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I have a list of generators in a function alternate_all(*args) that alternates between each generator in the list to print their first item, second item, ..., etc. until all generators are exhausted.

My code works until a generator is exhausted and once the StopIteration occurs, it stops printing, when I want it to continue with the rest of the generators and ignore the exhausted one:

def alternate_all(*args):
    iter_list = []
    for iterable in args:
        iter_list.append(iter(iterable))
    try:
        while True:
            for iterable in iter_list:
                val = next(iter_list[0])
                iter_list.append(iter_list.pop(0))
                yield val
    except StopIteration:
        pass

            
if __name__ == '__main__':
    for i in alternate_all('abcde','fg','hijk'):
        print(i,end='')

My output is:

afhbgic

When it should be:

afhbgicjdke

How can I get this to ignore the exhausted generator? I would prefer not to use itertools and keep this same structure.

Improve this question
10
  • 2
    is there any reason you would prefer not to use itertools.zip_longest?
    – rv.kvetch
    Oct 28, 2021 at 4:05
  • You are getting a StopIteration exception in next(iter_list[0]) if the iterator has been exhausted. You should catch and handle it.
    – Selcuk
    Oct 28, 2021 at 4:10
  • 2
    I'm learning generators and trying to understand them without simplifying the solution by just using itertools. This is an assignment requirement
    – newbiecoder11
    Oct 28, 2021 at 4:12
  • 1
    Sorry, I should have been more specific. You should handle it inside the while loop so that it keeps yielding. You should then implement the logic to quit when all iterators are exhausted.
    – Selcuk
    Oct 28, 2021 at 4:17
  • 1
    @tdelaney it's certainly more conventional to use a comprehension, although I personally prefer using map with named functions. I honestly don't understand Guido's hate for map().
    – ddejohn
    Oct 28, 2021 at 4:31

2 Answers 2

Reset to default
4

This works. I tried to stay close to how your original code works (though I did replace your first loop with a list comprehension for simplicity).

def alternate_all(*args):
    iter_list = [iter(arg) for arg in args]
    while iter_list:
        i = iter_list.pop(0)
        try:
            val = next(i)
        except StopIteration:
            pass
        else:
            yield val
            iter_list.append(i)

The main problem with your code was that your try/except was outside of the loop, meaning the first exhausted iterator would exit from the loop. Instead, you want to catch StopIteration inside the loop so you can keep going, and the loop should keep going while iter_list still has any iterators in it.

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1
  • @newbiecoder11 please accept this answer instead of mine.
    – ddejohn
    Oct 29, 2021 at 19:14
0

How about the itertools-recipe roundrobin, straight from the itertools documentation? You'd still end up using itertools.cycle and itertools.islice, though, not sure if that's a deal-breaker.

def roundrobin(*iterables):
    "roundrobin('ABC', 'D', 'EF') --> A D E B F C"
    # Recipe credited to George Sakkis
    num_active = len(iterables)
    nexts = cycle(iter(it).__next__ for it in iterables)
    while num_active:
        try:
            for next in nexts:
                yield next()
        except StopIteration:
            # Remove the iterator we just exhausted from the cycle.
            num_active -= 1
            nexts = cycle(islice(nexts, num_active))
Improve this answer
1
  • OP explicitly states that they want to avoid itertools.
    – ddejohn
    Oct 28, 2021 at 4:44

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