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import threading
import Queue

q = Queue.Queue()
class Worker( threading.Thread ):
    def __init__( self, q ):
        threading.Thread.__init__( self )
        self.q = q

    def run( self ):
        while True:
            print '%s waiting for data' % self.getName()
            data = self.q.get()
            print '%s data fetched from queue %s' % ( self.getName(), data )
            if data == 'shutdown':
                print '%s shutting down in %s' % ( self.getName(), self )
                return
            print '%s received a message: %s' % ( self.getName(), data )

    def stop( self ):
        self.q.put( "shutdown" )

#        self.join()  # If I uncomment this line, then sometimes the program does not complete.


def broadcast_event( data ):
    q.put( data )

t1 = Worker( q )
t2 = Worker( q )
t1.start()
t2.start()
broadcast_event( "first event" )
broadcast_event( "second event" )

t1.stop()
t2.stop()

I'm trying to understand threads in python and I'm stuck in the multithreaded queue example. What I'm trying to do:-

  1. Create 2 threads using a single queue object
  2. Now, I put 2 different data entries in the queue (using broadcast_event function)
  3. Now, in the stop method, there is a commented line where I'm joining the thread back to the main program.

But, when I uncomment the self.join line, the program hangs up and runs forever. However, if I remove the self.join, it works perfectly.

I want to understand if there is a problem how I'm trying to make use of join.

share|improve this question

2 Answers 2

up vote 1 down vote accepted

You're problem is that both threads use the same queue. Deadlock scenario is:

  1. main thread sends 'shutdown' in t1.stop()
  2. t2 reads 'shutdown' from q
  3. main thread joins t1, which is waiting forever for new messages.

You can solve this by making 2 queues or doing first two shutdown messages and then two joins.

share|improve this answer
    
So, does t2.stop get called? –  GodMan Apr 16 '13 at 12:29
    
@GodMan, it does not. Main thread never returns from t1.join(), since it never finishes. –  zch Apr 16 '13 at 12:30
    
ok cool. Thanks a lot for clearing my doubt. –  GodMan Apr 16 '13 at 12:31

The problem is that you have two threads using one queue. When you put a message in the queue, you can't tell which of the threads will consume it. When you call stop(), adding "shutdown" to the queue, it may be consumed by any of the threads, not necessarily the one you intend.

The result can be that another thread is quitting, and you're joining the wrong one.

A possible solution is to first put shutdown in the queue N times (N = number of threads), and then join them all.

for i in range(N):
  q.put("shutdown")
for t in threads:
  t.join()

A better, more robust solution, would be to avoid passing the shutdown message through the queue. You can use a self.should_stop attribute for that, checking this attribute periodically in run.

share|improve this answer
    
but, if I'm doing self.join, how can I be joining the wrong one? –  GodMan Apr 16 '13 at 12:26
    
the problem is not with calling join, it is with putting shutdown in the queue. the shutdown-request can reach the wrong thread (not self) –  shx2 Apr 16 '13 at 12:27

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