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How would I sort this ?

>>> list = ["a_0","a_1","a_2","a_3","a_10","a_11","a_23","a_5","a_6","a_5"]
>>> sorted(list)
['a_0', 'a_1', 'a_10', 'a_11', 'a_2', 'a_23', 'a_3', 'a_5', 'a_5', 'a_6']>

What I need it to be is :

['a_0', 'a_1', 'a_2', 'a_3', 'a_5', 'a_5', 'a_6, 'a_10', 'a_11', 'a_23']>

So its sorted based on the "number" Thanks i advance!

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2 Answers 2

up vote 10 down vote accepted

do you mean this: sorted(list, key=lambda d: int(d[2:])) ?

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Thats it! thanks so much –  Harry Jun 1 '11 at 9:22
2  
Note that this will sort only based on the number, and not on the 'a' at all. It also requires that the digits start at character 2. –  Thomas Wouters Jun 1 '11 at 9:25
    
"Note that this will sort only based on the number", indeed –  taijirobot2 Jun 1 '11 at 9:39
    
Yup, the answer below sorted this for me! thanks –  Harry Jun 1 '11 at 9:51

You need to write a "key function" that translates your string into a search key that has the ordering you want. For example:

def key(k):
    s, sep, i = k.partition('_')
    return (s, int(i))

>>> L = ["a_0","a_1","b_2","c_2","a_10","a_11","a_23","b_5","a_6","c_5"]
>>> sorted(L, key=key)
['a_0', 'a_1', 'a_6', 'a_10', 'a_11', 'a_23', 'b_2', 'b_5', 'c_2', 'c_5']
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thanks, this is actually what I needed for my exact purpose. I changed it a bit, now works perfect. Although your answer is correct, I have marked the answer above correct based on the question. –  Harry Jun 1 '11 at 9:46

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