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data= [('a ', 1), ('b ', 3), ('a ', 4), ('b', 2),]

How do get two lists with the first element of tuple as the list name and the second as values?

a= [1,4]
b= [3,2]
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4 Answers 4

up vote 6 down vote accepted

As explained in your previous question, you shouldn't try to change the name you're binding something to. [The left-hand side of something = 3, I mean.] It causes nothing but trouble. You could use a dict instead, and a defaultdict would make things handy:

>>> data= [('a ', 1), ('b ', 3), ('a ', 4), ('b', 2),]
>>> from collections import defaultdict
>>> d = defaultdict(list)
>>> for k, v in data:
...     d[k.strip()].append(v)
...     
>>> d
defaultdict(<type 'list'>, {'a': [1, 4], 'b': [3, 2]})

After which

>>> d['a']
[1, 4]
>>> d['b']
[3, 2]

would work.

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Thanks DSM. The last bit really helped as I already had the defaultdict object but did not know how to do numpy ops on the values. Now I can. –  user1995519 Feb 15 '13 at 21:07

As some of the keys in your example have some extra whitespace, I'm using strip:

In [11]: [x[1] for x in data if x[0].strip() == 'a']
Out[11]: [1, 4]

In [12]: [x[1] for x in data if x[0].strip() == 'b']
Out[12]: [3, 2]
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Lev's answer is what you look for. Additionally, ou can group by an arbitrary key:

grouped = defaultdict(list)
[grouped[key].append(value) for key, value in data]    

By the way, defaultdict is one of many built-in types worth examining. There are many types and functions that may solve your daily problems. Check at least operator, itertools and functools modules.

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You should use dictionary here, instead of creating multiple variables.

In [14]: data= [('a ', 1), ('b ', 3), ('a ', 4), ('b',2),]

In [15]: dic={}

In [16]: for k,v in data:
   ....:     dic.setdefault(k.strip(),[]).append(v)
   ....:     

In [18]: dic
Out[18]: {'a': [1, 4], 'b': [3, 2]}
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