Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a file that i'm reading in, then creating nested lists that i want to then sort on the 4 element(zipcode)

jk43:23 Marfield Lane:Plainview:NY:10023
axe99:315 W. 115th Street, Apt. 11B:New York:NY:10027
jab44:23 Rivington Street, Apt. 3R:New York:NY:10002
ap172:19 Boxer Rd.:New York:NY:10005
jb23:115 Karas Dr.:Jersey City:NJ:07127
jb29:119 Xylon Dr.:Jersey City:NJ:07127
ak9:234 Main Street:Philadelphia:PA:08990

Here is my code:

ex3_3 = open('ex1.txt')
exw = open('ex2_sorted.txt', 'w')

data = []
for line in ex3_3:
    items = line.rstrip().split(':')
    data.append(items)
print sorted(data, key=operator.itemgetter(4))

Output:

[['jb23', '115 Karas Dr.', 'Jersey City', 'NJ', '07127'], ['jb29', '119 Xylon Dr.', 'Jersey City', 'NJ', '07127'], ['ak9', '234 Main Street', 'Philadelphia', 'PA', '08990'], ['jab44', '23 Rivington Street, Apt. 3R', 'New York', 'NY', '10002'], ['ap172', '19 Boxer Rd.', 'New York', 'NY', '10005'], ['jk43', '23 Marfield Lane', 'Plainview', 'NY', '10023'], ['axe99', '315 W. 115th Street, Apt. 11B', 'New York', 'NY', '10027']]

this all works fine, I just wonder if there is a way to do this without using "import operator"?

share|improve this question
2  
Why would one not want to use any import? –  naeg Nov 3 '11 at 21:54
    
@naeg: I think the OP means: without importing the operator module. –  larsmans Nov 3 '11 at 22:05
    
As noted below, you can use lambda. But the whole point of operator.itemgetter is for use cases like yours. –  John Y Nov 3 '11 at 22:15
    
@larsmans: yeah, but operator is part of the standard library. The only thing I could imagine that he uses Python <2.4. OR that he thinks he shouldn't use import, which would be nonsense. –  naeg Nov 4 '11 at 6:56

3 Answers 3

up vote 2 down vote accepted

Oh yes, there is a way:

print sorted(data,key=lambda x: x[4])
share|improve this answer

A rough workalike would be:

print sorted(data, key=lambda items: items[4])

but operator.itemgetter is a bit faster. I'm using this program to benchmark both approaches:

#!/usr/bin/env python

import timeit

withlambda = 'lst.sort(key=lambda items: items[4])'
withgetter = 'lst.sort(key=operator.itemgetter(4))'

setup = """\
import random
import operator
random.seed(0)
lst = [(random.randrange(100000), random.randrange(100000), random.randrange(100000), random.randrange(100000) ,random.randrange(100000))
       for _ in range(10000)]
"""

n = 10000

print "With lambda:"
print timeit.timeit(withlambda, setup, number=n)

print "With getter:"
print timeit.timeit(withgetter, setup, number=n)

It creates a random list of 100,000 5-item tuples and then runs sort() on the list 1,000 times. On my MacBook Pro with Python 2.7.2, the withlambda version runs in about 55.4s and withgetter runs in about 46.1s.

Note that as the lists grow large, the time spent in the sorting algorithm itself grows faster than the time spent fetching keys. Therefore, the difference is much greater if you're sorting lots of little lists. Running the same test with a 1,000 item list repeated 100,000 times yields 22.4s for withlambda vs. 12.5s for withgetter.

share|improve this answer
    
Actually, not a great deal faster on random lists of 100,000 elements: some 8% faster. –  larsmans Nov 3 '11 at 22:09
    
I got about 18% faster on lists of 100,000 elements vs 41% faster on lists of 10,000 elements. I guess that makes sense as the overhead of sorting itself grows faster than the length of the list. Replacing sorted() with map() gave a 55% speedup. Moral: both are fast. itemgetter is faster. Pick the one that's most readable to you unless you must have the absolute fastest. –  Kirk Strauser Nov 3 '11 at 23:09
    
@KirkStrauser Thanks, I read up on 'operator' i see the benefit, but was interested in not using for testing sake. thanks! –  jed Nov 4 '11 at 0:53
    
@KirkStrauser: which Python version is that? I keep getting this ~8% speedup on Python 2.7.2, which a list of lists of random numbers, timed with IPython's %timeit. –  larsmans Nov 4 '11 at 11:26
    
@larsmans I edited my answer to show the benchmark I used. –  Kirk Strauser Nov 4 '11 at 13:22

Construct or reorganize your sublist so that the thing you want to sort on is first. In your case, ZIP code, instead of being element 4, should be element 0. Then you can just sort them.

Of course the suitability of this ordering for other uses of the data must also be considered.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.