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Can you make it more simple/elegant?

def zigzag(seq):
    """Return two sequences with alternating elements from `seq`"""
    x, y = [], []
    p, q = x, y
    for e in seq:
        p.append(e)
        p, q = q, p
    return x, y
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3 Answers 3

up vote 32 down vote accepted

If seq, as you say, is a list, then:

def zigzag(seq):
  return seq[::2], seq[1::2]

If seq is a totally generic iterable, such as possibly a generator:

def zigzag(seq):
  results = [], []
  for i, e in enumerate(seq):
    results[i%2].append(e)
  return results
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1  
SO is making so lazy. –  Sridhar Ratnakumar Sep 18 '09 at 17:58
2  
@Sridhar, don't think of it as lazy, think of it as time-efficient. I spent half an hour working working on an algorithm to do this with a for loop (for x columns, not just two). And although I got it working, it just didn't seem pythonic - I suspected there was an easier way. Sure enough, I didn't remember that lists have step variables (as shown in this Answer), which makes it trivial. –  John C May 8 '11 at 15:37
    
This is beautiful, didn't even know about that syntax. Thanks! –  sleepycal Mar 27 at 13:44

This takes an iterator and returns two iterators:

 import itertools
 def zigzag(seq):
     t1,t2 = itertools.tee(seq)
     even = itertools.islice(t1,0,None,2)
     odd = itertools.islice(t2,1,None,2)
     return even,odd

If you prefer lists then you can return list(even),list(odd).

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def zigzag(seq):
    return seq[::2], seq[1::2]
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Only works for lists while the other solution works for any iterable. –  Nick Stinemates Sep 18 '09 at 5:59
2  
true, but title did specify a list –  cobbal Sep 18 '09 at 6:37

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