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In Python, what is the best way to create a new list whose items are the same as those of some other list, but in reverse order? (I don't want to modify the existing list in place.)

Here is one solution that has occurred to me:

new_list = list(reversed(old_list))

It's also possible to duplicate old_list then reverse the duplicate in place:

new_list = list(old_list) # or `new_list = old_list[:]`
new_list.reverse()

Is there a better option that I've overlooked? If not, is there a compelling reason (such as efficiency) to use one of the above approaches over the other?

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4 Answers

up vote 66 down vote accepted
newlist = oldlist[::-1]

The [::-1] slicing (which my wife Anna likes to call "the Martian smiley";-) means: slice the whole sequence, with a step of -1, i.e., in reverse. It works for all sequences.

Note that this (and the alternatives you mentioned) is equivalent to a "shallow copy", i.e.: if the items are mutable and you call mutators on them, the mutations in the items held in the original list are also in the items in the reversed list, and vice versa. If you need to avoid that, a copy.deepcopy (while always a potentially costly operation), followed in this case by a .reverse, is the only good option.

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Oh my! That is elegant. Until a few days ago I didn't realize that it's possible to include a "step" when slicing; now I'm wondering how I ever got by without it! Thanks, Alex. :) –  davidchambers Sep 14 '10 at 2:13
    
@David, you're welcome! –  Alex Martelli Sep 14 '10 at 2:23
    
Thanks, too, for mentioning that this produces a shallow copy. That's all I need, though, so I'm about to add a Martian smiley to my code. –  davidchambers Sep 14 '10 at 2:26
5  
This really seems a lot more magic and a lot less readable than the original suggestion, list(reversed(oldlist)). Other than a minor micro-optimization, is there any reason to prefer [::-1] to reversed()? –  Brian Campbell Aug 7 '13 at 17:35
    
+1 for adding your wife's contribution to the solution. –  junkie May 4 at 17:55
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Now let's timeit. Hint: Alex's [::-1] is fastest :)

$ p -m timeit "ol = [1, 2, 3]; nl = list(reversed(ol))"
100000 loops, best of 3: 2.34 usec per loop

$ p -m timeit "ol = [1, 2, 3]; nl = list(ol); nl.reverse();"
1000000 loops, best of 3: 0.686 usec per loop

$ p -m timeit "ol = [1, 2, 3]; nl = ol[::-1];"
1000000 loops, best of 3: 0.569 usec per loop

$ p -m timeit "ol = [1, 2, 3]; nl = [i for i in reversed(ol)];"
1000000 loops, best of 3: 1.48 usec per loop


$ p -m timeit "ol = [1, 2, 3]*1000; nl = list(reversed(ol))"
10000 loops, best of 3: 44.7 usec per loop

$ p -m timeit "ol = [1, 2, 3]*1000; nl = list(ol); nl.reverse();"
10000 loops, best of 3: 27.2 usec per loop

$ p -m timeit "ol = [1, 2, 3]*1000; nl = ol[::-1];"
10000 loops, best of 3: 24.3 usec per loop

$ p -m timeit "ol = [1, 2, 3]*1000; nl = [i for i in reversed(ol)];"
10000 loops, best of 3: 155 usec per loop

Update: Added list comp method suggested by inspectorG4dget. I'll let the results speak for themselves.

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Adjustments

It's worth providing a baseline benchmark / adjustment for the timeit calculations by sdolan which show performance of 'reversed' without the often unnecessary list() conversion. This list() operation adds an additional 26 usecs to the runtime and is only needed in the event an iterator is unacceptable.

Results:

reversed(lst) -- 11.2 uses

lst[::-1] --23.6 secs

Calculations:

# I ran this set of 100000 and came up with 11.2, twice:
python -m timeit "ol = [1, 2, 3]*1000; nl = reversed(ol)"
100000 loops, best of 3: 11.2 usec per loop

python -m timeit "ol = [1, 2, 3]*1000; nl = reversed(ol)"
100000 loops, best of 3: 11.2 usec per loop

# This shows the overhead of list()
python -m timeit "ol = [1, 2, 3]*1000; nl = list(reversed(ol))"
10000 loops, best of 3: 37.1 usec per loop

# This is the result for reverse via -1 step slices
python -m timeit "ol = [1, 2, 3]*1000;nl = ol[::-1]"
10000 loops, best of 3: 23.6 usec per loop

Conclusions:

The conclusion of these tests is reversed() is faster than the slice [::-1] by 12.4 usecs

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reversed() returns an iterator object which is lazy-evaluated, so I think it is not a fair comparison to the slicing notation [::-1] in general. –  iridescent Aug 6 '13 at 3:06
    
Even in a case where an iterator can be used directly, such as ''.join(reversed(['1','2','3'])), the slice method is still >30% faster. –  dansalmo Nov 25 '13 at 21:28
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Perhaps what you are looking for is:

new_list = [i for i in reversed(old_list)]
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4  
list(reversed(...)) as the OP proposes is faster, more concise, and more readable, so why would anybody use a listcomp here? The point of my A is that a martian-smiley is even faster and more concise (so one had better learn to read it anyway, if one finds it non-intuitive;-). –  Alex Martelli Sep 14 '10 at 2:12
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