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I was wondering if there is a good pythonic way to break down this list:

['1,2,3', '22', '33']

into the list:

['1','2','3','22','33']

using list comprehension?

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7 Answers

up vote 7 down vote accepted

With a list comprehension, it would look like this:

>>> L = ['1,2,3', '22', '33']
>>> [x for l in L for x in l.split(",")]
['1', '2', '3', '22', '33']

Note: there are clearer and better ways of doing this, as already posted in the other answers (either itertools chain or the generator expression are good). But since the question asks about the list comprehension syntax, I thought I'd chip this in anyway.

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Actually I like this better than mine! Not sure how I forgot about this solution. –  senderle Mar 4 '12 at 23:40
    
nested list comprehension works fine for this simple example, but they don't generalise as well as chain for more general cases (e.g. with sub-nesting) –  wim Mar 4 '12 at 23:47
1  
+1 This is a very reasonable use of a nested for-loop in a list comprehension. –  Raymond Hettinger Mar 5 '12 at 0:29
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I wouldn't use sum, since it does repeated concatenation and creates a lot of copies. I would do this:

>>> import itertools
>>> l =  ['1,2,3', '22', '33']
>>> list(itertools.chain.from_iterable(s.split(',') for s in l))
['1', '2', '3', '22', '33']

It's true that it's slightly slower for very short lists:

>>> %timeit sum((s.split(',') for s in l), [])
100000 loops, best of 3: 2.38 us per loop
>>> %timeit list(itertools.chain.from_iterable(s.split(',') for s in l))
100000 loops, best of 3: 3.51 us per loop

But for long lists, it's way faster than using sum:

>>> l =  ['1,2,3', '22', '33'] * 500
>>> %timeit sum((s.split(',') for s in l), [])
100 loops, best of 3: 6.22 ms per loop
>>> %timeit list(itertools.chain.from_iterable(s.split(',') for s in l))
1000 loops, best of 3: 664 us per loop

Actually, though, I rather like wim's answer. And a quick test shows that it's the fastest in all cases, to boot:

>>> l =  ['1,2,3', '22', '33'] 
>>> %timeit [x for s in l for x in s.split()]
1000000 loops, best of 3: 1.45 us per loop
>>> l =  ['1,2,3', '22', '33'] * 500
>>> %timeit [x for s in l for x in s.split()]
1000 loops, best of 3: 559 us per loop
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I think the biggest advantage of the chain.from_iterable solution isn't the speed, but that it's much more straight forward than sum in my opinion.. –  Voo Mar 4 '12 at 23:24
    
@Voo, yes, I agree! But one of the things I love about Python is that, so often, when I do a test like the above, I find that the more straightforward option is also the more efficient option. –  senderle Mar 4 '12 at 23:28
    
That's a great way to define python actually! I never formulated it that way myself, but now that you're saying it - yes, absolutely. Comparing python to say c++ makes that difference really obvious. –  Voo Mar 5 '12 at 11:28
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Since there were two answers already posted using the sum() function as a solution, I thought I would contribute one more way, using itertools.chain

from itertools import chain
x = ['1,2,3', '22', '33']
result = chain.from_iterable(i.split(',') for i in x)

print result
#<itertools.chain object at 0x1004b5e10>

The result of the chain command is a generator. So you could loop over the result, or cast it to another sequence type (tuple, list, set, ...)

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4  
You could also use chain.from_iterable() instead of chain(*...). More explicit and stuff... –  stranac Mar 4 '12 at 23:17
    
Excellent suggestion. Thanks! (updated) –  jdi Mar 4 '12 at 23:21
2  
@stranac, in fact, it's not just a matter of explicitness; the * operator converts the generator into a tuple, defeating the point of using one. –  senderle Mar 4 '12 at 23:23
1  
@jdi This answer would be better if only the from_iterable approach were shown. The star-unpacking happens on the stack, so it doesn't scale well. –  Raymond Hettinger Mar 5 '12 at 0:28
1  
Updated. Thanks! –  jdi Mar 5 '12 at 0:51
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Break down your problem. You can never see how to solve the whole problem at once, and Python never has simple built in solutions to whole problems. Figure out what the most basic pieces of your problem are, and there are often simple direct solutions to each piece. Then combine the solutions. Also, don't expect that you can wave a magic catch phrase like "list comprehension" at the problem to make it go away. Figure out what your solution needs to do, then think about whether a list comprehension can do that.

You have a string '1,2,3'. You need to split that into a list of multiple strings, containing the bits of your original string that were separated by commas:

>>> help(str.split)
Help on method_descriptor:

split(...)
    S.split([sep [,maxsplit]]) -> list of strings

    Return a list of the words in the string S, using sep as the
    delimiter string.  If maxsplit is given, at most maxsplit
    splits are done. If sep is not specified or is None, any
    whitespace string is a separator and empty strings are removed
    from the result.

>>> '1,2,3'.split(',')
['1', '2', '3']
>>> '3'.split(',')
['3']

Now, you have a list of strings, and you want to split each of them into a list as above:

>>> [s.split(',') for s in ['1','2','3','22','33']]
[['1'], ['2'], ['3'], ['22'], ['33']]

Now you've got a list of lists. You want a single list containing the elements of each of the lists in your list of lists. The operation "give me each thing in each of the lists in a list of lists" maps fairly naturally to a list comprehension as follows:

>>> list_of_lists = [[1, 2, 3], ['a', 'b', 'c']]
>>> [thing for alist in list_of_lists for thing in alist]
[1, 2, 3, 'a', 'b', 'c']

Putting it all together:

>>> [bit for string in ['1','2','3','22','33'] for bit in string.split(',')]
['1', '2', '3', '22', '33']

So that's how you solve this with list comprehensions. There are lots of other potential solutions in other answers that are better on technical grounds. But if you're new to Python learning the entire standard library (especially powerful but abstract things like itertools) will be difficult, and don't feel like you have to. Getting comfortable with the basics will serve you more in the long run.

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+1 for advising the OP on how to break down the problem into simpler sub-problems. –  Raymond Hettinger Mar 5 '12 at 0:31
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This is the simplest solution I can think of.

It's using sum() with a generator expression, since you don't actually need to keep the sub-lists created.

>>> a = ['1,2,3', '22', '33']
>>> sum((s.split(',') for s in a), [])
['1', '2', '3', '22', '33']
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This is an improper use of sum. The successive concatenations what O(n**2) performance. The code from @senderle is much better. –  Raymond Hettinger Mar 5 '12 at 0:25
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You could do something like this (suppose your list is called l):

sum([s.split(',') for s in l], [])
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A simple way to do it, is:

>>> lst = ['1,2,3', '22', '33']
>>> res = []
>>> for x in lst:
...     res.extend(x.split(','))
>>> res
['1', '2', '3', '22', '33']

It doesn't use list comprehension though, but I don't see why you would use it in this case.

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It also is faster then other solutions: itertools, sum, nexted listcomps –  Łukasz Milewski Mar 5 '12 at 0:55
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