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I have two lists; say one of fruits and another of equal length but of unordered numbers:

eg:

Fruits = ['apple', 'banana', 'pineapple', 'kiwifruit'],
Numbers = [3, 2, 4, 1]

How can I firstly assign the number

  • 3 to apple,
  • 2 to banana,
  • 4 to pineapple and
  • 1 to kiwifruit

and secondly order them according to their new numbers?

i.e

sortedlist = ['kiwifruit', 'banana', 'apple', 'pineapple'].

My attempts so far have included the enumerate function and the sorted function, but I can't seem to assign and then sort.

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1  
The question has been answered for you, but you really should show some of you own code and attempts you've made already - this sounds like homework. –  Aesthete Dec 3 '12 at 5:37
    
I did use the sorted function, but my attempts were quite far off from a good solution. Also, this isn't a homework question. –  user1653402 Dec 3 '12 at 5:47
    
You've got a bird in your list of fruits! –  gnibbler Dec 3 '12 at 5:50
    
@gnibbler on the off chance you aren't just joking, en.wikipedia.org/wiki/Kiwifruit –  Karl Knechtel Dec 3 '12 at 7:22
    
@KarlKnechtel, indeed :) It was originally "kiwi" there. As an expat Kiwi (person) it drives me nuts. –  gnibbler Dec 3 '12 at 8:59

4 Answers 4

up vote 10 down vote accepted
sortedlist = [x[1] for x in sorted(zip(Numbers, Fruits))]
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assignment can be done like this

In [25]: d = dict(zip(Numbers, Fruits))

In [26]: d
Out[26]: {1: 'kiwi', 2: 'banana', 3: 'apple', 4: 'pineapple'}

and then you can sort based on keys of the dictionary

In [27]: [d[i] for i in sorted(d.keys())]
Out[27]: ['kiwi', 'banana', 'apple', 'pineapple']
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numpy is cool for this

import numpy as np
fruits = np.array(['apple', 'banana', 'pineapple', 'kiwi'])
sorted_list = fruits[[2, 1, 3, 0]] #note its 0 based indexing ...
print sorted_list
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How about:

Fruits = ['apple', 'banana', 'pineapple', 'kiwi']
Numbers = [3, 2, 4, 1]

New_Fruits = [ Fruits[idx-1] for idx in Numbers ]

This only works since your index list (Numbers) is sequential integers. It would even be a little more clean if Numbers = [ 2, 1, 3, 0 ].

The advantage is that it avoids a call to zip, so it might be a little more efficient. The downside is that it is less general. You need to have an appropriate index list for it to work.

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