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I wrote the following code:

initial_list = [item1, item2, item3, item4, ...]
lists = [[list1], [list2], [list3], [list4], ..., [list(n-1)], [list(n)]]
# The number of elements in the both lists might chance

while len(initial_list) > 0:
    for list in lists:
        if len(initial_list) == 0:
            break
        item = initial_list.pop(0)
        list.append(item)

I would like to know if there is any nicer/simpler/shorter way to write the code above? If yes, please do not use difficult functions (etc.) because I am still a beginner and will not understand it.

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Are you trying to add each item from the initial list to each nested list in the lists list? –  Martijn Pieters Nov 19 '13 at 18:54
    
It looks like initial_list can have more or less elements than lists. –  Matthias Nov 19 '13 at 18:56
    
Yes. Like that: first item from the initial list goes to the first nested list, the second one goes to the second nested list, ..., the Nth item in the initial list goes to the last (i.e. Nth) nested list, and then (N + 1)th item goes to the first nested list again etc. And it stops when there's no elements in the initial list anymore. –  SomeOne Nov 19 '13 at 18:58

2 Answers 2

I believe you are trying to append items from initial_list to the nested list values in lists until all value initial_list are used, cycling over lists from the start if there are fewer nested lists than initial values to append.

Use zip() to pair up nested lists with initial_list items:

from itertools import cycle

for nested, value in zip(cycle(lists), initial_list):
    nested.append(value)

The itertools.cycle() function here ensures that all values from initial_list are used; zip() stops at the shortest list, which will always be initial_lists here.

Demo with an initial list of 10 values (integers 0 through to 9) and a nested list with 4 empty sublists:

>>> from itertools import cycle
>>> initial_list = range(10)
>>> lists = [[] for _ in range(4)]
>>> for nested, value in zip(cycle(lists), initial_list):
...     nested.append(value)
... 
>>> lists
[[0, 4, 8], [1, 5, 9], [2, 6], [3, 7]]

Not using cycling would require you to keep a counter and append to lists[count % len(lists)]. The counter can be generated with the enumerate() function:

for i, value in enumerate(initial_list):
    lists[i % len(lists)].append(value)
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Thanks! But is there any way to use the basic things (conditionals, iteration(for, while), etc) and make the code above better because your code is a bit too advanced for me. –  SomeOne Nov 19 '13 at 19:04
    
You asked for efficient code, this is (very) efficient code. It avoids popping the initial_list (shrinking a list costs you). I cannot re-cast this to something with basic things so easily. All I used is the standard library here, zip() is a built-in function. –  Martijn Pieters Nov 19 '13 at 19:06
    
I gave you an alternative version, one that uses a counter instead. –  Martijn Pieters Nov 19 '13 at 19:08
    
Ok, thanks! I will investigate your code, especially the 3rd and 4th lines because I don't understand these very well (I am a total beginner and I don't want to jump to new and more difficult before not knowing the basics well). –  SomeOne Nov 19 '13 at 19:09
    
Thanks for the alternative version as well! –  SomeOne Nov 19 '13 at 19:10

You can use:

if container:

...instead of:

if len(container) > 0:

Also, list_.pop(0) is slow. Maybe you are looking for a http://docs.python.org/3/library/collections.html#collections.deque ? It'll allow you to rapidly remove things from either end, but you won't be able to conveniently access (EG) the middle anymore.

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Thanks! That's a good point! –  SomeOne Nov 19 '13 at 19:11

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