109

I have a list of dicts:

list = [{'id':'1234','name':'Jason'},
        {'id':'2345','name':'Tom'},
        {'id':'3456','name':'Art'}]

How can I efficiently find the index position [0],[1], or [2] by matching on name = 'Tom'?

If this were a one-dimensional list I could do list.index() but I'm not sure how to proceed by searching the values of the dicts within the list.

  • 5
    "list" is the list constructor, you better choose another name for a list (even in a example). And what should be the response if no element is found? raise an exception? return None? – tokland Dec 8 '10 at 20:04
  • 7
    If you're going to need this a lot, use a more appropriate data structure (perhaps { 'Jason': {'id': '1234'}, 'Tom': {'id': '1245'}, ...}?) – user395760 Dec 8 '10 at 20:06
  • 2
    @delnan Because that's a recipe for disaster! If anything, it should be {'1234': {'name': 'Jason'}, ...}. Not that that would help this use-case. – OJFord Sep 9 '16 at 13:38
119
tom_index = next((index for (index, d) in enumerate(lst) if d["name"] == "Tom"), None)
# 1

If you need to fetch repeatedly from name, you should index them by name (using a dictionary), this way get operations would be O(1) time. An idea:

def build_dict(seq, key):
    return dict((d[key], dict(d, index=index)) for (index, d) in enumerate(seq))

info_by_name = build_dict(lst, key="name")
tom_info = info_by_name.get("Tom")
# {'index': 1, 'id': '2345', 'name': 'Tom'}
  • 1
    +1 Beat me to it. – Brent Newey Dec 8 '10 at 20:06
  • +1 for the more generic solution, which seems nice – aeter Dec 8 '10 at 20:24
  • 2
    IMHO this is not as readable or Pythonic is @Emile's answer. Because the intention is not really to create a generator (and using next() for this seems weird to me), the aim is just to get the index. Also, this raises StopIteration, whereas the Python lst.index() method raises ValueError. – Ben Hoyt Dec 8 '10 at 20:36
  • 1
    @gdw2: I get SyntaxError: Generator expression must be parenthesized if not sole argument when doing that. – avoliva Jun 16 '16 at 18:12
  • 2
    @avoliva add a parenthesis around next like follows next((index for (index, d) in enumerate(lst) if d["name"] == "Tom"), None) – HussienK Dec 6 '16 at 15:54
39

A simple readable version is

def find(lst, key, value):
    for i, dic in enumerate(lst):
        if dic[key] == value:
            return i
    return -1
  • 8
    This seems the most readable and Pythonic. It also mimics the behaviour of str.find() nicely. You could also call it index() and raise a ValueError instead of returning -1 if that was preferable. – Ben Hoyt Dec 8 '10 at 20:38
  • 6
    Agreed - by returning -1 when no match is found, you'll always get the last dict in the list, which is probably not what you want. Better to return None and check for exsistence of a match in the calling code. – shacker Jun 13 '16 at 17:54
9

It won't be efficient, as you need to walk the list checking every item in it (O(n)). If you want efficiency, you can use dict of dicts. On the question, here's one possible way to find it (though, if you want to stick to this data structure, it's actually more efficient to use a generator as Brent Newey has written in the comments; see also tokland's answer):

>>> L = [{'id':'1234','name':'Jason'},
...         {'id':'2345','name':'Tom'},
...         {'id':'3456','name':'Art'}]
>>> [i for i,_ in enumerate(L) if _['name'] == 'Tom'][0]
1
  • 1
    You can gain the efficiency you desire by using a generator. See tokland's answer. – Brent Newey Dec 8 '10 at 20:07
  • 2
    @Brent Newey: The generator does not change the fact, that you have to traverse the entire list, making the search O(n) as aeter claims... Depending on how long that list is, the difference between using a generator vs using a for loop or whatever might be neglible, wheras the difference between using a dict vs. using a list might not – Dirk Dec 8 '10 at 20:11
  • @Brent: You are right, but can it beat a O(1) lookup in a dictionary, moreover if the searched item is at the end of the list? – aeter Dec 8 '10 at 20:11
  • 1
    @Dirk The next() call on the generator stops when a match is found, therefore it does not have to traverse the entire list. – Brent Newey Dec 8 '10 at 20:14
  • @aeter You make a fair point. I was referring to being able to stop when a match is found. – Brent Newey Dec 8 '10 at 20:16
2

Here's a function that finds the dictionary's index position if it exists.

dicts = [{'id':'1234','name':'Jason'},
         {'id':'2345','name':'Tom'},
         {'id':'3456','name':'Art'}]

def find_index(dicts, key, value):
    class Null: pass
    for i, d in enumerate(dicts):
        if d.get(key, Null) == value:
            return i
    else:
        raise ValueError('no dict with the key and value combination found')

print find_index(dicts, 'name', 'Tom')
# 1
find_index(dicts, 'name', 'Ensnare')
# ValueError: no dict with the key and value combination found
2

Seems most logical to use a filter/index combo:

names=[{}, {'name': 'Tom'},{'name': 'Tony'}]
names.index(filter(lambda n: n.get('name') == 'Tom', names)[0])
1

And if you think there could be multiple matches:

[names.index(n) for item in filter(lambda n: n.get('name') == 'Tom', names)]
[1]
1

For a given iterable, more_itertools.locate yields positions of items that satisfy a predicate.

import more_itertools as mit


iterable = [
    {"id": "1234", "name": "Jason"},
    {"id": "2345", "name": "Tom"},
    {"id": "3456", "name": "Art"}
]

list(mit.locate(iterable, pred=lambda d: d["name"] == "Tom"))
# [1]

more_itertools is a third-party library that implements itertools recipes among other useful tools.

0

One liner!?

elm = ([i for i in mylist if i['name'] == 'Tom'] or [None])[0]

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