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For a list ["foo","bar","baz"] and an item in the list "bar", what's the cleanest way to get its index (1) in Python?

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12 Answers 12

up vote 729 down vote accepted
>>> ["foo","bar","baz"].index('bar')
1

Reference: Data Structures > More on Lists

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4  
This is definitely the best answer for the OP, but it is important to note (as answered below) that .index() returns only the first element which matches in the list. For example ["foo", "bar", "baz", "bar"].index('bar') will also return 1. –  rysqui Aug 6 at 22:46

One thing that is really helpful in learning Python is to use the interactive help function:

>>> help(["foo", "bar", "baz"])
Help on list object:

class list(object)
 ...

 |
 |  index(...)
 |      L.index(value, [start, [stop]]) -> integer -- return first index of value
 |

which will often lead you to the method you are looking for.

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84  
Upvoted for actually showing how to find the solution. –  Iceland_jack Mar 9 '11 at 12:10
19  
Holy crap, never knew of this.. –  jmoz Aug 27 '12 at 15:16

Surprised no one has yet mentioned enumerate():

for i, j in enumerate(['foo', 'bar', 'baz']):
    if j == 'bar':
        print i

This can be more useful than index if there are duplicates in the list, because index() only returns the first occurrence, while enumerate returns all occurrences.

As a list comprehension:

[i for i, j in enumerate(['foo', 'bar', 'baz']) if j == 'foo']

Here's also another small solution with itertools.count() (which is pretty much the same approach as enumerate):

from itertools import izip as zip, count # izip for maximum efficiency
[i for i, j in zip(count(), ['foo', 'bar', 'baz']) if j == 'foo']

This is more efficient for larger lists than using enumerate():

$ python -m timeit -s "from itertools import izip as zip, count" "[i for i, j in zip(count(), ['foo', 'bar', 'baz']*500) if j == 'foo']"
10000 loops, best of 3: 174 usec per loop
$ python -m timeit "[i for i, j in enumerate(['foo', 'bar', 'baz']*500) if j == 'foo']"
10000 loops, best of 3: 196 usec per loop
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index() returns the first index of value!

| index(...)
| L.index(value, [start, [stop]]) -> integer -- return first index of value

def all_indices(value, qlist):
    indices = []
    idx = -1
    while True:
        try:
            idx = qlist.index(value, idx+1)
            indices.append(idx)
        except ValueError:
            break
    return indices

all_indices("foo", ["foo","bar","baz","foo"])
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3  
this post also helps: stackoverflow.com/questions/4664850/… –  Hongbo Zhu Dec 7 '11 at 10:19
a = ["foo","bar","baz",'bar','any','much']

b = [item for item in range(len(a)) if a[item] == 'bar']
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?? Why would you do it like this? If you wanted to use a list comprehension you'd do it like b = [item for item in a if a == 'bar'][0] –  Michael Matthew Toomim Sep 29 '12 at 22:26
2  
This way you can get more than one index –  erickrf Dec 23 '12 at 20:38
    
This is also great if you need more than simple equality. [ii for ii in range(len(a)) if a[ii][0] == 'b'] gives you the index of everything that starts with 'b', for example - not helpful with strings, but sorting tuples on the nth key is handy. –  polm23 Feb 14 '13 at 5:32
6  
@MichaelMatthewToomim: The code in the answer returns the list of indices with matching values, like` [1, 3, 19]. Your list comprehension will return a list like ['bar','bar','bar']` which really isn't helpful. –  André Caron Apr 17 '13 at 0:56

To get all indexes:

 indexes = [i for i,x in enumerate(xs) if x == 'foo']
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Problem will arrise if the element is not in the list. You can use this function, it handles the issue:

if element is found it returns index of element else returns -1

def find_element_in_list(element,list_element):
        try:
            index_element=list_element.index(element)
            return index_element
        except ValueError:
            return -1
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11  
Now you've got a tricky bug, when you later use the index to retrieve from the container and get the last item. The behaviour of index is better; you can check for error (by using an exception handler), or if you can't handle it it propagates outward; all the code after the index can assume that the index is valid, because it won't be executed unless it was (or an exception handler has fixed the problem). Returning -1 to indicate error forces you to handle the error, and if you forget to you get silent data corruption. –  Ben May 29 '13 at 8:35
    
All @tanzil is doing here is using the string.find() function as his model. This seems reasonable and in fact I wonder why thy founding fathers of python omitted list.find() --for which there is apparently a need gauging by this discussion. –  MarkHu Jun 26 at 19:27

All of the proposed functions here reproduce inherent language behavior but obscure what's going on.

[i for i in range(len(mylist)) if mylist[i]==myterm] # get the indices
[each for each in mylist if each==myterm] # get the items
mylist.index(myterm) if myterm in mylist else None # get the first index and fail quietly

Why write a function with exception handling if the language provides the methods to do what you want itself?

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You have to set a condition to check if the element you're searching is in the list

if 'your_element' in mylist:
    print mylist.index('your_element')
else:
    print None
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Thanks... this way, there's no errors if it don't exist. –  Batandwa Jul 15 at 21:55

Simply you can go with

a = [['hand', 'head'], ['phone', 'wallet'], ['lost', 'stock']]
b = ['phone', 'lost']

res = [[x[0] for x in a].index(y) for y in b]
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Another option

>>> a = ['red', 'blue', 'green', 'red']
>>> b = 'red'
>>> offset = 0;
>>> indices = list()
>>> for i in range(a.count(b)):
...     indices.append(a.index(b,offset))
...     offset = indices[-1]+1
... 
>>> indices
[0, 3]
>>> 
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A variant on the answer from FMc and user7177 will give a dict that can return all indices for any entry:

>>> a = ['foo','bar','baz','bar','any', 'foo', 'much']
>>> l = dict(zip(set(a), map(lambda y: [i for i,z in enumerate(a) if z is y ], set(a))))
>>> l['foo']
[0, 5]
>>> l ['much']
[6]
>>> l
{'baz': [2], 'foo': [0, 5], 'bar': [1, 3], 'any': [4], 'much': [6]}
>>> 

You could also use this as a one liner to get all indices for a single entry. There are no guarantees for efficiency, though I did use set(a) to reduce the number of times the lambda is called.

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