277

In a Python for loop that iterates over a list we can write:

for item in list:
    print item

and it neatly goes through all the elements in the list. Is there a way to know within the loop how many times I've been looping so far? For instance, I want to take a list and after I've processed ten elements I want to do something with them.

The alternatives I thought about would be something like:

count=0
for item in list:
    print item
    count +=1
    if count % 10 == 0:
        print 'did ten'

Or:

for count in range(0,len(list)):
    print list[count]
    if count % 10 == 0:
        print 'did ten'

Is there a better way (just like the for item in list) to get the number of iterations so far?

619

The pythonic way is to use enumerate:

for idx,item in enumerate(list):
| improve this answer | |
94

Agree with Nick. Here is more elaborated code.

#count=0
for idx, item in enumerate(list):
    print item
    #count +=1
    #if count % 10 == 0:
    if (idx+1) % 10 == 0:
        print 'did ten'

I have commented out the count variable in your code.

| improve this answer | |
  • 10
    You could also use enumerate's optional start parameter to start enumerating with 1 instead of 0, though then I'd use the OP's name count instead of idx. – Stefan Pochmann Oct 7 '17 at 12:36
  • I had no idea that there is an optional start parameter. Good to know. Thanks – Vikram Garg Oct 8 '17 at 13:36
1

Using zip function we can get both element and index.

countries = ['Pakistan','India','China','Russia','USA']

for index, element zip(range(0,countries),countries):

         print('Index : ',index)
         print(' Element : ', element,'\n')

output : Index : 0 Element : Pakistan ...

See also :

Python.org

| improve this answer | |
0

Try using itertools.count([n])

| improve this answer | |
  • 2
    I'm not sure how you'd use count here. Count is used to generate sequences of numbers. – Codie CodeMonkey Jul 21 '13 at 23:04
  • but how would it reset the the value for next iteration. Using itertools.count() is not feasible here. – Javed Oct 3 '17 at 7:40
0

I know rather old question but....came across looking other thing so I give my shot:

[each*2 for each in [1,2,3,4,5] if each % 10 == 0])
| improve this answer | |

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