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Does anyone know how to access the index itself for a list like this:

ints = [8, 23, 45, 12, 78]

When I loop through it using a for loop, how do I access the loop index, from 1 to 5 in this case?

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86  
Incidently, Python lists are indexed starting from 0. –  bobince Feb 6 '09 at 22:55

6 Answers 6

up vote 1260 down vote accepted
+500

Using additional state variable, such as index variable (which you would normally use in languages such as C or PHP), is considered non-pythonic.

The better option is to use the builtin function enumerate:

for idx, val in enumerate(ints):
    print idx, val

Check out PEP 279 for more. NB: It works on Python 2.x and Python 3.x

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68  
+1 because that's exactly what this function is for. –  Brian Feb 6 '09 at 23:18
14  
PHP has foreach ($ints as $idx => $val) print $idx, $val; –  cweiske Jun 15 '11 at 15:47
7  
@cweiske: It is not the same, $idx may not be zero-based number of the loop, so it is different and less reliable than iterating through $ints and using index variable. Although in case of array(8,23,45,12,78) and other non-associative arrays this will work, you have to be sure $ints is not associative. I am not sure about the instances of the classes implementing Iterator interface. –  Tadeck Mar 1 '12 at 2:03
7  
Holly... I always have used "for ix in range(len(ints))"... Now I must re-write all my code... this is so much prettier... xD –  J. C. Leitão Mar 1 '12 at 7:27
26  
If we edit the code to for idx, val in enumerate(ints, start=1):, the indices will go from 1 to 5 as it was asked. –  Till Dec 20 '12 at 15:43
for i in range(len(ints)):
   print i, ints[i]
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6  
That should probably be xrange for pre-3.0. –  Ben Blank Feb 6 '09 at 22:52
    
No, unless the speed is needed one shouldn't optimize. –  Georg Schölly Feb 6 '09 at 23:07
16  
One shouldn't prematurely optimize, though I agree in this case, due to having the same code work in 2.x and 3.x. –  Roger Pate Feb 7 '09 at 9:38

Its pretty simple to start it from 1 other than 0.

for index in enumerate(iterable, start=1):
   print index

Good to go.

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Old fashioned way:

for ix in range(len(ints)):
    print ints[ix]

List comprehension:

[ (ix, ints[ix]) for ix in range(len(ints))]

>>> ints
[1, 2, 3, 4, 5]
>>> for ix in range(len(ints)): print ints[ix]
... 
1
2
3
4
5
>>> [ (ix, ints[ix]) for ix in range(len(ints))]
[(0, 1), (1, 2), (2, 3), (3, 4), (4, 5)]
>>> lc = [ (ix, ints[ix]) for ix in range(len(ints))]
>>> for tup in lc:
...     print tup
... 
(0, 1)
(1, 2)
(2, 3)
(3, 4)
(4, 5)
>>>
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According to this discussion: http://bytes.com/topic/python/answers/464012-objects-list-index

Loop counter iteration

The current idiom for looping over the indices makes use of the built-in 'range' function:

for i in range(len(sequence)):
    # work with index i

Looping over both elements and indices can be achieved either by the old idiom or by using the new 'zip' built-in function[2]:

for i in range(len(sequence)):
    e = sequence[i]
    # work with index i and element e

or

for i, e in zip(range(len(sequence)), sequence):
    # work with index i and element e

via http://www.python.org/dev/peps/pep-0212/

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12  
This won't work for iterating through generators. Just use enumerate(). –  Tadeck Mar 31 '13 at 18:24

I don't know if the following is pythonic or not, but it uses the Python function enumerate and prints the enumerator and the value.

int_list = [8, 23, 45, 12, 78]
for index in enumerate(int_list):
   print index
(0, 8)
(1, 23)
(2, 45)
(3, 12)
(4, 78)
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