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I am doing some sort of encryption which depends of the order of messages sent via a Netty channel. What I am expecting is that if I write message A before message B to a channel then they should be sent to the remote socket in the same order I have written them to the channel. So is the case I need already supported by Netty?

On the other hand Netty's Channel accepts concurrent write calls and I am in doubt my requirement can already met. I had to synchronize on a statefull (a per channel one) encoder today due to currupt state of a data structure. However I am still not sure whether the in-filter synchronization will help my need.

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Netty will preserve order to the best of my knowledge. If you are using TCP then that will take care of the rest of the network ordering. If you use UDP then no guarantees on ordering. –  Abe Jan 31 '12 at 18:29

1 Answer 1

Yes, the messages will get transfered in the same order as you call Channel.write(..). There is nothing you need to worry about here.

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However it seems that two threads can be concurrently active on a single channel pipeline as far as I have observed. How does Netty preserve the order then? –  Ersin Er Feb 1 '12 at 6:24
    
if you can determine the order of the 2 threads which call Channel.write then Netty will preserve it –  robinmag Feb 1 '12 at 9:35
    
Exactly.. Netty will just send the stuff out in the same order as you called Channel.write(..). Thats it.. –  Norman Maurer Feb 1 '12 at 10:06

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