Can we know the position of items in Python's ordered dictionary ? For example:

If I have dictionary :

//  Ordered_dict is OrderedDictionary

 Ordered_dict = {"fruit": "banana", "drinks": "water", "animal": "cat"}

Now how to know in which position cat belongs to? Is it possible to get answer like:

position ( Ordered_dict["animal"]) = 2 ? or in some other way ?

  • 8
    You dictionary isn't an ordered dict -- it's an unordered plain Python dict. – Sven Marnach Aug 1 '11 at 11:31
  • 9
    Just because you call it ordered dict doesn't make it one! – Jacob Aug 1 '11 at 11:32
up vote 56 down vote accepted

You may get list of keys with the keys property:

In [20]: d=OrderedDict((("fruit", "banana"), ("drinks", 'water'), ("animal", "cat")))

In [21]: d.keys().index('animal')
Out[21]: 2

A better performance could be achieved with the use of iterkeys() though.

For those using Python 3

>>> list(x.keys()).index("c")
1
  • 26
    list(d.keys()).index('animal') for anyone using Python3 ending up here. – Torxed Feb 24 '14 at 17:21
  • 6
    It seems that simply using list(d).index('animal') also works in Python 3, unless I am missing something. – Marein May 31 '16 at 20:41
  • For python 3 see: stackoverflow.com/q/44147047/281545 – Mr_and_Mrs_D May 24 '17 at 17:34

Think first that you need is to read documentation. If you open python tutorial and then try to find information about OrderedDict you will see the following:

class collections.OrderedDict([items]) - Return an instance of a dict subclass, supporting the usual dict methods. An OrderedDict is a dict that remembers the order that keys were first inserted. If a new entry overwrites an existing entry, the original insertion position is left unchanged. Deleting an entry and reinserting it will move it to the end.

New in version 2.7.

So in case you are using an ordered dictionary and you are not going to delete keys - then 'animal' will be always in the position you add - e.g. index 2.

Also to get an index of a 'cat' you can simply use:

from collections import OrderedDict
d = OrderedDict((("fruit", "banana"), ("drinks", "water"), ("animal", "cat")))
d.keys()
>>> ['fruit', 'drinks', 'animal']
d.values()
>>> ['banana', 'water', 'cat']
# So
d.values().index('cat')
>>> 2

For Python3: tuple(d).index('animal')

This is almost the same as Marein's answer above, but uses an immutable tuple instead of a mutable list. So it should run a little bit faster (~12% faster in my quick sanity check).

  • Note that this also works in Python 2 (tuple(d) just iterates over the keys of the dictionary and produces a tuple) – Tom Close Sep 5 '17 at 0:17

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