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What is the best way to sort a list of floats by their value, whiles still keeping record of the initial order.

I.e. sorting a:

a=[2.3, 1.23, 3.4, 0.4]

returns something like

a_sorted = [0.4, 1.23, 2.3, 3.4]
a_order = [4, 2, 1, 3]

If you catch my drift.

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4 Answers 4

up vote 12 down vote accepted

You could do something like this:

>>> sorted(enumerate(a), key=lambda x: x[1])
[(3, 0.4), (1, 1.23), (0, 2.3), (2, 3.4)]

If you need to indexing to start with 1 instead of 0, enumerate accepts the second parameter.

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+1 for using enumerate! –  GWW Sep 16 '10 at 15:11
    
aorder, asorted = zip(*sorted(enumerate(a), key=lambda x: x[1]) for completeness. –  carl Sep 16 '10 at 15:14
    
I'd be pretty sure, OP would need to zip his two lists back at one stage. –  SilentGhost Sep 16 '10 at 15:15
2  
itemgetter would have been better than lambda –  dugres Sep 16 '10 at 16:29
    
@dugres: huh? why is that? I'm no fan of lambdas, but if they have a use in python it's here. –  SilentGhost Sep 16 '10 at 16:42
  • Use enumerate to generate the sequence numbers.
  • Use sorted with a key to sort by the floats
  • Use zip to separate out the order from the values

For example:

a_order, a_sorted = zip(*sorted(enumerate(a), key=lambda item: item[1]))
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If you have numpy installed:

import numpy
a=[2.3, 1.23, 3.4, 0.4]
a_sorted = numpy.sorted(a)
a_order = numpy.argsort(a)
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This is nice for a guy more used to matlab then python =) –  Theodor Sep 16 '10 at 15:41
from itertools import izip
a_order, a_sorted = [list(b) for b in izip(*sorted(enumerate(a, 1), key=lambda n: n[1]))]
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