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my objective is to find a few (=3 in this example) largest values in one list, fourire, identify positions in the list, and obtain corresponding (position_wise) values in the other list, freq, so the print out should be like

2. 27.
9. 25.
4. 22.

the attached python is working fine....sort of.

** note that i am dealing with numpy array so index() is not working....

is there way to improve the followings?

import heapq

freq    = [  2., 8., 1., 6., 9., 3.,  6., 9.,   4., 8., 12.]
fourire = [ 27., 3., 2., 7., 4., 9., 10., 25., 22., 5.,  3.]

out = heapq.nlargest(3, enumerate(fourire), key=lambda x:x[1])

elem_fourire = []
elem_freq = []
for i in range(len(out)):
    (key, value) = out[i]

for i in range(len(out)):  
    print elem_freq[i], elem_fourire[i]
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1 Answer 1

import numpy as np

fourire = np.array(fourire)
freq = np.array(freq)

ix = fourire.argsort(kind='heapsort')[-3:][::-1]

for a, b in zip(freq[ix],fourire[ix]):
    print a, b


2.0 27.0
9.0 25.0
4.0 22.0

If you want to use heapq instead of numpy, a slight modification of your code above yields:

ix = heapq.nlargest(3,range(len(freq)),key=lambda x: fourire[x])
for x in ix:
    print freq[x], fourire[x]

results in the same output

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answer updated reflecting change in question –  mtadd Apr 17 '13 at 21:41
well, you can tell i'am very new to python. this one is so python-ish. i hear that "enumerate" is very slow and try to figure out to get rid of it. thanks very much. –  user1678622 Apr 18 '13 at 14:12
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