70

Assume that I have a dict.

data = {1:'b', 2:'a'}

And I want to sort data by 'b' and 'a' so I get the result

'a','b'

How do I do that?
Any ideas?

150

To get the values use

sorted(data.values())

To get the matching keys, use a key function

sorted(data, key=data.get)

To get a list of tuples ordered by value

sorted(data.items(), key=lambda x:x[1])

Related: see the discussion here: Dictionaries are ordered in Python 3.6+

  • Ok, sorry. What I meant was to get (2:'a',1:'b')... any ideas? – kingRauk May 27 '13 at 12:18
  • 1
    @kingRauk, dict's are unordered, but you can make an ordered list of tuples – John La Rooy May 27 '13 at 12:54
  • 2
    sorted(data.items(), key=lambda x:x[1], reverse=True) for reveresed order – Mannu Mar 5 '18 at 8:33
33

If you actually want to sort the dictionary instead of just obtaining a sorted list use collections.OrderedDict

>>> from collections import OrderedDict
>>> from operator import itemgetter
>>> data = {1: 'b', 2: 'a'}
>>> d = OrderedDict(sorted(data.items(), key=itemgetter(1)))
>>> d
OrderedDict([(2, 'a'), (1, 'b')])
>>> d.values()
['a', 'b']
  • The sad thing is that is in Python 2.6.5... that does not support OrderedDict – kingRauk May 27 '13 at 12:40
  • 5
    @kingRauk then don't tag your question Python 2.7.... Also a lot of things you have mentioned in the comments should have been in your question to begin with – jamylak May 27 '13 at 12:41
  • Yeah, sorry for that... – kingRauk May 27 '13 at 12:53
  • @kingRauk No problem at all, it's all good – jamylak May 19 '15 at 12:32
15

From your comment to gnibbler answer, i'd say you want a list of pairs of key-value sorted by value:

sorted(data.items(), key=lambda x:x[1])
7

Sort the values:

sorted(data.values())

returns

['a','b']
7

Thanks for all answers. You are all my heros ;-)

Did in the end something like this:

d = sorted(data, key = d.get)

for id in d:
    text = data[id]
4

I also think it is important to note that Python dict object type is a hash table (more on this here), and thus is not capable of being sorted without converting its keys/values to lists. What this allows is dict item retrieval in constant time O(1), no matter the size/number of elements in a dictionary.

Having said that, once you sort its keys - sorted(data.keys()), or values - sorted(data.values()), you can then use that list to access keys/values in design patterns such as these:

for sortedKey in sorted(dictionary):
    print dictionary[sortedKeY] # gives the values sorted by key

for sortedValue in sorted(dictionary.values()):
    print sortedValue # gives the values sorted by value

Hope this helps.

  • 3
    sorted(dictionary) is better than sorted(dictionary.keys()) – jamylak May 27 '13 at 11:50
  • @jamylak thanks for the suggestion, but I wonder if it behaves in a different pattern then what .keys() would do? – Morgan Wilde May 27 '13 at 12:01
  • 1
    It's semantically equivalent but faster and more idiomatic – jamylak May 27 '13 at 12:04
1

In your comment in response to John, you suggest that you want the keys and values of the dictionary, not just the values.

PEP 256 suggests this for sorting a dictionary by values.

import operator
sorted(d.iteritems(), key=operator.itemgetter(1))

If you want descending order, do this

sorted(d.iteritems(), key=itemgetter(1), reverse=True)
0

no lambda method

# sort dictionary by value
d = {'a1': 'fsdfds', 'g5': 'aa3432ff', 'ca':'zz23432'}
def getkeybyvalue(d,i):
    for k, v in d.items():
        if v == i:
            return (k)

sortvaluelist = sorted(d.values())
sortresult ={}
for i1 in sortvaluelist:   
    key = getkeybyvalue(d,i1)
    sortresult[key] = i1
print ('=====sort by value=====')
print (sortresult)
print ('=======================')
0

You could created sorted list from Values and rebuild the dictionary:

myDictionary={"two":"2", "one":"1", "five":"5", "1four":"4"}

newDictionary={}

sortedList=sorted(myDictionary.values())

for sortedKey in sortedList:
    for key, value in myDictionary.items():
        if value==sortedKey:
            newDictionary[key]=value

Output: newDictionary={'one': '1', 'two': '2', '1four': '4', 'five': '5'}

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