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given

a = [1,4,5,3,2,6,0]
b = ['b','e','f','d','c','g','a']

order b in place, the expected order of b is available in the corresponding positional element of a.

output will be

['a','b','c','d','e','f','g']

try for other similar input sets.

a = [4,0,1,3,2]
b = ['E','A','B','D','C']

I can get it done using a third list, even sorted() creates a third list, but the key is to sort b in place

print sorted(b,key=lambda bi : a[b.index(bi)])

core of the problem is how to prevent iterating over items in b that were already iterated.

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Is this homework? –  msvalkon Mar 27 '14 at 12:07
3  
To sort in place, you have .sort() –  fredtantini Mar 27 '14 at 12:09
    
B = dict((v, i) for i, v in enumerate(b)) can help you, if you have unique elements in your list –  m.wasowski Mar 27 '14 at 12:09
    
You can conduct a simple bubble sort on both lists simultaneously. –  user1990169 Mar 27 '14 at 12:10
2  
Don't forget that b.index(bi) runs in O(n), which slows the sorting down to O(n^2 log n). That's worse than bubble sort. In addition, it doesn't work if a contains duplicate items. –  Danstahr Mar 27 '14 at 12:12

4 Answers 4

up vote 5 down vote accepted

The key is to realise that the items in b aren't much use to the key function. You are interested in their counterparts in a. To do this inplace, means you can't just use zip to pair the items up. Here I use the default argument trick to get an iterator over a into the lambda function.

>>> a = [1,4,5,3,2,6,0]
>>> b = ['b','e','f','d','c','g','a']
>>> b.sort(key=lambda x, it=iter(a): next(it))
>>> b
['a', 'b', 'c', 'd', 'e', 'f', 'g']
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1  
Is there any guarantee made by .sort that the key function will be called both in order and only once per item? –  Eric Mar 27 '14 at 12:58
    
Thanks. That's neat trick. –  nr.o Mar 27 '14 at 13:33
    
I'd like to strongly support @Eric's question (hence this comment). Is there such a guarantee? Otherwise this solution just works due to implementation details of the sorting algorithm. Actually I'm surprised that the key function is used just in this (here neatly fitting) way. –  Alfe Mar 28 '14 at 1:14
    
@Alfe, it's a good question. I haven't the time to look for an authoritative answer just now. Maybe you can open a new question and get a bigger audience than just me. I'm interested in the answer too. –  John La Rooy - AKA gnibbler Mar 28 '14 at 2:01

Try this:

zip(*sorted(zip(a, b)))[1]

Should give:

('a', 'b', 'c', 'd', 'e', 'f', 'g')

Since during sorting the b itself appears to be empty (see my question about that), you can use that piece of code to do it in-place:

b.sort(key=lambda x, b=b[:]: a[b.index(x)])

This uses a copy of the b to search in during sorting. This is certainly not very good for performance, so don't blame me ;-)

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1  
But that's not in-place for b, of course. So you might not want to use it. –  Alfe Mar 27 '14 at 12:12
1  
That's strange. I tried b.sort(key=lambda x: a[b.index(x)]) and found that during being sorted, b appears to be an empty list. –  Alfe Mar 27 '14 at 12:17
    
I posted this effect as a new question. –  Alfe Mar 27 '14 at 12:23
    
That's right b is made empty while it is being sorted –  nr.o Mar 27 '14 at 12:23
1  
yesterday i saw this problem explained on SO –  m.wasowski Mar 27 '14 at 12:32
def sorter(a,b):
    for i in range(len(a)):
        while i != a[i]:
            ai = a[i]
            b[i], b[ai], a[i], a[ai] = b[ai], b[i], a[ai], a[i]
    return b
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Nice, this orders both a and b. What if we want to do just b –  nr.o Mar 27 '14 at 13:28
    
@nr.o I think it's not possible. You need to keep track of the cycles that you already sorted and as their number is O(n) you need that many places. Otherwise, nice solution M4rtini, it took me a while to dig out the algorithm 101 from my memory which got lost over the years :D –  Vroomfondel Mar 27 '14 at 13:57

Simple bubble sort:

for i in range( len(a) ):
    for j in range(len(a)-1-i):
         if (a[j] > a[j+1]):
             #swap a[j] & a[j+1]
             #swap b[j] & b[j+1]
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