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With LINQ I would

var top5 = array.Take(5);

How to do this with Python?

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5  
possible duplicate of How to get the n next values of a generator in a list (python) –  Jader Dias Mar 8 '11 at 14:55
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What does it mean top N item, please ? –  eyquem Mar 8 '11 at 16:11
    
@eyquem the first N items –  Jader Dias Mar 8 '11 at 19:26
    
Thank you. I'm not anglophone. –  eyquem Mar 8 '11 at 19:36
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@JaderDias could I ask you to change the title to "How to take the first N items...", or at least make the distinction clear? I found this question looking for a way to get the top N items by value (as opposed to list order) - as an anglophone, "top" suggests you have a way to rank list elements. –  drevicko Oct 6 '14 at 1:05

7 Answers 7

up vote 54 down vote accepted

You can't slice a generator directly in python. You could use itertools.islice() as a helper function to do so. itertools.islice(generator, start, stop, step) Remember, slicing a generator will exhaust it partially. If you want to keep the entire generator intact, perhaps turn it into a tuple or list first: result = tuple(generator)

For a normal list, you can just use regular slicing. my_list[start:stop:step] You can omit "step", or either start/stop in either of these slice implementations.

 my_list[:5] # grab the first five elements
 my_list[-5:] # grab the last five elements
           # (negative list indices start from the right side)

 import itertools
 itertools.islice(my_list, 0, 5) # grab the first five elements
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1  
You forgot the i from islice in the example code. Just warning you. :) –  Paulo Freitas Mar 8 '11 at 15:43
    
@Jader thanks, shows I shouldn't be on SO when I'm almost asleep –  lunixbochs Mar 9 '11 at 0:42
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Also note that itertools.islice will return a generator. –  Nick T Feb 1 '14 at 2:06
import itertools

top5 = itertools.islice(array, 5)
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this should be the accepted answer. –  J.F. Sebastian Dec 23 '14 at 22:59

Do you mean the first N items, or the N largest items?

If you want the first:

top5 = iterable[:5]

This also works for the largest N items, assuming that your iterable is sorted in descending order. (Your LINQ example seems to assume this as well.)

If you want the largest, and it isn't sorted, the most obvious solution is to sort it first:

l = list(iterable)
l.sort(reverse=True)
top5 = l[:5]

For a more performant solution, use a min-heap (thanks Thijs):

import heapq
top5 = heapq.nlargest(5, iterable)
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wouldn't the smaller come first? –  Jader Dias Mar 8 '11 at 15:32
    
Erm, whoops. Will fix. –  Thomas Mar 8 '11 at 21:57
    
+1 for answering despite the obvious ambiguity of the question –  demongolem Nov 1 '12 at 23:35
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import heapq; top5 = heapq.nlargest(5, iterable) –  Thijs van Dien Oct 19 '13 at 22:06
    
Thanks, that deserves to be edited in! –  Thomas Oct 20 '13 at 16:40

In my taste, it's also very concise to combine zip() with range(n), which works nice on generators as well and seems to be more flexible for changes in general.

In Python 3, both zip() and range() are generators. In Python 2, you can still yield the top elements to create a generator.

# taking the first n elements as a list
[x for _, x in zip(range(n), generator)]

# or, alternatively
[next(generator) for _ in range(n)]

# taking the first n elements as a new generator
# (can work great in Python 3, since zip() and range() are generators)
(x for _, x in zip(range(n), generator))

# or yielding them by simply preparing a function
def top_n(n, generator):
    for _ in range(n): yield next(generator)
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You have to use slices:

Try this:

>>> lst = [1,2,3,4,5]

>>> lst[:2]
[1, 2]

It takes from index 0 to index 2.

You can also do things like:

>>> lst = [1,2,3,4,5]

>>> lst[2:4]

[3, 4]
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With itertools you will obtain another generator object so in most of the cases you will need another step the take the first N elements (N). There are at least two simpler solutions (a little bit less efficient in terms of performance but very handy) to get the elements ready to use from a generator:

Using list comprehension:

first_N_element=[generator.next() for i in range(N)]

Otherwise:

first_N_element=list(generator)[:N]

Where N is the number of elements you want to take (e.g. N=5 for the first five elements).

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This should work

top5 = array[:5] 
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