagramChannelImpl.sendFromNativeBuffer(DatagramChannelImpl.java:301)
    at sun.nio.ch.DatagramChannelImpl.send(DatagramChannelImpl.java:281)
    at sun.nio.ch.DatagramChannelImpl.send(DatagramChannelImpl.java:250)
    at Test.main(Test.java:15)
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I'm surprised that you're not using a DatagramSocket for this, rather than a DatagramChannel - the channel is the underlying implementation of the socket, but may not have everything set up in order to perform the broadcast. –  Petesh Feb 27 '11 at 19:08

2 Answers 2

up vote 3 down vote accepted

Having done a little googling, you need to tell the socket that the DatagramChannel is using that it's a broadcast Channel using the code:

channel.socket().setBroadcast(true);

I think it's just that you need to set the broadcast socket option on the 'channel', which is the underlying O/S socket. Evidently this will be doable from the channel level once java7 comes out, but currently you need to access the DatagramSocket to set the parameter.

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awesome! That did the trick. Thank you very much. –  ddc Feb 27 '11 at 21:12

That's SocketException not SecurityException (or AccessControlException). Seems that the OS isn't allowing your process to send that datagram.

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oops - you're right. I just can't figure out why... –  ddc Feb 27 '11 at 18:06

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