471

If a mydict is not empty, I access an arbitrary element as:

mydict[mydict.keys()[0]]

Is there any better way to do this?

  • 3
    What he said.. this is only really a valid question if there's only one element in the dict, or you don't care which you get back. – royal Jun 22 '10 at 23:27
  • 5
    Yup, I just need to access to whatever element in the dict, so that's why I want to access to first element. – Stan Jun 23 '10 at 0:00
  • 2
    @Stan: but as Greg said, there is no definite "first" element in dict. so maybe you should change your question, just to be clear – tdihp Dec 5 '12 at 11:28
  • 9
    I think it is a valid question. If you need to access an arbitrary element, and you are sure that the dict is not empty, it may be a good idea to ask for the "first", because the number of items may not be known. – kap Jul 7 '15 at 10:13
  • 5
    @MichaelScheper You have to cast to list : list(mydict.keys())[0]. – Daniel Moskovich Aug 3 '18 at 5:22

13 Answers 13

555

On Python 3, non-destructively and iteratively:

next(iter(mydict.values()))

On Python 2, non-destructively and iteratively:

mydict.itervalues().next()

If you want it to work in both Python 2 and 3, you can use the six package:

six.next(six.itervalues(mydict))

though at this point it is quite cryptic and I'd rather prefer your code.

If you want to remove any item, do:

key, value = mydict.popitem()

Note that "first" is not an appropriate term here. This is "any" item, because dict is not an ordered type.

  • 35
    Don't you mean dict.iterkeys().next()? – John Machin Jun 22 '10 at 23:32
  • 11
    @John Machin: Well, the question seems to access value associated with the first key, so that's what I do in the answer as well. – doublep Jun 22 '10 at 23:36
  • 3
    this looks better: dict.values().__iter__().__next__() :) – Vitaly Zdanevich Mar 3 '17 at 14:26
  • 14
    it's annoying that dict.keys() is not directly iterable. – semiomant Jul 4 '17 at 8:32
  • 3
    for a non-destructive popitem you can make a (shallow) copy: key, value = dict(d).popitem() – Pelle Jan 31 '18 at 10:35
127

If you only need to access one element (being the first by chance, since dicts do not guarantee ordering) you can simply do this in Python 2:

my_dict.keys()[0]     -> key of "first" element
my_dict.values()[0]   -> value of "first" element
my_dict.items()[0]    -> (key, value) tuple of "first" element

Please note that (at best of my knowledge) Python does not guarantee that 2 successive calls to any of these methods will return list with the same ordering. This is not supported with Python3.

in Python 3:

list(my_dict.keys())[0]     -> key of "first" element
list(my_dict.values())[0]   -> value of "first" element
list(my_dict.items())[0]    -> (key, value) tuple of "first" element
  • 87
    That only works in Python 2.x, for 3.x you have to use list(my_dict.keys())[0] – alldayremix Oct 8 '13 at 3:39
  • 6
    So, what complexity class is this? Surely, list(my_dict.keys())[0] is not lazy? – Evgeni Sergeev Aug 6 '16 at 11:33
  • 1
    To clarify, what @alldayremix meant with that comment is in python 3.x my_dict.function() results do not support indexing, this is why first of all we must convert it into a list and then we can use the index [0] – Noki May 24 at 9:41
56

In python3, The way :

dict.keys() 

return a value in type : dict_keys(), we'll got an error when got 1st member of keys of dict by this way:

dict.keys()[0]
TypeError: 'dict_keys' object does not support indexing

Finally, I convert dict.keys() to list @1st, and got 1st member by list splice method:

list(dict.keys())[0]
  • This is the easiest solution and works in both python2 and python3. – mattmilten Oct 22 '15 at 14:15
  • For my money. I say this answer is the most intuitive – Thomas Valadez Sep 22 '16 at 20:08
  • Yeah, but this doesn't answer the OP question, which is how to get at the VALUES, not the keys. – Mike Williamson Oct 2 '16 at 2:49
  • 1
    @MikeWilliamson hopefully most readers will knows how to get the corresponding value, given a key, from a python dict. – eric Oct 8 '17 at 16:30
  • 5
    To get an arbitrary item, not an arbitrary key, you can analogously do list(dict.values())[0]. – jhin Apr 4 '18 at 11:18
24

to get a key

next(iter(mydict))

to get a value

next(iter(mydict.values()))

to get both

next(iter(mydict.items())) # or next(iter(mydict.viewitems())) in python 2

The first two are Python 2 and 3. The last two are lazy in Python 3, but not in Python 2.

16

As others mentioned, there is no "first item", since dictionaries have no guaranteed order (they're implemented as hash tables). If you want, for example, the value corresponding to the smallest key, thedict[min(thedict)] will do that. If you care about the order in which the keys were inserted, i.e., by "first" you mean "inserted earliest", then in Python 3.1 you can use collections.OrderedDict, which is also in the forthcoming Python 2.7; for older versions of Python, download, install, and use the ordered dict backport (2.4 and later) which you can find here.

Python 3.7 Now dicts are insertion ordered.

11

How about, this. Not mentioned here yet.

py 2 & 3

a = {"a":2,"b":3}
a[list(a)[0]] # the first element is here
>>> 2
  • 5
    dict.values() returns a view, so should be O(1). list(a) returns a new list, so would be O(n). – boycy Mar 24 '18 at 18:59
  • Also it seems like it doesn't work in python2 if a = {"a": {"1"}} – qasimzee May 1 '18 at 20:52
11

Ignoring issues surrounding dict ordering, this might be better:

next(dict.itervalues())

This way we avoid item lookup and generating a list of keys that we don't use.

Python3

next(iter(dict.values()))
  • 2
    values() will make a copy of all values (as will keys() for keys), so this will make many operations O(n^2). – Glenn Maynard Jun 23 '10 at 1:17
  • So will the OPs version? I'll change this to use an iterator then. – Matt Joiner Jun 23 '10 at 4:25
  • 4
    This is only Python 2. For Python 3, we need next(iter(dict.values())) to get the same result without creating the list. – kap Jul 7 '15 at 11:55
6

In python3

list(dict.values())[0]
  • 4
    What happens if the dictionary has a billion entries? :) – Fábio Dias Oct 30 '17 at 15:43
2

You can always do:

for k in sorted(d.keys()):
    print d[k]

This will give you a consistently sorted (with respect to builtin.hash() I guess) set of keys you can process on if the sorting has any meaning to you. That means for example numeric types are sorted consistently even if you expand the dictionary.

EXAMPLE

# lets create a simple dictionary
d = {1:1, 2:2, 3:3, 4:4, 10:10, 100:100}
print d.keys()
print sorted(d.keys())

# add some other stuff
d['peter'] = 'peter'
d['parker'] = 'parker'
print d.keys()
print sorted(d.keys())

# some more stuff, numeric of different type, this will "mess up" the keys set order
d[0.001] = 0.001
d[3.14] = 'pie'
d[2.71] = 'apple pie'
print d.keys()
print sorted(d.keys())

Note that the dictionary is sorted when printed. But the key set is essentially a hashmap!

2

For both Python 2 and 3:

import six

six.next(six.itervalues(d))
  • This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. – Martin Tournoij Jan 7 '15 at 14:00
  • This exactly answers the question Is there any better way to do this? in short manner. – oblalex Jan 7 '15 at 14:41
  • This answer has been given twice already, one of which has been on this site for almost 5 years. This is a comment on another answer (as in: here's how to improve the answer to make it work with both Python 2 & 3), and not a "new" answer, as such. SO's review system automatically placed a somewhat unhelpful note in this case... – Martin Tournoij Jan 7 '15 at 14:49
  • No, sir. You added this variant to your 5 y.o. answer just 17 hours ago, 1 hour after I wrote this answer. Try to use 'find' on this page for 'six' word and you will find only 6 matches only in these 2 answers. Anyway, does this answer really disturb you? I think this might help other people in future and this is OK. So, what's the deal? – oblalex Jan 8 '15 at 7:50
  • That's because IMHO this answer should have been an edit to that post in the first place. Without the edit, people would have to scroll a number of pages down to see your answer; do you think that's more useful than editing a highly upvoted answer which is almost exactly the same as yours? – Martin Tournoij Jan 8 '15 at 7:53
0
first_key, *rest_keys = mydict
  • 10
    Thank you for this code snippet, which might provide some limited, immediate help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem, and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made. – Suraj Rao Feb 18 at 12:37
-1

No external libraries, works on both Python 2.7 and 3.x:

>>> list(set({"a":1, "b": 2}.values()))[0]
1

For aribtrary key just leave out .values()

>>> list(set({"a":1, "b": 2}))[0]
'a'
-2

Subclassing dict is one method, though not efficient. Here if you supply an integer it will return d[list(d)[n]], otherwise access the dictionary as expected:

class mydict(dict):
    def __getitem__(self, value):
        if isinstance(value, int):
            return self.get(list(self)[value])
        else:
            return self.get(value)

d = mydict({'a': 'hello', 'b': 'this', 'c': 'is', 'd': 'a',
            'e': 'test', 'f': 'dictionary', 'g': 'testing'})

d[0]    # 'hello'
d[1]    # 'this'
d['c']  # 'is'

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