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python - zip_longest without fillvalue

I am searching for a middle ground between Python's zip and zip_longest functions (from the itertools module), that exhausts all given iterators, but does not fill in anything. So, for example, it should transpose tuples like so:

(11, 12, 13    ),        (11, 21, 31, 41),
(21, 22, 23, 24),  -->   (12, 22, 32, 42),
(31, 32        ),        (13, 23,     43),
(41, 42, 43, 44),        (    24,     44)

(Spaces added for nicer graphical alignment.)

I managed to compose a crude a solution by cleaning out the fillvalues after zip_longest.

def zip_discard(*iterables, sentinel = object()):
    return map(
            partial(filter, partial(is_not, sentinel)), 
            zip_longest(*iterables, fillvalue=sentinel))

Is there a way to do this without introducing the sentinels to begin with? Can this be improved using yield? Which approach seems most efficient?

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Both zip and zip_longest were designed to always generate tuples of equal length, you can define your own generator that doesn't care about the len with something like this:

def _one_pass(iters):
    for it in iters:
        try:
            yield next(it)
        except StopIteration:
            pass #of some of them are already exhausted then ignore it.

def zip_varlen(*iterables):
    iters = [iter(it) for it in iterables]
    while True: #broken when an empty tuple is given by _one_pass
        val = tuple(_one_pass(iters))
        if val:
            yield val
        else:
            break

If the data being zipped together is fairly large then skipping the exhausted iterators every time can be expensive, it may be more efficient to remove the finished iterators from iters in the _one_pass function like this:

def _one_pass(iters):
    i = 0
    while i<len(iters):
        try:
            yield next(iters[i])
        except StopIteration:
            del iters[i]
        else:
            i+=1

both of these versions would remove the need to create intermediate results or use temporary filler values.


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