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with code such as

synchronized (this)
{
    mTimeOutRunnable = new Runnable()
    {
        @Override
        public void run()
        {
            ..some code
        }
    };
}

the reference assignement of the new Runnable class is covered by the block but will code inside run() (which is asyncronously called outside of the block) enter into the synchronized block also?

I wrapped in the sync block in the first place as this is called from a worker thread and I want to ensure the calling (main) thread has access to the mTimeOutRunnable object also.

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1  
Why would you be making a piece of code a thread but then subsequently require that it be synchronized, i.e. only one thread using it at a time? –  amphibient Dec 4 '12 at 18:09
    
sorry, the code inside the run() method here are not what is called on my worker thread - this is passed to a Looper (Android) which will be called on a main thread. The whole code above is on the worker thread however –  Dori Dec 4 '12 at 18:12
    
(Note also that this this within Runnable will be a different this to the one outside. So synchronized (this) { } will lock on different objects and so will not work as intended.) –  Tom Hawtin - tackline Dec 4 '12 at 18:25
    
@Tom you mean if there were another sync block inside run which used (this) also? Looking at the answer from Keppil the sync block will have no effect inside run anyway. –  Dori Dec 4 '12 at 19:58
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2 Answers 2

up vote 5 down vote accepted

No, only the assignment of your Runnable to mTimeOutRunnable is covered by the synchronized block, not subsequent calls to the run() method.

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+1 Excellent, thats what i was hoping! thanks –  Dori Dec 4 '12 at 18:12
    
You're welcome! –  Keppil Dec 4 '12 at 18:18
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mTimeOutRunnable = new Runnable()
    {
        @Override
        public void run()
        {
            ..some code
        }
    };

is same as

synchronized(this){
     obj = new SomeClass();
}

So only the reference assignment is covered by synchronized block

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