Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have been using Python coroutines instead of threading with some success. It occurred to me that I might have a use for a coroutine that knows about itself, so it can send itself something. I found that this is not possible (in Python 3.3.3 anyway). To test, I wrote the following code:

def recursive_coroutine():
    rc = (yield)
    rc.send(rc)

reco = recursive_coroutine()
next(reco)
reco.send(reco)

This raises an exception:

Traceback (most recent call last):
  File "rc.py", line 7, in <module>
    reco.send(reco)
  File "rc.py", line 3, in recursive_coroutine
    rc.send(rc)
ValueError: generator already executing

Although the error is clear, it feels like this should be possible. I never got as far as to come up with a useful, realistic application of a recursive coroutine, so I'm not looking for an answer to a specific problem. Is there a reason, other than perhaps implementation difficulty, that this is not possible?

share|improve this question
add comment

1 Answer 1

up vote 3 down vote accepted

This isn't possible because for send to work, the coroutine has to be waiting for input. yield pauses a coroutine, and send and next unpause it. If the generator is calling send, it can't simultaneously be paused and waiting for input.

If you could send to an unpaused coroutine, the semantics would get really weird. Suppose that rc.send(rc) line worked. Then send would continue the execution of the coroutine from where it left off, which is the send call... but there is no value for send to return, because we didn't hit a yield.

Suppose we return some dummy value and continue. Then the coroutine would execute until the next yield. At that point, what happens? Does execution rewind so send can return the yielded value? Does the yield discard the value? Where does control flow go? There's no good answer.

share|improve this answer
1  
I would expect a send to just start executing at the next available yield in the coroutine (which isn't present in the example, but ... ) –  gens Mar 26 at 1:31
    
@gens: How do you know what the next available yield is? What if it's in a loop, or a conditional, or a with block? Jumping to the next yield, whatever "next" may mean, isn't particularly useful behavior. –  user2357112 Mar 26 at 1:36
1  
I see your point and why 'the next yield' is not clear. However I'm not convinced there are no better answers than to raise an exception. What if send would just put the sent value on an input queue and the routine would remain running (like it already was). When it hits a subsequent yield it would pop the latest value off the input queue and return it. If the queue is empty, it would pause like it does today. –  gens Mar 26 at 1:58
    
@gens: Then send has to return twice, once so the coroutine can carry on to the next yield and once when it hits yield. You also run into problems where the queue never empties, because if the sends get ahead of the yields, nothing allows the yields to catch up. –  user2357112 Mar 26 at 3:00
    
If you try really hard, make a lot of arbitrary decisions, and handle a lot of edge cases, you can get some sort of definite behavior out of the whole mess. It's too much extra complexity for no real use case, though. –  user2357112 Mar 26 at 3:41
show 1 more comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.