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Part of a programme builds this list,

[u'1 x Affinity for war', u'1 x Intellect', u'2 x Charisma', u'2 x Perception', u'3 x Population growth', u'4 x Affinity for the land', u'5 x Morale']

I'm currently trying to sort it alphabetically by the name of the evolution rather than by the number. Is there any way I can do this without just changing the order the two things appear in the list (as in 'intellect x 1)?

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1  
As a side note, you may find it more convenient in general if you convert that to a list of tuples rather than unicode strings; in particular named tuples may really help code readability. –  Greg Case Jan 13 '09 at 20:18

5 Answers 5

up vote 22 down vote accepted

You have to get the "key" from the string.

def myKeyFunc( aString ):
    stuff, x, label = aString.partition(' x ')
    return label

aList.sort( key= myKeyFunc )
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what do you mean by stuff? –  user33061 Jan 13 '09 at 20:10
    
Precisely and exactly what is says. That is just "stuff". "miscellaneous unspecified objects" according to a Thesaurus. The partition method of a string returns three results. One of those is just "stuff" that's never used again. –  S.Lott Jan 13 '09 at 20:13
    
In this context, the stuff in front of the " x " might be meaningful, but we can't tell from the question what it is or what it means. Since the question is vague, we can only call it "stuff". –  S.Lott Jan 13 '09 at 20:15
    
fair enough, thanks –  user33061 Jan 13 '09 at 20:16
2  
Did you know that you can use underscores for parts of the tuple that you won't use: _,_,label = aString.partition(' x ') –  Amoss Sep 25 '10 at 14:46

How about:

lst.sort(key=lamdba s: s.split(' x ')[1])
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Not knowing if your items are standardized at 1 digit, 1 space, 1 'x', 1 space, multiple words I wrote this up:

mylist = [u'1 x Affinity for war', u'1 x Intellect', u'2 x Charisma', u'2 x Perception', u'3 x Population growth', u'4 x Affinity for the land', u'5 x Morale']
def sort(a, b):
  return cmp(" ".join(a.split()[2:]), " ".join(b.split()[2:]))

mylist.sort(sort)

You can edit the parsing inside the sort method but you probably get the idea.

Cheers, Patrick

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1  
Better to use key= than a custom comparator when you can because a custom comparator must be called n*log n times, but the key function only needs n calls. –  recursive Jan 13 '09 at 20:21
    
Did not know that. Thanks recursive! –  pboucher Jan 14 '09 at 3:40

To do so, you need to implement a custom compare:

def myCompare(x, y):
   x_name = " ".join(x.split()[2:])
   y_name = " ".join(y.split()[2:])
   return cmp(x_name, y_name)

Then you use that compare definition as the input to your sort function:

myList.sort(myCompare)
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As you are trying to sort what is essentially custom data, I'd go with a custom sort.

Merge sort
Bubble sort
Quicksort

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1  
No, you want to use the built-in sorting method with a custom comparator. –  Adam Rosenfield Jan 13 '09 at 20:04
    
Is that what S.Lott has done? If not, would you be able to share a code example? –  Teifion Jan 13 '09 at 20:09
    
It is what S. Lott has done. –  recursive Jan 13 '09 at 20:19
1  
This a terrible suggestion. He's trying to get something to sort, not to implement a sort. There is a big difference. One is useful and one is a waste of time. –  ironfroggy Jan 13 '09 at 20:20
1  
Yes, absolutely do not reinvent the wheel by writing a custom sort. Huge waste of time. –  Kiv Jan 13 '09 at 20:50

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