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I'd like to know if it is possible to use a list comprehension with if/ else that need not result in a list of the same length as the length of the list being processed? (ie. without the final else)

>>> L = [0, 1, 2, 3, 4, 5, 6]
>>> [v * 10 if v < 3 else v * 2 if v > 3 else v for v in L] #if/else/if/else
[0, 10, 20, 3, 8, 10, 12]

works fine. But suppose I want to omit the 3, to get:

[0, 10, 20, 8, 10, 12]  # No number 3

I would have thought this would work:

>>> [v * 10 if v < 3 else v * 2 if v > 3 for v in L] #if/else/if

But it is a syntax error..

So I thought 'maybe' this would work:

>>> [v * 10 if v < 3 else v * 2 if v > 3 else pass for v in L] #if/else/if/else pass

But it doesn't..

This is a curiosity question, I realise this is not neccessarily the most readable/appropriate approach to the above processing.

Am I missing something? Can it be done? (I'm on python 2.6.5)

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4 Answers 4

up vote 7 down vote accepted

Yes, that's possible:

[foo for foo in bar if foo.something]

Or in your case:

[v * 10 if v < 3 else v * 2 for v in L if v != 3]

I's also mentioned in the docs.

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thanks, pesky ordering –  fraxel Mar 16 '12 at 12:23
    
Not everything has to be a list comp! –  Jakob Bowyer Mar 16 '12 at 13:22
    
It can help to imagine it as a normal list comprehension [expr_of_x for x in iterable if expr_of_x], but where (a if b else c) is the expression. You can even keep the parentheses to make the list comprehension more obvious to readers. –  ninjagecko Mar 16 '12 at 13:42

Put the filtering condition after the loop:

 [v * 10 if v < 3 else v * 2 for v in L if v != 3]

returns

[0, 10, 20, 8, 10, 12]
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Whats wrong with doing

out = []
for v in L:
    if v < 3:
        out.append(v * 10)
    elif v > 3:
        out.append(v * 2)
    else:
        pass
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This doesn't answer my fairly clear question about list comprehensions! –  fraxel Mar 16 '12 at 12:22
    
It is much more readable –  Tony Blundell Mar 16 '12 at 12:54
    
Not everything has to be a list comprehension –  Jakob Bowyer Mar 16 '12 at 13:22
    A=[[x*2, x*10][x <3] for x in L if x!=3]
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2  
Can you explain why this solves the question? This answer was flagged as low-quality because of its length and content. See How to Answer. –  brasofilo Jun 29 at 8:24

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