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I have two (but later I'll be three) go routines that are handling incoming messages from a remote server (from a ampq channel). But because they are handling on the same data/state, I want to block all other go routines, except the one running.

I come up with a solution to use chan bool where each go routine blocks and then release it, the code is like:

package main

func a(deliveries <-chan amqp, handleDone chan bool) {
    for d := range deliveries {
        <-handleDone        // Data comes always, wait for other channels
        handleDone <- false // Block other channels

        // Do stuff with data...

        handleDone <- true // I'm done, other channels are free to do anything
    }
}

func b(deliveries <-chan amqp, handleDone chan bool) {
    for d := range deliveries {
        <-handleDone
        handleDone <- false
        // Do stuff with data...
        handleDone <- true
    }
}

func main() {
    handleDone := make(chan bool, 1)
    go a(arg1, handleDone)
    go b(arg2, handleDone)
    // go c(arg3, handleDone) , later

    handleDone <- true // kickstart
}

But for the first time each of the function will get handleDone <- true, which they will be executed. And later if I add another third function, things will get more complicated. How can block all other go routines except the running? Any other better solutions?

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I don't think your channels do what you think they do, since you're never checking the received value. Anyway, using a buffered channel as a mutex/semaphore can be dangerous. Use an actual Mutex instead. –  JimB Mar 15 '13 at 14:34
    
Note that they are called "goroutines", not "go routines". This is because the word "routine" might refer to any procedure/function in any procedural PL, hence "go routines" sounds like "routines in Go" which makes the intended meaning of the term disappear. –  kostix Apr 29 '13 at 7:29

3 Answers 3

You want to look at the sync package.

http://golang.org/pkg/sync/

You would do this with a mutex.

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If you have an incoming stream of messages and you have three goroutines listening on that stream and processing and you want to ensure that only one goroutine is running at a time, the solution is quite simple: kill off two of the goroutines.

You're spinning up concurrency and adding complexity and then trying to prevent them from running concurrently. The end result is the same as a single stream reader, but with lots of things that can go wrong.

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I'm puzzled why you want this - why can't each message on deliveries be handled independently? and why are there two different functions handling those message? If each is responsible for a particular type of message, it seems like you want one deliveries receiver that dispatches to appropriate logic for the type.

But to answer your question, I don't think it's true that each function will get a true from handleDone on start. One (let's say it's a) is receiving the true sent from main; the other (b then) is getting the false sent from the first. Because you're discarding the value received, you can't tell this. And then both are running, and you're using a buffered channel (you probably want make(chan bool) instead for an unbuffered one), so confusion ensues, particularly when you add that third goroutine.

The handleDone <- false doesn't actually accomplish anything. Just treat any value on handleDone as the baton in a relay race. Once a goroutine receives this value, it can do its thing; when it's done, it should send it to the channel to hand it to the next goroutine.

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Thanks for the comment's. I've changed some parts of the code. I removed the falses. But it get now stack and it just wait's there. It just wait at <-handleDone in both go function. Seems they don't get the true from the main. –  Fatih Arslan Mar 14 '13 at 20:39
    
What's main doing then? has it reached handleDone <- true? –  Scott Lamb Mar 14 '13 at 20:46
    
The problem is, after handleDone <- true, func a() just waits for func b(), however in my case func b() could not executed at all. All I want is at any time, if one of the go routines(a(), b(), etc.. is running than all others should just wait until the running one is finished. –  Fatih Arslan Mar 14 '13 at 20:51
    
Ahh, right. I led you astray when I suggested not using a buffered channel. Buffering actually makes sense in that case. –  Scott Lamb Mar 14 '13 at 22:02

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