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I'm having a problem with square brackets in Python. I wrote a code that produces the following output:

[[180.0], [173.8], [164.2], [156.5], [147.2], [138.2]]

But I would like to perform some calculations with that, but the the square brackets won't let me.

How can I remove the brackets? I saw some examples to do that but I could not apply them to this case.

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marked as duplicate by Nick T, Andy Hayden, Sajmon, Imre L, crb Apr 8 '13 at 21:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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In other words, you have a list of lists and you want to be able to do work on all members of the inner lists? Also, since all of these inner lists have one value, is it worth ensuring that only the value is inserted into the outer list? Or is it possible for some of the lists to have multiple elements? It's important to give all of the possible information you can, as precisely as possible. –  Platinum Azure Jun 29 '12 at 15:34
12  
To help people answer your questions in the future, try to avoid general statements like "the square brackets won't let me" and instead give a specific example of something you tried to do which didn't work, and copy-and-paste a small test code showing the resulting error. –  DSM Jun 29 '12 at 15:38
    
related flatten nested list –  J.F. Sebastian Jun 29 '12 at 15:41
1  
If they answered your question, you should accept one of these answers –  Paul Seeb Mar 7 at 16:33

4 Answers 4

Flatten the list to "remove the brackets" using a nested list comprehension. This will un-nest each list stored in your list of lists!

list_of_lists = [[180.0], [173.8], [164.2], [156.5], [147.2], [138.2]]
flattened = [val for sublist in list_of_lists for val in sublist]

Nested list comprehensions evaluate in the same manner that they unwrap (i.e. add newline and tab for each new loop. So in this case:

flattened = [val for sublist in list_of_lists for val in sublist]

is equivalent to:

flattened = []
for sublist in list_of_lists:
    for val in sublist:
        flattened.append(val)

The big difference is that the list comp evaluates MUCH faster than the unraveled loop and eliminates the append calls!

If you have multiple items in a sublist the list comp will even flatten that. ie

>>> list_of_lists = [[180.0, 1, 2, 3], [173.8], [164.2], [156.5], [147.2], [138.2]]
>>> flattened  = [val for sublist in list_of_lists for val in sublist]
>>> flattened 
[180.0, 1, 2, 3, 173.8, 164.2, 156.5, 147.2,138.2]
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2  
Using itertools.chain.from_iterable is much simpler. –  Platinum Azure Jun 29 '12 at 15:41
2  
Please explain why. This is about as simple as it gets –  Paul Seeb Jun 29 '12 at 15:43
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Sorry, I meant more readable/intuitive. Since the OP is having trouble disambiguating between what lists are (sequences of data) and how lists are represented in code (with square brackets), I highly doubt a double list comprehension will make any sense to him/her. –  Platinum Azure Jun 29 '12 at 15:50
5  
+1 for being more than twice faster (time it), requires no import and is more compact- –  estani Oct 19 '12 at 13:59
    
Love this answer, but I can't figure it out. Can you talk me through how Python evaluates this list comprehension? –  ahoffer Aug 26 at 21:07

I would use itertools.chain - this will also cater for > 1 element in each sublist:

from itertools import chain
list(chain.from_iterable([[180.0], [173.8], [164.2], [156.5], [147.2], [138.2]]))
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+1 for itertools, was just going to post a similar answer but you beat me to it. –  Platinum Azure Jun 29 '12 at 15:40
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Why would you import an entire module to do something as simple as this? –  Paul Seeb Jun 29 '12 at 15:42
    
@PaulSeeb simplest, generic, built-in method way of flattening an iterable of iterables... What if the sublists had 100 elements? I certainly wouldn't want to be typing the listcomp code for that one... –  Jon Clements Jun 29 '12 at 15:46
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if the sublist had 100 elements a nested list comp could still deal with this without importing an entire module. It is mostly just style and preference but personally I see the list comp as more readable as most programmers have used list comps but not all have read the entire itertools library. Not that its difficult to look up but its just one more thing. –  Paul Seeb Jun 29 '12 at 15:51
    
Unfortunately, chain has the same shortcoming as a list comprehension with regard to many levels of nesting (that is, it is not recursive). However, I believe itertools allows for many nice operations to be done with highly readable code, which is why I still support this answer rather than using a double list comprehension. –  Platinum Azure Jun 29 '12 at 15:51

Given

d = [[180.0], [173.8], [164.2], [156.5], [147.2], [138.2]]

Using list comprehension :

new_d = [i[0] for i in d]

will give you this

[180.0, 173.8, 164.2, 156.5, 147.2, 138.2]

then you can access individual items with the appropriate index, e.g., new_d[0] will give you 180.0 etc which you can then use for math.

If you are going to have a collection of data, you will have some sort of bracket or parenthesis.

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2  
The OP has little idea about lists, giving him/her this solution might cause undesirable effects if s/he wants to use it to flatten multiple elements (no error, just silently return the first...) –  estani Oct 19 '12 at 14:03
    
@estani Wow .. your comment and downvote coming some four months after the fact will really help .. sheesh, slow day at the office? OP didn't have a problem with the posted answer - but "thanks" for the warning. –  Levon Oct 19 '12 at 17:09
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sorry if that bothered you. Stackoverflow is a knowledge base though, 4 Months is nothing, this post will be seen in the next 10 years at least. There's nothing wrong with your answer, my down/up voting is my opinion on the order of all answers. I encourage you to comment/vote on any answer you think you can improve, even if it's years old. Thanks for posting. –  estani Oct 23 '12 at 10:05
>>> lis=[[180.0], [173.8], [164.2], [156.5], [147.2], [138.2]]
>>> [x[0] for x in lis]
[180.0, 173.8, 164.2, 156.5, 147.2, 138.2]
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