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I am looking to be able to write an alternative code to the built in count in python: This code works

def count(element,seq):
    """Counts how often an element occurs
    ...in a sequence"""
    mycount = seq.count(element)
    return mycount

but I would like to write it in a for loop (or another way?), I've got this far:

def count(element,seq):
    """Counts how often an element occurs
    ...in a sequence"""
    for i in seq:
        if  element == seq:
            print i

I'm not sure how to return the re-occuring elements as an integer. Any help appreciated!!

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4 Answers 4

up vote 2 down vote accepted

How about this:

def count(element,seq):
    """Counts how often an element occurs
    ...in a sequence"""
    count = 0
    for i in seq:
        if  element == i:
            count += 1
    return count

What this does: it loops over each item in seq, and if that item is equal to element, it adds 1 to count (which is initially 0) and then returns count after the loop ends.

Using a for loop like this means that there is only ever one item of seq being referenced at a time, allowing you to scan huge sequences efficiently.

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While we could all do a lot worse than following the style of the answers of @MartijnPieters, when I'm riffing off someone quite this closely, I usually say something like: "Mirroring Joe Smith:" to make it clear that the duplication is intentional and acknowledged. –  DSM Dec 28 '12 at 21:14
    
@DSM isn't it obvious ;) –  Abhinav Sarkar Dec 28 '12 at 21:16
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Just another way

from collections import Counter
def count(elem, seq):
    return Counter(seq)[elem]

And Just another way

>>> from itertools import compress
>>> len(list(compress(seq, [e == 1 for e in seq])))
3

with a little variation

>>> sum(1 for _ in compress(seq, [e == 1 for e in seq]))
3

another implementation using filter

>>> len(filter(None, [e == 1 for e in seq]))
3
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nice Counter trick :) –  bernard paulus Dec 28 '12 at 19:27
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If you want to write it as a for loop, as per your example:

def count(element, sequence):
    c = 0
    for e in sequence:
        if e == element:
            c += 1
    return c
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Thanks, that's great! –  user1934963 Dec 28 '12 at 18:12
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Use sum() and a generator expression:

def count(element,seq):
    """Counts how often an element occurs
    ...in a sequence"""
    return sum(1 for i in seq if i == element)

What this does: it loops over each item in seq, and if that item is equal to element, it generates a 1, which sum() adds up to get the total count.

Using a generator expression like this means that there is only ever one item of seq being referenced at a time, allowing you to scan huge sequences efficiently.

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Thanks for your help, really helpful! –  user1934963 Dec 28 '12 at 18:11
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