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If I have a list of card suits in arbitrary order like so:

suits = ["h","c", "d", "s"]

and I want to return a list without the 'c'

noclubs = ["h", "d", "s"]

is there a simple way to do this?

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6 Answers 6

up vote 10 down vote accepted
>>> suits = ["h","c", "d", "s"]
>>> noclubs = list(suits)
>>> noclubs.remove("c")
>>> noclubs
['h', 'd', 's']

If you don't need a seperate noclubs

>>> suits = ["h","c", "d", "s"]
>>> suits.remove("c")
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1  
I'd add that the list(suits) is needed only to make the copy of the list, which may not be needed. –  Bakuriu Apr 1 '13 at 6:32
    
@Bakuriu Correct I added another example to illustrate that –  jamylak Apr 1 '13 at 7:47
suits = ["h","c", "d", "s"]

noclubs = [x for x in suits if x != "c"]
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I can't lie...I was hoping there would be something without a loop. This is much shorter and more intuitive in languages like R. –  Matt O'Brien Dec 17 '13 at 9:57
    
I would avoid this solution as it seems to me to be quite unoptimized. Using .remove() is IMHO much faster. –  Visgean Skeloru Mar 16 at 23:39
    
@VisgeanSkeloru I would disagree that .remove() is "much faster". I posted an answer below to address that (it's hard to format code in the comment box). –  alukach Nov 11 at 22:33
    
Yeah you are right, my mistake, I did not take the time required to copy the list into consideration... I was only thinking about removing an element from a list not about the creation of the new list... Also I played with copy module and indeed it seems that [:] is a fastest way to copy... –  Visgean Skeloru Nov 18 at 21:40

This question has been answered but I wanted to address the comment that using list comprehension is much slower than using .remove().

Some profiles from my machine (using Python 2.7.6).

%%timeit
x = ['a', 'b', 'c', 'd']
y = x[:]  # fastest way to copy
y.remove('c')

1000000 loops, best of 3: 405 ns per loop

%%timeit
x = ['a', 'b', 'c', 'd']
y = list(x)  # not as fast copy
y.remove('c')

1000000 loops, best of 3: 689 ns per loop

%%timeit
x = ['a', 'b', 'c', 'd']
y = [n for n in x if n != 'c']  # list comprehension

1000000 loops, best of 3: 544 ns per loop

If you use the fastest way to copy a list (which isn't very readable), you will be about 36% faster than using list comprehension. But if you copy the list by using the list() class (which is much more common and Pythonic), then you're going to be 26% slower than using list comprehension.

Really, it's all pretty fast. I think the argument could be made that .remove() is more readable than list a list comprehension technique, but it's not necessarily faster unless you're interested in giving up readability in the duplication.

The big advantage of list comprehension in this scenario is that it's much more succinct (i.e. if you had a function that was to remove an element from a given list for some reason, it could be done in 1 line, whilst the other method would require 3 lines.) There are times in which one-liners can be very handy (although they typically come at the cost of some readability). Additionally, using list comprehension excels in the case when you don't actually know if the element to be removed is actually in the list to begin with. While .remove() will throw a ValueError, list comprehension will operate as expected.

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+1 for y = x[:] :) –  DoomProg Nov 11 at 22:41

If it is important that you want to remove a specific element (as opposed to just filtering), you'll want something close to the following:

noclubs = [x for i, x in enumerate(suits) if i != suits.index('c')]

You may also consider using a set here to be more semantically correct if indeed your problem is related to playing cards.

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If order doesn't matter, a set operation can be used:

suits = ["h", "c", "d", "s"]
noclubs = list(set(suits) - set(["c"]))
# note no order guarantee, the following is the result here:
# noclubs -> ['h', 's', 'd']
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you can use filter (or ifilter from itertools)

suits = ["h","c", "d", "s"]
noclubs = filter(lambda i: i!='c', suits)
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