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I know pyinotify.Notifier.check_events(self, timeout=None) can take a timeout - but I'd prefer it poll indefinitely. Is it possible to interrupt it?

I am calling Notifier.stop(self), but it does not seem to be escaping from check_events.

In the below example, another thread calls stopIt(), and self.notifier.stop() is called - but neither "check_events is True" nor "check_events is False" is printed:

def run(self):
    self.notifier = pyinotify.Notifier(self.monitor, MyProcessing(self))
    while True:
        self.notifier.process_events()
        print "Waiting at check_events"
        if self.notifier.check_events():
            print "check_events is True"
            self.notifier.read_events()
        else:
            print "check_events is False"
    print "Out of while"
    return True

def stopIt(self):
    self.notifier.stop()
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1 Answer

up vote 1 down vote accepted

Even though threads run concurrently, each thread has its own independent flow of execution. One thread can not inject commands into another thread's flow of execution by calling its methods (such as by calling stopIt).

So what else can we do? Well, besides the obvious option of using the timeout, you could use the other thread to create a dummy file, say, which triggers an IN_CREATE event which MyProcessing could then process.

I see MyProcessing(self) knows self, so it could set self.done = True, (where self is the threading.Thread instance, not the MyProcessing instance.) MyProcessing could then delete the dummy file.

Then you could use

    if (not self.done) and self.notifier.check_events():
        print "check_events is True"
        self.notifier.read_events()

to break out of the check without setting a timeout.

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I was thinking something along these lines...but if self.done is evaluated and check_events is blocking - will self.done be re-evaluated if its value changes? –  CrackerJack9 Dec 31 '11 at 7:26
    
When the other thread creates a dummy file, the IN_CREATE event will unblock check_events. So self.done gets re-evaluated in the next pass through the loop. –  unutbu Dec 31 '11 at 10:17
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