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I've a python program that spawns a number of threads. These threads last anywhere between 2 seconds to 30 seconds. In the main thread I want to track whenever each thread completes and print a message. If I just sequentially .join() all threads and the first thread lasts 30 seconds and others complete much sooner, I wouldn't be able to print a message sooner -- all messages will be printed after 30 seconds.

Basically I want to block until any thread completes. As soon as a thread completes, print a message about it and go back to blocking if any other threads are still alive. If all threads are done then exit program.

One way I could think of is to have a queue that is passed to all the threads and block on queue.get(). Whenever a message is received from the queue, print it, check if any other threads are alive using threading.active_count() and if so, go back to blocking on queue.get(). This would work but here all the threads need to follow the discipline of sending a message to the queue before terminating.

I'm wonder if this is the conventional way of achieving this behavior or are there any other / better ways ?

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5 Answers 5

You can let the threads push their results into a threading.Queue. Have another thread wait on this queue and print the message as soon as a new item appears.

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Why not just have the threads themselves print a completion message, or call some other completion callback when done?

You can the just join these threads from your main program, so you'll see a bunch of completion messages and your program will terminate when they're all done, as required.

Here's a quick and simple demonstration:

#!/usr/bin/python

import threading
import time

def really_simple_callback(message):
    """
    This is a really simple callback. `sys.stdout` already has a lock built-in,
    so this is fine to do.
    """    
    print message

def threaded_target(sleeptime, callback):
    """
    Target for the threads: sleep and call back with completion message.
    """
    time.sleep(sleeptime)
    callback("%s completed!" % threading.current_thread())

if __name__ == '__main__':
    # Keep track of the threads we create
    threads = []

    # callback_when_done is effectively a function
    callback_when_done = really_simple_callback

    for idx in xrange(0, 10):
        threads.append(
            threading.Thread(
                target=threaded_target,
                name="Thread #%d" % idx,
                args=(10 - idx, callback_when_done)
            )
        )

    [t.start() for t in threads]
    [t.join() for t in threads]

    # Note that thread #0 runs for the longest, but we'll see its message first!
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The thread needs to be checked using the Thread.is_alive() call.

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I'm not sure I see the problem with using: threading.activeCount()

to track the number of threads that are still active?

Even if you don't know how many threads you're going to launch before starting it seems pretty easy to track. I usually generate thread collections via list comprehension then a simple comparison using activeCount to the list size can tell you how many have finished.

See here: http://docs.python.org/library/threading.html

Alternately, once you have your thread objects you can just use the .isAlive method within the thread objects to check.

I just checked by throwing this into a multithread program I have and it looks fine:

for thread in threadlist:
        print(thread.isAlive())

Gives me a list of True/False as the threads turn on and off. So you should be able to do that and check for anything False in order to see if any thread is finished.

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What I would suggest is loop like this

while len(threadSet) > 0:
    time.sleep(1)
    for thread in theadSet:
        if not thread.isAlive()
            print "Thread "+thread.getName()+" terminated"
            threadSet.remove(thread)

There is a 1 second sleep, so there will be a slight delay between the thread termination and the message being printed. If you can live with this delay, then I think this is a simpler solution than the one you proposed in your question.

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