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what is the easiest way to sort a list of strings with digits at the end where some have 3 digits and some have 4:

>>> list = ['asdf123', 'asdf1234', 'asdf111', 'asdf124']
>>> list.sort()
>>> print list
['asdf111', 'asdf123', 'asdf1234', 'asdf124']

should put the 1234 one on the end. is there an easy way to do this?

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6  
Please don't use list as a variable name. It's a really bad idea. –  S.Lott Nov 30 '10 at 20:21
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6 Answers

up vote 2 down vote accepted

is there an easy way to do this?

No

It's perfectly unclear what the real rules are. The "some have 3 digits and some have 4" isn't really a very precise or complete specification. All your examples show 4 letters in front of the digits. Is this always true?

import re
key_pat = re.compile( r"^(\D+)(\d+)$" )
def key( item ):
    m= key_pat.match( item )
    return m.group(1), int(m.group(2))

That key function might do what you want. Or it might be too complex. Or maybe the pattern is really r"^(.*)(\d{3,4})$" or maybe the rules are even more obscure.

>>> data= ['asdf123', 'asdf1234', 'asdf111', 'asdf124']
>>> data.sort( key=key )
>>> data
['asdf111', 'asdf123', 'asdf124', 'asdf1234']
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This is almost exactly what I was going to tell the asker. He needs to define a regex to seperate his mixed input, parse the integral part, and sort accordingly. –  marr75 Nov 30 '10 at 21:27
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l = ['asdf123', 'asdf1234', 'asdf111', 'asdf124']
l.sort(cmp=lambda x,y:cmp(int(x[4:]), int(y[4:]))
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1  
this would have been a good solution all the way back before rick-rolling was funny (Yes, it was funny at one point). key has been around since 2.4 and cmp is deprecated and removed in 3.x. I really don't know how garbage like this got two upvotes. It doesn't even compare the rest of the strings. –  aaronasterling Nov 30 '10 at 20:53
    
They removed cmp? Seriously? I'm disappointed. How are you supposed to sort strings in reverse order now - by explicitly reversing afterward? It's not like you can negate a string so as to use lambda x: -x as the key... –  Karl Knechtel Dec 1 '10 at 3:07
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The issue is that the sorting is alphabetical here since they are strings. Each sequence of character is compared before moving to next character.

>>> 'a1234' < 'a124'  <----- positionally '3' is less than '4' 
True
>>> 

You will need to due numeric sorting to get the desired output.

>>> x = ['asdf123', 'asdf1234', 'asdf111', 'asdf124']
>>> y = [ int(t[4:]) for t in x]
>>> z = sorted(y)
>>> z
[111, 123, 124, 1234]
>>> l = ['asdf'+str(t) for t in z]
>>> l
['asdf111', 'asdf123', 'asdf124', 'asdf1234']
>>> 
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What you're probably describing is called a Natural Sort, or a Human Sort. If you're using Python, you can borrow from Ned's implementation.

The algorithm for a natural sort is approximately as follows:

  • Split each value into alphabetical "chunks" and numerical "chunks"
  • Sort by the first chunk of each value
    • If the chunk is alphabetical, sort it as usual
    • If the chunk is numerical, sort by the numerical value represented
  • Take the values that have the same first chunk and sort them by the second chunk
  • And so on
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L.sort(key=lambda s:int(''.join(filter(str.isdigit,s[-4:]))))
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aaronasterling gives me the thought: L.sort(key=lambda s:int((s[-3:],s[-4:])[s[-4] in '1234567890'])) –  Kabie Nov 30 '10 at 20:53
    
this is no good because what about 'asdf23asdf1234'? the solution in your commment is good but tricky. But you still need to include the rest of the string for sorting in both of your solutions. –  aaronasterling Nov 30 '10 at 20:55
    
Well, if you insist to compare the rest of the string, still you shall using the digits as first key and the rests second. –  Kabie Nov 30 '10 at 21:21
    
That would be highly unexpected. If the letters come first in the string then they should come first in the key tuple. so 'aaron345' should sort before 'bob123'. –  aaronasterling Nov 30 '10 at 21:33
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You need a key function. You're willing to specify 3 or 4 digits at the end and I have a feeling that you want them to compare numerically.

sorted(list_, key=lambda s: (s[:-4], int(s[-4:])) if s[-4] in '0123456789' else (s[:-3], int(s[-3:]))) 

Without the lambda and conditional expression that's

def key(s):
    if key[-4] in '0123456789':
         return (s[:-4], int(s[-4:]))
    else:
         return (s[:-3], int(s[-3:]))

sorted(list_, key=key)

This just takes advantage of the fact that tuples sort by the first element, then the second. So because the key function is called to get a value to compare, the elements will now be compared like the tuples returned by the key function. For example, 'asdfbad123' will compare to 'asd7890' as ('asdfbad', 123) compares to ('asd', 7890). If the last 3 characters of a string aren't in fact digits, you'll get a ValueError which is perfectly appropriate given the fact that you passed it data that doesn't fit the specs it was designed for.

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