261

If I have a Python dictionary, how do I get the key to the entry which contains the minimum value?

I was thinking about something to do with the min() function...

Given the input:

{320:1, 321:0, 322:3}

It would return 321.

  • Typo in your stated return? Otherwise, why 321? Shouldn't it be 320? – GreenMatt Jul 19 '10 at 16:25
  • 3
    @myself: Okay, now I see - what is wanted is the key to the entry where the value of the entry is the minimum. Better wording to the question please, as others obviously thought the same as I did. – GreenMatt Jul 19 '10 at 16:29
  • 2
    Data structure awareness day: if you only ever query (or remove) the minimum element, consider using a priority queue or heap. – Colonel Panic Oct 22 '13 at 13:43

15 Answers 15

513

Best: min(d, key=d.get) -- no reason to interpose a useless lambda indirection layer or extract items or keys!

  • 5
    @SilentGhost: You wouldn't, I'm not sure what I was thinking. – MikeD Jul 20 '10 at 14:31
  • 4
    @KarelBílek it means you passed in as "d" a list e.g. [11, 22, 33], instead of a dictionary e.g. {1: 11, 2:22, 3:33}. 'd.get' is valid for a dictionary, but not for a list. – ToolmakerSteve Dec 8 '13 at 2:31
  • 6
    what if two different keys have the same value? and they happen to both be the smallest value? how can you make it return both? – user3226932 Dec 18 '16 at 4:29
  • 3
    Can this technique be used if the dict values are lists, ex: d={"a":[10, None], "b":[20, None]}, where the min is calculated from d[key][0] ? – TrakJohnson Dec 31 '16 at 17:36
  • 4
    get method in py3doc – holzkohlengrill Mar 13 '17 at 15:30
43

Here's an answer that actually gives the solution the OP asked for:

>>> d = {320:1, 321:0, 322:3}
>>> d.items()
[(320, 1), (321, 0), (322, 3)]
>>> # find the minimum by comparing the second element of each tuple
>>> min(d.items(), key=lambda x: x[1]) 
(321, 0)

Using d.iteritems() will be more efficient for larger dictionaries, however.

  • 3
    Instead of the lambda you can use operator.itemgetter(1). – Philipp Jul 19 '10 at 16:28
  • 2
    instead lamda use d.get – Texom512 Sep 12 '15 at 9:29
  • This does not return the key as asked, but the (key, value) pair. – Eric O Lebigot Apr 6 '17 at 10:12
10

min(d.items(), key=lambda x: x[1])[0]

6
>>> d = {320:1, 321:0, 322:3}
>>> min(d, key=lambda k: d[k]) 
321
  • 4
    did you actually run this? – SilentGhost Jul 19 '10 at 16:21
  • It works, but gives the result 321, not (321, 0) ? – tjvr Jul 19 '10 at 16:38
  • @SilentGhost, @blob8108: D'oh! Copy-and-paste snafu. Fixed now. – Daniel Stutzbach Jul 19 '10 at 17:08
  • Fine solution I think, but the anonymous function only adds a layer of indirection: key=d.get is better. – Eric O Lebigot Apr 6 '17 at 10:14
6

For the case where you have multiple minimal keys and want to keep it simple

def minimums(some_dict):
    positions = [] # output variable
    min_value = float("inf")
    for k, v in some_dict.items():
        if v == min_value:
            positions.append(k)
        if v < min_value:
            min_value = v
            positions = [] # output variable
            positions.append(k)

    return positions

minimums({'a':1, 'b':2, 'c':-1, 'd':0, 'e':-1})

['e', 'c']
4

If you are not sure that you have not multiple minimum values, I would suggest:

d = {320:1, 321:0, 322:3, 323:0}
print ', '.join(str(key) for min_value in (min(d.values()),) for key in d if d[key]==min_value)

"""Output:
321, 323
"""
4

For multiple keys which have equal lowest value, you can use a list comprehension:

d = {320:1, 321:0, 322:3, 323:0}

minval = min(d.values())
res = [k for k, v in d.items() if v==minval]

[321, 323]

An equivalent functional version:

res = list(filter(lambda x: d[x]==minval, d))
3

Edit: this is an answer to the OP's original question about the minimal key, not the minimal answer.


You can get the keys of the dict using the keys function, and you're right about using min to find the minimum of that list.

  • Not really deserving a downvote, as the poster's original question wasn't as clear as it might have been. – GreenMatt Jul 19 '10 at 16:30
  • @Space_C0wb0y: perhaps you can be so kind to notice that the OP edited his question to mean something different, after I answered – Eli Bendersky Jul 19 '10 at 16:40
3

Another approach to addressing the issue of multiple keys with the same min value:

>>> dd = {320:1, 321:0, 322:3, 323:0}
>>>
>>> from itertools import groupby
>>> from operator import itemgetter
>>>
>>> print [v for k,v in groupby(sorted((v,k) for k,v in dd.iteritems()), key=itemgetter(0)).next()[1]]
[321, 323]
2

Use min with an iterator (for python 3 use items instead of iteritems); instead of lambda use the itemgetter from operator, which is faster than lambda.

from operator import itemgetter
min_key, _ = min(d.iteritems(), key=itemgetter(1))
1
d={}
d[320]=1
d[321]=0
d[322]=3
value = min(d.values())
for k in d.keys(): 
    if d[k] == value:
        print k,d[k]
  • Any idea how to work out the smallest value ABOVE zero? – Captain Anonymous Jun 25 '17 at 14:51
1

I compared how the following three options perform:

    import random, datetime

myDict = {}
for i in range( 10000000 ):
    myDict[ i ] = random.randint( 0, 10000000 )



# OPTION 1

start = datetime.datetime.now()

sorted = []
for i in myDict:
    sorted.append( ( i, myDict[ i ] ) )
sorted.sort( key = lambda x: x[1] )
print( sorted[0][0] )

end = datetime.datetime.now()
print( end - start )



# OPTION 2

start = datetime.datetime.now()

myDict_values = list( myDict.values() )
myDict_keys = list( myDict.keys() )
min_value = min( myDict_values )
print( myDict_keys[ myDict_values.index( min_value ) ] )

end = datetime.datetime.now()
print( end - start )



# OPTION 3

start = datetime.datetime.now()

print( min( myDict, key=myDict.get ) )

end = datetime.datetime.now()
print( end - start )

Sample output:

#option 1
236230
0:00:14.136808

#option 2
236230
0:00:00.458026

#option 3
236230
0:00:00.824048
0

to create an orderable class you have to override 6 special functions, so that it would be called by the min() function

these methods are__lt__ , __le__, __gt__, __ge__, __eq__ , __ne__ in order they are less than, less than or equal, greater than, greater than or equal, equal, not equal. for example you should implement __lt__ as follows:

def __lt__(self, other):
  return self.comparable_value < other.comparable_value

then you can use the min function as follows:

minValue = min(yourList, key=(lambda k: yourList[k]))

this worked for me.

-1
# python 
d={320:1, 321:0, 322:3}
reduce(lambda x,y: x if d[x]<=d[y] else y, d.iterkeys())
  321
  • @miked: why the reduce-hate? – eruciform Jul 19 '10 at 16:38
  • 6
    1)Reduce is generally slower than itertools. 2)Most implementations of reduce can be done simpler with any or all. 3)I am a giant mouthpiece for GvR. 4)The operator module makes most simple lambdas unnecessary, and complex lambdas should be defined as real functions anyway. Maybe I'm just scared of functional programming. ;) – MikeD Jul 20 '10 at 14:30
  • @miked: tell me more. what's gvr and what's the operator module? could you post links? i may know others, but i'm still just an intermediate in python. willing to learn! :-) – eruciform Jul 20 '10 at 15:35
  • GvR is Guido van Rossum, Python's benevolent dictator for life. Here's a five year old post from him explaining why lisp-isms (map,filter,reduce,lambda) don't have much of a place in python going forward, and those reasons are still true today. The operator module has replacements for extracting members: "lambda x: x[1]" compared to "itemgetter(1)" is a character longer and arguably takes longer to understand. I'm out of space, but ask questions! – MikeD Jul 20 '10 at 16:17
  • @miked: want first bite at the apple? stackoverflow.com/questions/3292481/… – eruciform Jul 20 '10 at 17:08
-7

Is this what you are looking for?

d = dict()
d[15.0]='fifteen'
d[14.0]='fourteen'
d[14.5]='fourteenandhalf'

print d[min(d.keys())]

Prints 'fourteen'

  • 8
    -1: not what the question asked. You're returning the value with the minimum key, OP wants key with the minimum value – Brian S Jul 19 '10 at 16:20

protected by eyllanesc Apr 27 '18 at 1:30

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