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I am sure there is an easy and obvious way to do this, but I have been googling and reading the docs and I just cannot find anything.

This is what I want to achieve:

la = ['a1','a2','a3','a4']
lb = ['b1','b2']
result = ['a1_b1','a2_b2','a3_b1','a4_b2']

I have a list of dates and some of them has something marked on them. I then have a much larger list of dates and I want to put the smallest list inside the bigger list as many times as possible. It will probably require some sort of loop as I need access to the dates in the larger list for the end result.

For some reason I just cannot see a good way to do this.

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3 Answers 3

up vote 5 down vote accepted

Try

result = ["_".join((i, j)) for i, j in itertools.izip(la, itertools.cycle(lb))]
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1  
Did you run this? Not what the OP asked for at all. –  Daniel Roseman Jan 27 '11 at 11:38
1  
@Daniel: Sorry for posting untested code. Corrected now. –  Sven Marnach Jan 27 '11 at 11:40

Assuming la is longer than lb:

>>> import itertools
>>> [x+'_'+y for x,y in zip(la, itertools.cycle(lb))]
['a1_b1', 'a2_b2', 'a3_b1', 'a4_b2']
  • itertools.cycle(lb) returns a cyclic iterator for the elements in lb.

  • zip(...) returns a list of tuples in which each element corresponds to an element in la coupled with the matching element in the iterator.

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Assuming la is your longest list

la = ['a1','a2','a3','a4']
lb = ['b1','b2']
len_lb = len(lb)

result = [("_".join((elem_a, lb[index % len_lb]))) for index, elem_a in enumerate(la)]
  • enumerate will loop over the list and return a tuple (index, elem at index)

  • List Comprehension, i.e. [ ] will create a list 'on-the-fly'.

  • % is the modulo operator. I'm not sure how compares to itertools.cycle in terms of performance though.

  • str.join() is usually the preferred way of concatening strings in python since it has better performance than using +

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