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I have a nested list that looks like this:

mylist = [['A;B', 'C'], ['D;E', 'F']]

I'd like to have it in the following form:

[['A', 'B', 'C'], ['D', 'E', 'F']]

Figured I'd write a simple list comprehension to do the task:

>>> newlist = [item[0].split(';').append(item[1]) for item in mylist]
>>> newlist
[None, None]

After some experimenting, I found that the error was in trying to use append() on anonymous lists:

>>> type(['A', 'B'])
<class 'list'>
>>> type(['A', 'B'].append('C'))
<class 'NoneType'>

Which seems like a gotcha, considering that you can do things like this:

>>> 'abc'.upper()
'ABC'

Obviously in most cases you could get around this by binding ['A', 'B'] to a variable before calling append(), but how would I make this work inside of a list comprehension? Furthermore, can anyone explain this unintuitive behavior?

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2  
i don't think its unintuitive, .append() edits the instance it was called from and returns no values (or None)... –  yurib Nov 15 '11 at 20:14
    
You can add last element to your list that you get after split(): [item[0].split(';') + [item[1]] for item in mylist] –  pbm Nov 15 '11 at 20:18
    
@pbm: Thanks :) Every time I had previously used + I had forgotten to wrap item[1] in brackets, which led me to believe that append() was the correct way to proceed. –  B. Striegel Nov 15 '11 at 20:20
    
@yurib: I'd argue that it is unintuitive when compared to the given example of 'abc'.upper(), which returns an entirely new string... although I suppose having append() modify the list in-place makes sense for the sake of efficiency. –  B. Striegel Nov 15 '11 at 20:23

4 Answers 4

up vote 0 down vote accepted

As you found out, mutating methods aren't of much use inside a list comprehension because the transient objects disappear immediately.

What works instead is to build-up a list through concatenation:

>>> mylist = [['A;B', 'C'], ['D;E', 'F']]
>>> [first.split(';') + [second] for first, second in mylist]
[['A', 'B', 'C'], ['D', 'E', 'F']]
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[a.split(';') + [b] for a, b in mylist]
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1  
+1 much nicer than my itertools.chain() ugliness –  Will Nov 15 '11 at 20:34

The problem is that you are storing the return value of the append() method, which is None.

One solution is to use itertools.chain() and store it in a list like so:

import itertools
mylist = [['A;B', 'C'], ['D;E', 'F']]
newlist = [list(itertools.chain(item[0].split(';'),item[1])) for item in mylist]
print newlist

prints:

[['A', 'B', 'C'], ['D', 'E', 'F']]
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Thank you, Captain Obvious. </snark> –  delnan Nov 15 '11 at 20:16
    
I guess I was thinking too functionally :/ Is there a better way of achieving my original goal using list comprehensions? –  B. Striegel Nov 15 '11 at 20:16
    
I like Yak's answer better than mine as solutions go –  Will Nov 15 '11 at 20:34

As Will mentioned, the result of append() will be None, and you actually want the resulting list. Here is one option:

>>> mylist = [['A;B', 'C'], ['D;E', 'F']]
>>> mylist = [item[0].split(';') + [item[1]] for item in mylist]
>>> mylist
[['A', 'B', 'C'], ['D', 'E', 'F']]
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