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Assume these are instance methods and -run is called.

Is the lock on self released by the time -run returns?

...
- (void)dangerous {
    @synchronized (self) {
        [NSException raise:@"foo" format:@"bar"];
    }
}

- (void)run {
    @try { [self dangerous]; }
    @catch (NSException *ignored) {}
}
...
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3 Answers 3

up vote 9 down vote accepted

A @synchronized(obj) { code } block is effectively equivalent to

NSRecursiveLock *lock = objc_fetchLockForObject(obj);
[lock lock];
@try {
    code
}
@finally {
    [lock unlock];
}

though any particular aspect of this is really just implementation details. But yes, a @synchronized block is guaranteed to release the lock no matter how control exits the block.

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1  
objc_fetchLockForObject(code) should be objc_fetchLockForObject(obj), I suppose –  Bavarious Oct 12 '11 at 5:57
    
I was hoping for this level of detail (and thought this was probably the case). Thx! –  Todd Ditchendorf Oct 12 '11 at 6:05
    
@Bavarious: Oops, you're right. Good catch! –  Kevin Ballard Oct 12 '11 at 8:10

Yes, it is.

Lock on self will be released after your process goes out from @synchronized (self) {} block.

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Yes, the lock is released when -dangerous returns (even via exception). @synchronized adds an implicit exception handler to release the mutex.

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