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Hey guys I'm using python and I was just wondering how we can make combinations of lists of specific lengths from an original list of elements? For example, I have an original list ["2H", "AH", "KH", "QH", "JH", "0H", "9H"], is there any way for me to create a final list where ALL of the new assorted lists of specific lengths (3 to 5) are contained?

Basically from the original list above, I want a returned list as shown below:

[['9H', '0H', 'JH'], ['0H', 'JH', 'QH'], ['JH', 'QH', 'KH'], ['QH', 'KH', 'AH'], 
['KH', 'AH', '2H'], ['9H', '0H', 'JH', 'QH'], ['0H', 'JH', 'QH', 'KH'], 
['JH', 'QH', 'KH', 'AH'], ['QH', 'KH', 'AH', '2H'], ['9H', '0H', 'JH', 'QH', 'KH'], 
['0H', 'JH', 'QH', 'KH', 'AH'], ['JH', 'QH', 'KH', 'AH', '2H']]

Thanks!

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2 Answers 2

up vote 3 down vote accepted
>>> from itertools import islice, chain
>>> L = ["2H", "AH", "KH", "QH", "JH", "0H", "9H"]
>>> list(chain.from_iterable(
        zip(*[islice(reversed(L),i,None) for i in range(j)])
        for j in range(3,6)))
[('9H', '0H', 'JH'), ('0H', 'JH', 'QH'), ('JH', 'QH', 'KH'), ('QH', 'KH', 'AH'), 
 ('KH', 'AH', '2H'), ('9H', '0H', 'JH', 'QH'), ('0H', 'JH', 'QH', 'KH'), 
 ('JH', 'QH', 'KH', 'AH'), ('QH', 'KH', 'AH', '2H'), ('9H', '0H', 'JH', 'QH', 'KH'),
 ('0H', 'JH', 'QH', 'KH', 'AH'), ('JH', 'QH', 'KH', 'AH', '2H')]

Explanation

This solution builds on the use of zip.

>>> zip(L,L)
[('2H', '2H'), ('AH', 'AH'), ('KH', 'KH'), ('QH', 'QH'), ('JH', 'JH'), ('0H', '0H'), ('9H', '9H')]

This shows an example of how zip works, by taking an item from each of its paramters together.

>>> zip(L,L[1:])
[('2H', 'AH'), ('AH', 'KH'), ('KH', 'QH'), ('QH', 'JH'), ('JH', '0H'), ('0H', '9H')]

By starting at the 1st item of the same list as the second paramater you can get every 2 items.

>>> zip(L,L[1:],L[2:])
[('2H', 'AH', 'KH'), ('AH', 'KH', 'QH'), ('KH', 'QH', 'JH'), ('QH', 'JH', '0H'), ('JH', '0H', '9H')]

Same for every 3 items.

>>> zip(*[L[i:] for i in range(3)])
[('2H', 'AH', 'KH'), ('AH', 'KH', 'QH'), ('KH', 'QH', 'JH'), ('QH', 'JH', '0H'), ('JH', '0H', '9H')]

To do this automatically you can use the * (splat) to get the arguments of zip from a list comprehension.

In the example, the results come in reverse, so reversed gives a reverse iterator through the list. To slice an iterator, islice from itertools must be used. islice takes the iterable followed by the index to start the slice and the index to end it. None can be used to go all the way to the end of the iterable.

>>> zip(*[islice(reversed(L),i,None) for i in range(3)])
[('9H', '0H', 'JH'), ('0H', 'JH', 'QH'), ('JH', 'QH', 'KH'), ('QH', 'KH', 'AH'), ('KH', 'AH', '2H')]

So that gives all the results for every 3 items. Now every 4 and 5 items are needed so this operation is performed for range(3), range(4) and range(5).

(zip(*[islice(reversed(L),i,None) for i in range(j)]) for j in range(3,6))

This would give a generator with a list for each of 3, 4, and 5 but they need to be all one list. They can be chained together withchain.from_iterable with the result being converted to a list.

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I love you. Thanks so much! –  Adhy Karina May 19 '12 at 6:15
    
Just wondering do you have any way I can contact you? Facebook? –  Adhy Karina May 19 '12 at 6:16
    
@AdhyKarina Hahaha I don't know what to say you are welcome :D Contact me for what reason? I don't need anything thanks is good enough :) –  jamylak May 19 '12 at 6:26
1  
@AdhyKarina I already have enough work helping my own friends :D I added an explanation, i thought it was better to show each step by example than just with plain English. –  jamylak May 20 '12 at 0:43
1  
You should be a tutor/teacher. Thanks man! All the best. :) –  Adhy Karina May 20 '12 at 2:18

Use itertools

import itertools

original = ["2H", "AH", "KH", "QH", "JH", "0H", "9H"]

result = itertools.chain()
for size in range(3, 6):
    curr_subsets = itertools.combinations(original, size)
    result = itertools.chain(result, curr_subsets)

result_as_list = list(result)
share|improve this answer
    
This doesn't work. It does not produce the correct output as listed in the question. –  jamylak May 19 '12 at 5:50
    
It may not produce the same output but it certainly produces "combinations of lists of specific lengths from an original list of elements". It is up to the OP to specify exactly what they want. If the ordering is relevant, it certainly isn't stated anywhere in the post. –  bossylobster May 19 '12 at 5:52
1  
The use of the word 'combinations' may be misleading, he just wants every 3, 4 and 5 items in the list. He did specify exactly what he wanted in his desired output listed above. –  jamylak May 19 '12 at 5:54
    
No, he should an acceptable output, but did not specify that the given output was exactly what he needed. Anyhow, the problem is not hard and the other solution is just fine. –  bossylobster May 19 '12 at 6:47

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