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These days I design some algorithms in python, but find first two greatest value in python is too ugly and inefficient.

How to implement it in a efficient or a pythonic way?

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possible duplicate of Filter max 20 values from a list of integers –  Steven Rumbalski Jun 11 '12 at 10:46

3 Answers 3

up vote 5 down vote accepted

I've found this to be consistently faster (about 2x for a list of 1,000,000 items) than heapq.nlargest:

def two_largest(sequence):
    first = second = 0
    for item in sequence:
        if item > second:
            if item > first:
                first, second = item, first
            else:
                second = item
    return first, second

(function modified at the suggestion of MatthieuW)

Here are the results of my testing (timeit was taking forever, so I used time.time()):

>>> from random import shuffle
>>> from time import time
>>> seq = range(1000000)
>>> shuffle(seq)
>>> def time_it(func, *args, **kwargs):
...     t0 = time()
...     func(*args, **kwargs)
...     return time() - t0
...

>>> #here I define the above function, two_largest().
>>> from heapq import nlargest
>>> time_it(nlargest, 2, seq)
0.258958101273
>>> time_it(two_largest, seq)
0.145977973938
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1  
You should compare with second, then first. In a 1000000 items list (unless it is sorted), most will be less than current "second", so you can avoid one comparison per item. –  MatthieuW Jun 11 '12 at 9:19
    
@MatthieuW: Good point! I was actually surprised that an interpreted script worked faster than any of the builtins. –  Joel Cornett Jun 11 '12 at 9:23
1  
At least on Python 2.7, the heapq module is also implemented as an interpreted Python script, not as C code. So your result isn't that surprising. –  interjay Jun 11 '12 at 9:31
    
@interjay: Ah, makes sense. –  Joel Cornett Jun 11 '12 at 9:37
1  
one can use first = second = None to include negative numbers in a clean way, doesn't work for python3 though.. –  gokcehan Dec 17 '12 at 21:50

Most Pythonic way is to use nlargest:

import heapq
values = heapq.nlargest(2, my_list)
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1  
Or just use the builtin sorted. values = sorted(my_list, reverse=True)[:2] –  Christian Witts Jun 11 '12 at 7:41
1  
@Christian: That would be both slower and (in my opinion) less Pythonic. –  interjay Jun 11 '12 at 7:41
2  
@interjay: for small lists sort() might be faster. –  J.F. Sebastian Jun 11 '12 at 7:51
1  
@RichardWong: On my computer I get similar speeds for 100 elements. –  interjay Jun 11 '12 at 8:12
1  
@richardWong: use nlargest() both for readability and a better asymptotic complexity. if profiler says that for your data nlargest is a bottleneck then you could try sort() to see how it compares. –  J.F. Sebastian Jun 11 '12 at 8:14
mylist = [100 , 2000 , 1 , 5]
mylist.sort()
biggest = mylist[-2:]
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3  
-1 for suggesting sorting. This is just plain horrible. No need to sort in order to find the largest two elements. –  Michael Wild Jun 11 '12 at 7:44
1  
@MichaelWild, its true that sorting ain't needed for n largest nos. But even nlargest says Equivalent to: sorted(iterable, key=key, reverse=True)[:n] –  tuxuday Jun 11 '12 at 7:52
2  
@tuxuday - it is equivalent in the result, not in the performance. It uses sorted only when n>size. –  eumiro Jun 11 '12 at 8:10

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