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I want to create two lists listOfA and listOfB to store indices of A and B from another list s.

s=['A','B','A','A','A','B','B']

Output should be two lists

listOfA=[0,2,3,4]
listOfB=[1,5,6]

I am able to do this with two statements.

listOfA=[idx for idx,x in enumerate(s) if x=='A']
listOfB=[idx for idx,x in enumerate(s) if x=='B']

However, I want to do it in only one iteration using list comprehensions only. Is it possible to do it in a single statement? something like listOfA,listOfB=[--code goes here--]

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Why? Are you concerned about the 2*N complexity? O(2N) ≈ O(N). I would seriously consider just using two generators that are written pretty much the same as your list comprehensions. –  kojiro Jan 9 '14 at 15:01
1  
@kojiro: No complexity is not an issue here, I just want to explore features of python. –  Heisenberg Jan 9 '14 at 15:03

3 Answers 3

up vote 17 down vote accepted

The very definition of a list comprehension is to produce one list object. Your 2 list objects are of different lengths even; you'd have to use side-effects to achieve what you want.

Don't use list comprehensions here. Just use an ordinary loop:

listOfA, listOfB = [], []

for idx, x in enumerate(s):
    target = listOfA if x == 'A' else listOfB
    target.append(idx)

This leaves you with just one loop to execute; this will beat any two list comprehensions, at least not until the developers find a way to make list comprehensions build a list twice as fast as a loop with separate list.append() calls.

I'd pick this any day over a nested list comprehension just to be able to produce two lists on one line. As the Zen of Python states:

Readability counts.

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@Martin's solution seems better as it iterates only once –  Raphaël Braud Jan 9 '14 at 14:58
    
Is list comprehension (to generate a single list) faster than list generation by appending? –  Heisenberg Jan 9 '14 at 15:01
2  
@Heisenberg: yes, because Python can do the list building entirely in C then. No pesky Python stack pushes and pops, no .append() attribute lookups. We can optimize the latter a litte (use A, B = listOfA.append, listOfB.append outside the loop and reuse those), but the stack call is still going to be slower than the C code. –  Martijn Pieters Jan 9 '14 at 15:04

Sort of; the key is to generate a 2-element list that you can then unpack:

listOfA, listOfB = [[idx for idx, x in enumerate(s) if x == c] for c in 'AB']

That said, I think it's pretty daft to do it that way, an explicit loop is much more readable.

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5  
This still loops twice, and is mightily unreadable. –  Martijn Pieters Jan 9 '14 at 14:56
    
He also said he wanted a single iteration, not just a single statement (this still iterates s twice). –  nmclean Jan 9 '14 at 14:58

A nice approach to this problem is to use defaultdict. As @Martin already said, list comprehension is not the right tool to produce two lists. Using defaultdict would enable you to create segregation using a single iteration. Moreover your code would not be limited in any form.

>>> from collections import defaultdict
>>> s=['A','B','A','A','A','B','B']
>>> listOf = defaultdict(list)
>>> for idx, elem in enumerate(s):
    listOf[elem].append(idx)
>>> listOf['A'], listOf['B']
([0, 2, 3, 4], [1, 5, 6])
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1  
For two keys, I'd put money on my conditional statement beating your hash(elem) calls. –  Martijn Pieters Jan 9 '14 at 15:02
    
@MartijnPieters: I wont bet on this with you. I am just providing an alternative, provided OP wants to extend this idea over multiple keys(items). –  Abhijit Jan 9 '14 at 15:03

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