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Sorry for the vague of my question's title.
My question is, I have a list a = [6, 9, 8, 10, 7, 5, 2, 3, 1, 4]
I need to get the new order b = [4, 2, 3, 5, 1, 6, 10, 8, 7, 9], where the first element of b is 4 because the 4th element of a 10 is the largest number in a. Similarly, the 2nd element in b is 2 because the second large number in a is its second number 9

So, hopefully you got my question: Sort the list a and get the new order b.

Currently, I get it done by using list.sort with some prepare.

tmp = zip(range(1,11), a)
tmp.sort(key=lambda x:(-x[1],x[0]))
b = [x[0] for x in tmp]

I wonder whether there are better python way to achieve my goal?
Thanks for any suggestions~

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4 Answers

up vote 6 down vote accepted

I would just use the key argument to sort range(1, len(a) + 1) by using a's values.

sorted(range(1, len(a) + 1), key=lambda i: a[i-1], reverse=True)
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Brilliant. I wish I had thought of it. +1 –  mgilson Mar 1 '13 at 3:12
    
I agree with @mgilson - very, very nice... the range could be made to have an end of len(a) + 1 to make it more generic, but wow... +1 –  Jon Clements Mar 1 '13 at 3:20
    
Thanks. I've changed it to use len(a) + 1. –  grc Mar 1 '13 at 3:24
1  
@JonClements -- The aspect of our answers is that they'll work for any iterable whereas this one only works for iterables which are indexible and have a well defined len. –  mgilson Mar 1 '13 at 3:42
    
@mgilson What non-indexible iterables do you think of ? –  eyquem Mar 1 '13 at 4:32
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a = [6, 9, 8, 10, 7, 5, 2, 3, 1, 4]
b = [6, 9, 8, 10, 7, 5, 2, 3, 1, 4] 

a.sort(reverse = True)
print(a)
print(b)
c = [b.index(y)+1 for y in a ]
print(c)

i have just got this stupid answers...

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You could use sorted and enumerate:

print [el[0] for el in sorted(enumerate(a, start=1), key=lambda L: L[1], reverse=True)]
# [4, 2, 3, 5, 1, 6, 10, 8, 7, 9]

For completeness an alternative using numpy (should you happen to use it any time in the near future):

np.argsort(a)[::-1] + 1
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That's basically the idea, but you can do:

import operator
tmp = sorted(enumerate(a,1),key=itemgetter(1,0),reverse=True)
b = [x[0] for x in tmp]

#In python2.x, the following are equivalent to the list comprehension.
#b = zip(*tmp)[0]
#b = map(itemgetter(0),tmp)

I think that enumerate is a little cleaner than zip with range and itemgetter is a little cleaner than lambda.

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I think that itemgetter(1) is sufficient. And that it's even possible tonot use itemgetter : b = [x[0] for x in sorted(enumerate(a,1),key=lambda x: -x[1])] –  eyquem Mar 1 '13 at 5:08
1  
It is sufficient. I was just keeping with OP's code. and itemgetter is never needed. As I said, I think it's a little cleaner -- As is reverse=True compared to negating x[1]. (reverse=True will also work with strings for example) –  mgilson Mar 1 '13 at 5:15
    
I agree with you –  eyquem Mar 1 '13 at 5:27
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