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I have two list:

list1 = ['a','b','c']
list2 = ['1','2','3','4','5']

and I want to make the list:

list3 = [('1','a'),('2','b'),('3','c'),('4','a'),('5','b')]

In other words, do a cyclic combination between them. So, my question is: Wich is the more efficient way to do that?

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2 Answers 2

up vote 10 down vote accepted
>>> from itertools import cycle
>>> list1 = ['a','b','c']
>>> list2 = ['1','2','3','4','5']
>>> zip(list2, cycle(list1))
[('1', 'a'), ('2', 'b'), ('3', 'c'), ('4', 'a'), ('5', 'b')]

As some have mentioned in the comments, if you want to cycle both lists and take the first n elements you can do that with,

>>> from itertools import islice, izip
>>> list(islice(izip(cycle(list2), cycle(list1)), 5))
[('1', 'a'), ('2', 'b'), ('3', 'c'), ('4', 'a'), ('5', 'b')]
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Waw! cycle is amazing! Thank you very much! –  Pablo Jul 6 '13 at 1:10
    
@Volatility: but in that case, wouldn't the result go on forever? –  LarsH Jul 6 '13 at 1:11
    
@LarsH True, hadn't though of that. –  Volatility Jul 6 '13 at 1:12
1  
@Volatility: you had a good point, and I think you do need to take the cycle of both, but then just take the first n elements of the result of zip(), where n is the max of the lengths of list1 and list2. I'm assuming zip() returns an iterator. –  LarsH Jul 6 '13 at 1:15
1  
@LarsH you would probably use izip and islice for that –  Volatility Jul 6 '13 at 1:16

Here's an alternative approach: A generator that continues the cyclic combination forever:

def cc(l1, l2):
  i=0
  c1 = len(l1)
  c2 = len(l2)
  while True:
    yield (l1[i % c1], l2[i % c2])
    i += 1

The literal answer to your question is then:

x=cc(list2, list1)
[next(x) for i in range(max(len(list1), len(list2)))]
[('1', 'a'), ('2', 'b'), ('3', 'c'), ('4', 'a'), ('5', 'b')]

But you now have a flexible foundation from which to derive all sorts of other interesting bits.

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