I have a dictionary of values read from two fields in a database: a string field and a numeric field. The string field is unique, so that is the key of the dictionary.

I can sort on the keys, but how can I sort based on the values?

Note: I have read Stack Overflow question How do I sort a list of dictionaries by values of the dictionary in Python? and probably could change my code to have a list of dictionaries, but since I do not really need a list of dictionaries I wanted to know if there is a simpler solution.

  • 7
    The dictionary data structure does not have inherent order. You can iterate through it but there's nothing to guarantee that the iteration will follow any particular order. This is by design, so your best bet is probaly using anohter data structure for representation. – Daishiman Jul 5 '10 at 2:08
  • 108
    "sorted()" can operate on dictionaries (and returns a list of sorted keys), so I think he's aware of this. Without knowing his program, it's absurd to tell someone they're using the wrong data structure. If fast lookups are what you need 90% of the time, then a dict is probably what you want. – bobpaul Feb 15 '13 at 19:04
  • 6
    For those suggesting that this is a duplicate of stackoverflow.com/questions/72899/… , that question is marked as a duplicate of this question. – Marcin Sep 18 '13 at 16:36
  • 5
    If possible, instantiate a NumPy Series from the dictionary and sort it using pandas.Series.order – Dror Nov 27 '14 at 14:22
  • 1
    @Daishiman The base class might not be ordered but OrderedDict is of course. – Taylor Edmiston Sep 9 '17 at 1:10

41 Answers 41

up vote 3613 down vote accepted
+500

It is not possible to sort a dictionary, only to get a representation of a dictionary that is sorted. Dictionaries are inherently orderless, but other types, such as lists and tuples, are not. So you need an ordered data type to represent sorted values, which will be a list—probably a list of tuples.

For instance,

import operator
x = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
sorted_x = sorted(x.items(), key=operator.itemgetter(1))

sorted_x will be a list of tuples sorted by the second element in each tuple. dict(sorted_x) == x.

And for those wishing to sort on keys instead of values:

import operator
x = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
sorted_x = sorted(x.items(), key=operator.itemgetter(0))

In Python3 since unpacking is not allowed [1] we can use

x = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
sorted_by_value = sorted(x.items(), key=lambda kv: kv[1])
  • 31
    for timings on various dictionary sorting by value schemes: writeonly.wordpress.com/2008/08/30/… – Gregg Lind Mar 14 '09 at 17:55
  • 124
    sorted_x.reverse() will give you a descending ordering (by the second tuple element) – saidimu apale May 3 '10 at 5:24
  • 314
    saidimu: Since we're already using sorted(), it's much more efficient to pass in the reverse=True argument. – rmh Jul 5 '10 at 2:59
  • 108
    In python3 I used a lambda: sorted(d.items(), key=lambda x: x[1]). Will this work in python 2.x? – Keyo Feb 15 '11 at 15:05
  • 74
    OrderedDict added to collections in 2.7. Sorting example shown at: docs.python.org/library/… – monkut Apr 24 '11 at 6:31

As simple as: sorted(dict1, key=dict1.get)

Well, it is actually possible to do a "sort by dictionary values". Recently I had to do that in a Code Golf (Stack Overflow question Code golf: Word frequency chart). Abridged, the problem was of the kind: given a text, count how often each word is encountered and display a list of the top words, sorted by decreasing frequency.

If you construct a dictionary with the words as keys and the number of occurrences of each word as value, simplified here as:

from collections import defaultdict
d = defaultdict(int)
for w in text.split():
  d[w] += 1

then you can get a list of the words, ordered by frequency of use with sorted(d, key=d.get) - the sort iterates over the dictionary keys, using the number of word occurrences as a sort key .

for w in sorted(d, key=d.get, reverse=True):
  print w, d[w]

I am writing this detailed explanation to illustrate what people often mean by "I can easily sort a dictionary by key, but how do I sort by value" - and I think the OP was trying to address such an issue. And the solution is to do sort of list of the keys, based on the values, as shown above.

  • 22
    This is also good but key=operator.itemgetter(1) should be more scalable for efficiency than key=d.get – smci Dec 9 '11 at 21:18
  • 4
    You will first need to: import collections # to use defaultdict – rjurney Apr 12 '13 at 23:13
  • 3
    @raylu I do observe a "does not work" behaviour using itemgetter: ----- from operator import itemgetter d = {"a":7, "b":1, "c":5, "d":3} sorted_keys = sorted(d, key=itemgetter, reverse=True) for key in sorted_keys: print "%s: %d" % (key, d[key]) ----- -> b: 1 c: 5 a: 7 d: 3 The results change each time I run the code: weird. (sorry, can't get the code to display properly) – bli Aug 13 '14 at 15:58
  • 8
    @bli sorted_keys = sorted(d.items(), key=itemgetter(1), reverse=True) and for key, val in sorted_keys: print "%s: %d" % (key, val) - itemgetter creates a function when it's called, you don't use it directly like in your example. And a plain iteration on a dict uses the keys without the values – Izkata Aug 19 '14 at 20:21
  • 6
    i have come from the future to tell you of collections.Counter, which has a most_common method that might interest you :) – Eevee Jun 25 '17 at 20:47

You could use:

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

This will sort the dictionary by the values of each entry within the dictionary from smallest to largest.

  • 54
    +1 For being the cleanest solution. However it doesn't sort the dictionary (hash table, not possible), rather it returns an ordered list of (key, value) tuples. – Keyo Feb 15 '11 at 15:10
  • 1
    @Keyo I'm new to python and came across the need to sort a dictionary. And I want to make sure I understood you well: there is no way to use lambda to sort a dictionary, right? – lv10 Jan 9 '13 at 4:20
  • 43
    I'd prefer key=lambda (k, v): v personally – Claudiu Apr 9 '15 at 23:08
  • 21
    @Claudiu I like that (k, v) syntax too, but it's not available in Python 3 where tuple parameter unpacking was removed. – Bob Stein Feb 5 '16 at 17:53
  • 11
    @Nyxynyx Just add reverse=True inside the sorted bit (ie sorted(a.items(), key=lambda x: x[1], reverse=True)) – Mathime Jun 22 '16 at 15:55

Dicts can't be sorted, but you can build a sorted list from them.

A sorted list of dict values:

sorted(d.values())

A list of (key, value) pairs, sorted by value:

from operator import itemgetter
sorted(d.items(), key=itemgetter(1))
  • 5
    +1: sorted(d.values()) is easier to read/understand than Nas's sorted(dict1, key=dict1.get), and therefore more Pythonic. About readability, please also consider my namedtuple suggestion. – Remi Aug 30 '11 at 23:42
  • What order are keys with the same value placed in? I sorted the list by keys first, then by values, but the order of the keys with the same value does not remain. – SabreWolfy Jun 18 '12 at 10:04
  • 17
    @Remi, those are two different things! sorted(d.values()) returns sorted list of the values from the dictionary, where sorted(d, key=d.get) returns list of the keys, sorted in order of the values! Way different. If you don't see the need for the latter, read my post above for "real life" example – Nas Banov Feb 11 '13 at 6:39

In recent Python 2.7, we have the new OrderedDict type, which remembers the order in which the items were added.

>>> d = {"third": 3, "first": 1, "fourth": 4, "second": 2}

>>> for k, v in d.items():
...     print "%s: %s" % (k, v)
...
second: 2
fourth: 4
third: 3
first: 1

>>> d
{'second': 2, 'fourth': 4, 'third': 3, 'first': 1}

To make a new ordered dictionary from the original, sorting by the values:

>>> from collections import OrderedDict
>>> d_sorted_by_value = OrderedDict(sorted(d.items(), key=lambda x: x[1]))

The OrderedDict behaves like a normal dict:

>>> for k, v in d_sorted_by_value.items():
...     print "%s: %s" % (k, v)
...
first: 1
second: 2
third: 3
fourth: 4

>>> d_sorted_by_value
OrderedDict([('first': 1), ('second': 2), ('third': 3), ('fourth': 4)])
  • 4
    This is not what the question is about - it is not about maintaining order of keys but about "sorting by value" – Nas Banov Jul 5 '10 at 7:07
  • 10
    @Nas Banov: it is NOT sorting by the key. it is sorting in the order, we create the items. in our case, we sort by the value. unfortunately, the 3-item dict was unfortunately chosen so the order was the same, when sorted voth by value and key, so i expanded the sample dict. – mykhal Jul 5 '10 at 10:56
  • sorted(d.items(), key=lambda x: x[1]) Can you explain what the x means, why it can take x[1] to lambda? Why does it can't be x[0]? Thank you very much! – JZAU Nov 8 '13 at 5:12
  • @jie d.items() returns a list of key/value pairs from the dictionary and x is an element of this tuple. x[0] will be key and x[1] will be the value. As we intend to sort on the value, we pass x[1] to the lambda. – CadentOrange Nov 19 '13 at 9:06
  • 1
    @Boern d.items() returns a list-like container of (key, value) tuples. [0] accesses the first element of the tuple -- the key -- and [1] accesses the second element -- the value. – BallpointBen Apr 10 at 14:29

UPDATE: 5 DECEMBER 2015 using Python 3.5

Whilst I found the accepted answer useful, I was also surprised that it hasn't been updated to reference OrderedDict from the standard library collections module as a viable, modern alternative - designed to solve exactly this type of problem.

from operator import itemgetter
from collections import OrderedDict

x = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
sorted_x = OrderedDict(sorted(x.items(), key=itemgetter(1)))
# OrderedDict([(0, 0), (2, 1), (1, 2), (4, 3), (3, 4)])

The official OrderedDict documentation offers a very similar example too, but using a lambda for the sort function:

# regular unsorted dictionary
d = {'banana': 3, 'apple':4, 'pear': 1, 'orange': 2}

# dictionary sorted by value
OrderedDict(sorted(d.items(), key=lambda t: t[1]))
# OrderedDict([('pear', 1), ('orange', 2), ('banana', 3), ('apple', 4)])

It can often be very handy to use namedtuple. For example, you have a dictionary of 'name' as keys and 'score' as values and you want to sort on 'score':

import collections
Player = collections.namedtuple('Player', 'score name')
d = {'John':5, 'Alex':10, 'Richard': 7}

sorting with lowest score first:

worst = sorted(Player(v,k) for (k,v) in d.items())

sorting with highest score first:

best = sorted([Player(v,k) for (k,v) in d.items()], reverse=True)

Now you can get the name and score of, let's say the second-best player (index=1) very Pythonically like this:

player = best[1]
player.name
    'Richard'
player.score
    7
  • How could I convert it back to a dictionary? – rowana Feb 7 '17 at 20:31
  • as_list=[Player(v,k) for (k,v) in d.items()] as_dict=dict((p.name,p.score) for p in as_list) – Remi Feb 23 '17 at 12:31

Pretty much the same as Hank Gay's answer;


    sorted([(value,key) for (key,value) in mydict.items()])

Or optimized a bit as suggested by John Fouhy;


    sorted((value,key) for (key,value) in mydict.items())

  • 7
    ..and as with Hank Gay's answer, you don't need the square brackets. sorted() will happily take any iterable, such as a generator expression. – John Fouhy Mar 5 '09 at 1:45
  • You may still need to swap the (value,key) tuple elements to end up with the (key, value). Another list comprehension is then needed. [(key, value) for (value, key) in sorted_list_of_tuples] – saidimu apale May 3 '10 at 5:22
  • no, it's better to leave square brackets, because sorted will have to rebuild the list anyway, and rebuilding from gencomp will be faster. Good for codegolfing, bad for speed. Keep the ugly ([]) version. – Jean-François Fabre Dec 7 '17 at 21:21

As of Python 3.6 the built-in dict will be ordered

Good news, so the OP's original use case of mapping pairs retrieved from a database with unique string ids as keys and numeric values as values into a built-in Python v3.6+ dict, should now respect the insert order.

If say the resulting two column table expressions from a database query like:

SELECT a_key, a_value FROM a_table ORDER BY a_value;

would be stored in two Python tuples, k_seq and v_seq (aligned by numerical index and with the same length of course), then:

k_seq = ('foo', 'bar', 'baz')
v_seq = (0, 1, 42)
ordered_map = dict(zip(k_seq, v_seq))

Allow to output later as:

for k, v in ordered_map.items():
    print(k, v)

yielding in this case (for the new Python 3.6+ built-in dict!):

foo 0
bar 1
baz 42

in the same ordering per value of v.

Where in the Python 3.5 install on my machine it currently yields:

bar 1
foo 0
baz 42

Details:

As proposed in 2012 by Raymond Hettinger (cf. mail on python-dev with subject "More compact dictionaries with faster iteration") and now (in 2016) announced in a mail by Victor Stinner to python-dev with subject "Python 3.6 dict becomes compact and gets a private version; and keywords become ordered" due to the fix/implementation of issue 27350 "Compact and ordered dict" in Python 3.6 we will now be able, to use a built-in dict to maintain insert order!!

Hopefully this will lead to a thin layer OrderedDict implementation as a first step. As @JimFasarakis-Hilliard indicated, some see use cases for the OrderedDict type also in the future. I think the Python community at large will carefully inspect, if this will stand the test of time, and what the next steps will be.

Time to rethink our coding habits to not miss the possibilities opened by stable ordering of:

  • Keyword arguments and
  • (intermediate) dict storage

The first because it eases dispatch in the implementation of functions and methods in some cases.

The second as it encourages to more easily use dicts as intermediate storage in processing pipelines.

Raymond Hettinger kindly provided documentation explaining "The Tech Behind Python 3.6 Dictionaries" - from his San Francisco Python Meetup Group presentation 2016-DEC-08.

And maybe quite some Stack Overflow high decorated question and answer pages will receive variants of this information and many high quality answers will require a per version update too.

Caveat Emptor (but also see below update 2017-12-15):

As @ajcr rightfully notes: "The order-preserving aspect of this new implementation is considered an implementation detail and should not be relied upon." (from the whatsnew36) not nit picking, but the citation was cut a bit pessimistic ;-). It continues as " (this may change in the future, but it is desired to have this new dict implementation in the language for a few releases before changing the language spec to mandate order-preserving semantics for all current and future Python implementations; this also helps preserve backwards-compatibility with older versions of the language where random iteration order is still in effect, e.g. Python 3.5)."

So as in some human languages (e.g. German), usage shapes the language, and the will now has been declared ... in whatsnew36.

Update 2017-12-15:

In a mail to the python-dev list, Guido van Rossum declared:

Make it so. "Dict keeps insertion order" is the ruling. Thanks!

So, the version 3.6 CPython side-effect of dict insertion ordering is now becoming part of the language spec (and not anymore only an implementation detail). That mail thread also surfaced some distinguishing design goals for collections.OrderedDict as reminded by Raymond Hettinger during discussion.

  • 12
    The warning on the 'whatsnew' page you've linked to should be emphasised: the order-preserving aspect of this new implementation is considered an implementation detail and should not be relied upon. Nobody should be assuming that the dict type will respect insertion order in their code. This is not part of the language's definition and the implementation could change in any future release. Continue using OrderedDict to guarantee order. – Alex Riley Sep 10 '16 at 20:15
  • @ajcr thanks for the caveat, very appreciated - as smileys and maybe's were weaved into my response,these should indicated, the change is massive but of course, only available for CPython (reference implementation) and PyPy. For something completely different ... I rarely talk to non-implementation details when coding man-machine instructions. If it would only have been Jython ;-) ... I might not have had the courage to write it. – Dilettant Sep 10 '16 at 20:22
  • OrderedDict definitely won't be dropped; instead, it will become a thin wrapper around the current dict implementation (so you might add that it will become more compact, too). Adding that snippet with the ImportError isn't quite the best idea due to it misleading readers that OrderedDict has no use. – Jim Fasarakis Hilliard Dec 10 '16 at 13:33
  • @JimFasarakis-Hilliard thank you for the feedback. "Quite best ideas" made me smile - future is often hard to predict. But I like your suggestion will check the sources, try it and then update the answer accordingly. Thanks again. – Dilettant Dec 10 '16 at 13:58
  • In a response to this answer, and structured dicts, I posted a new answer. Feedback welcome! – Bram Vanroy Mar 2 at 16:49

Given dictionary

e = {1:39, 4:34, 7:110, 2:87}

Sorting

sred = sorted(e.items(), key=lambda value: value[1])

Result

[(4, 34), (1, 39), (2, 87), (7, 110)]

You can use a lambda function to sort things up by value and store them processed inside a variable, in this case sred with e the original dictionary.

Hope that helps!

I had the same problem, and I solved it like this:

WantedOutput = sorted(MyDict, key=lambda x : MyDict[x]) 

(People who answer "It is not possible to sort a dict" did not read the question! In fact, "I can sort on the keys, but how can I sort based on the values?" clearly means that he wants a list of the keys sorted according to the value of their values.)

Please notice that the order is not well defined (keys with the same value will be in an arbitrary order in the output list).

  • 1
    You are missing the value from the result – Dejell Jan 7 '14 at 20:54
  • Note that you're both iterating the dictionary and fetching values by their key, so performance wise this is not an optimal solution. – Ron Klein Sep 21 '16 at 8:00

In Python 2.7, simply do:

from collections import OrderedDict
# regular unsorted dictionary
d = {'banana': 3, 'apple':4, 'pear': 1, 'orange': 2}

# dictionary sorted by key
OrderedDict(sorted(d.items(), key=lambda t: t[0]))
OrderedDict([('apple', 4), ('banana', 3), ('orange', 2), ('pear', 1)])

# dictionary sorted by value
OrderedDict(sorted(d.items(), key=lambda t: t[1]))
OrderedDict([('pear', 1), ('orange', 2), ('banana', 3), ('apple', 4)])

copy-paste from : http://docs.python.org/dev/library/collections.html#ordereddict-examples-and-recipes

Enjoy ;-)

This is the code:

import operator
origin_list = [
    {"name": "foo", "rank": 0, "rofl": 20000},
    {"name": "Silly", "rank": 15, "rofl": 1000},
    {"name": "Baa", "rank": 300, "rofl": 20},
    {"name": "Zoo", "rank": 10, "rofl": 200},
    {"name": "Penguin", "rank": -1, "rofl": 10000}
]
print ">> Original >>"
for foo in origin_list:
    print foo

print "\n>> Rofl sort >>"
for foo in sorted(origin_list, key=operator.itemgetter("rofl")):
    print foo

print "\n>> Rank sort >>"
for foo in sorted(origin_list, key=operator.itemgetter("rank")):
    print foo

Here are the results:

Original

{'name': 'foo', 'rank': 0, 'rofl': 20000}
{'name': 'Silly', 'rank': 15, 'rofl': 1000}
{'name': 'Baa', 'rank': 300, 'rofl': 20}
{'name': 'Zoo', 'rank': 10, 'rofl': 200}
{'name': 'Penguin', 'rank': -1, 'rofl': 10000}

Rofl

{'name': 'Baa', 'rank': 300, 'rofl': 20}
{'name': 'Zoo', 'rank': 10, 'rofl': 200}
{'name': 'Silly', 'rank': 15, 'rofl': 1000}
{'name': 'Penguin', 'rank': -1, 'rofl': 10000}
{'name': 'foo', 'rank': 0, 'rofl': 20000}

Rank

{'name': 'Penguin', 'rank': -1, 'rofl': 10000}
{'name': 'foo', 'rank': 0, 'rofl': 20000}
{'name': 'Zoo', 'rank': 10, 'rofl': 200}
{'name': 'Silly', 'rank': 15, 'rofl': 1000}
{'name': 'Baa', 'rank': 300, 'rofl': 20}

If values are numeric you may also use Counter from collections

from collections import Counter

x={'hello':1,'python':5, 'world':3}
c=Counter(x)
print c.most_common()


>> [('python', 5), ('world', 3), ('hello', 1)]    
  • what about if you dictionary is >>> x={'hello':1,'python':5, 'world':300} – James Sapam Dec 28 '13 at 13:17
  • @yopy Counter({'hello':1, 'python':5, 'world':300}).most_common() gives [('world', 300), ('python', 5), ('hello', 1)]. This actually works for any sortable value type (although many other Counter operations do require values to be comparable to ints). – lvc Dec 28 '13 at 13:58

Technically, dictionaries aren't sequences, and therefore can't be sorted. You can do something like

sorted(a_dictionary.values())

assuming performance isn't a huge deal.

  • The list comprehension is no longer needed. You can simply pass in sorted(a_dictionary.values()). Even faster, if we want more would be to do foo = a_dictionary.values(); foo.sort() . I don't think speed is that much of an issue, though. Getting rid of the listcomp would simply eliminate redundancy. – Devin Jeanpierre Mar 5 '09 at 1:14

You can create an "inverted index", also

from collections import defaultdict
inverse= defaultdict( list )
for k, v in originalDict.items():
    inverse[v].append( k )

Now your inverse has the values; each value has a list of applicable keys.

for k in sorted(inverse):
    print k, inverse[k]

You can use the collections.Counter. Note, this will work for both numeric and non-numeric values.

>>> x = {1: 2, 3: 4, 4:3, 2:1, 0:0}
>>> from collections import Counter
>>> #To sort in reverse order
>>> Counter(x).most_common()
[(3, 4), (4, 3), (1, 2), (2, 1), (0, 0)]
>>> #To sort in ascending order
>>> Counter(x).most_common()[::-1]
[(0, 0), (2, 1), (1, 2), (4, 3), (3, 4)]
>>> #To get a dictionary sorted by values
>>> from collections import OrderedDict
>>> OrderedDict(Counter(x).most_common()[::-1])
OrderedDict([(0, 0), (2, 1), (1, 2), (4, 3), (3, 4)])

Try the following approach. Let us define a dictionary called mydict with the following data:

mydict = {'carl':40,
          'alan':2,
          'bob':1,
          'danny':3}

If one wanted to sort the dictionary by keys, one could do something like:

for key in sorted(mydict.iterkeys()):
    print "%s: %s" % (key, mydict[key])

This should return the following output:

alan: 2
bob: 1
carl: 40
danny: 3

On the other hand, if one wanted to sort a dictionary by value (as is asked in the question), one could do the following:

for key, value in sorted(mydict.iteritems(), key=lambda (k,v): (v,k)):
    print "%s: %s" % (key, value)

The result of this command (sorting the dictionary by value) should return the following:

bob: 1
alan: 2
danny: 3
carl: 40
  • Awesome! for key, value in sorted(mydict.iteritems(), key=lambda (k,v): v["score"]): allows you to sort by a subkey – Andomar Jul 7 '17 at 19:08

You can use a skip dict which is a dictionary that's permanently sorted by value.

>>> data = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
>>> SkipDict(data)
{0: 0.0, 2: 1.0, 1: 2.0, 4: 3.0, 3: 4.0}

If you use keys(), values() or items() then you'll iterate in sorted order by value.

It's implemented using the skip list datastructure.

This returns the list of key-value pairs in the dictionary, sorted by value from highest to lowest:

sorted(d.items(), key=lambda x: x[1], reverse=True)

For the dictionary sorted by key, use the following:

sorted(d.items(), reverse=True)

The return is a list of tuples because dictionaries themselves can't be sorted.

This can be both printed or sent into further computation.

  • 2
    There is shorter and faster way to do what you are trying: sorted(d.items(), reverse=True) – Nas Banov Feb 20 '14 at 20:17
from django.utils.datastructures import SortedDict

def sortedDictByKey(self,data):
    """Sorted dictionary order by key"""
    sortedDict = SortedDict()
    if data:
        if isinstance(data, dict):
            sortedKey = sorted(data.keys())
            for k in sortedKey:
                sortedDict[k] = data[k]
    return sortedDict
  • 2
    question was: sort by value, not by keys... I like seeing a function. You can import collections and of course use sorted(data.values()) – Remi Aug 30 '11 at 0:38

You can also use custom function that can be passed to key.

def dict_val(x):
    return x[1]
x = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
sorted_x = sorted(x.items(), key=dict_val)

One more way to do is to use labmda function

x = {1: 2, 3: 4, 4: 3, 2: 1, 0: 0}
sorted_x = sorted(x.items(), key=lambda t: t[1])

Here is a solution using zip on d.values() and d.keys(). A few lines down this link (on Dictionary view objects) is:

This allows the creation of (value, key) pairs using zip(): pairs = zip(d.values(), d.keys()).

So we can do the following:

d = {'key1': 874.7, 'key2': 5, 'key3': 8.1}

d_sorted = sorted(zip(d.values(), d.keys()))

print d_sorted 
# prints: [(5, 'key2'), (8.1, 'key3'), (874.7, 'key1')]

Use ValueSortedDict from dicts:

from dicts.sorteddict import ValueSortedDict
d = {1: 2, 3: 4, 4:3, 2:1, 0:0}
sorted_dict = ValueSortedDict(d)
print sorted_dict.items() 

[(0, 0), (2, 1), (1, 2), (4, 3), (3, 4)]

Iterate through a dict and sort it by its values in descending order:

$ python --version
Python 3.2.2

$ cat sort_dict_by_val_desc.py 
dictionary = dict(siis = 1, sana = 2, joka = 3, tuli = 4, aina = 5)
for word in sorted(dictionary, key=dictionary.get, reverse=True):
  print(word, dictionary[word])

$ python sort_dict_by_val_desc.py 
aina 5
tuli 4
joka 3
sana 2
siis 1

I came up with this one,

import operator    
x = {1: 2, 3: 4, 4:3, 2:1, 0:0}
sorted_x = {k[0]:k[1] for k in sorted(x.items(), key=operator.itemgetter(1))}

For Python 3.x: x.items() replacing iteritems().

>>> sorted_x
{0: 0, 1: 2, 2: 1, 3: 4, 4: 3}

Or try with collections.OrderedDict!

x = {1: 2, 3: 4, 4:3, 2:1, 0:0}
from collections import OrderedDict

od1 = OrderedDict(sorted(x.items(), key=lambda t: t[1]))
  • if you're going to do it this way, at leat take advantage of tuple unpacking in the dictionary comprehension: {key: value for key, value in ...} – agf Jul 27 '13 at 16:32

You can use the sorted function of Python

sorted(iterable[, cmp[, key[, reverse]]])

Thus you can use:

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

Visit this link for more information on sorted function: https://docs.python.org/2/library/functions.html#sorted

Of course, remember, you need to use OrderedDict because regular Python dictionaries don't keep the original order.

from collections import OrderedDict
a = OrderedDict(sorted(originalDict.items(), key = lambda x: x[1]))

If you do not have Python 2.7 or higher, the best you can do is iterate over the values in a generator function. (There is an OrderedDict for 2.4 and 2.6 here, but

a) I don't know about how well it works 

and

b) You have to download and install it of course. If you do not have administrative access, then I'm afraid the option's out.)

def gen(originalDict):
    for x,y in sorted(zip(originalDict.keys(), originalDict.values()), key = lambda z: z[1]):
        yield (x, y)
    #Yields as a tuple with (key, value). You can iterate with conditional clauses to get what you want. 

for bleh, meh in gen(myDict):
    if bleh == "foo":
        print(myDict[bleh])

You can also print out every value

for bleh, meh in gen(myDict):
    print(bleh,meh)

Please remember to remove the parentheses after print if not using Python 3.0 or above

As pointed out by Dilettant, Python 3.6 will now keep the order! I thought I'd share a function I wrote that eases the sorting of an iterable (tuple, list, dict). In the latter case, you can sort either on keys or values, and it can take numeric comparison into account. Only for >= 3.6!

When you try using sorted on an iterable that holds e.g. strings as well as ints, sorted() will fail. Of course you can force string comparison with str(). However, in some cases you want to do actual numeric comparison where 12 is smaller than 20 (which is not the case in string comparison). So I came up with the following. When you want explicit numeric comparison you can use the flag num_as_num which will try to do explicit numeric sorting by trying to convert all values to floats. If that succeeds, it will do numeric sorting, otherwise it'll resort to string comparison.

Comments for improvement or push requests welcome.

def sort_iterable(iterable, sort_on=None, reverse=False, num_as_num=False):
    def _sort(i):
      # sort by 0 = keys, 1 values, None for lists and tuples
      try:
        if num_as_num:
          if i is None:
            _sorted = sorted(iterable, key=lambda v: float(v), reverse=reverse)
          else:
            _sorted = dict(sorted(iterable.items(), key=lambda v: float(v[i]), reverse=reverse))
        else:
          raise TypeError
      except (TypeError, ValueError):
        if i is None:
          _sorted = sorted(iterable, key=lambda v: str(v), reverse=reverse)
        else:
          _sorted = dict(sorted(iterable.items(), key=lambda v: str(v[i]), reverse=reverse))

      return _sorted

    if isinstance(iterable, list):
      sorted_list = _sort(None)
      return sorted_list
    elif isinstance(iterable, tuple):
      sorted_list = tuple(_sort(None))
      return sorted_list
    elif isinstance(iterable, dict):
      if sort_on == 'keys':
        sorted_dict = _sort(0)
        return sorted_dict
      elif sort_on == 'values':
        sorted_dict = _sort(1)
        return sorted_dict
      elif sort_on is not None:
        raise ValueError(f"Unexpected value {sort_on} for sort_on. When sorting a dict, use key or values")
    else:
      raise TypeError(f"Unexpected type {type(iterable)} for iterable. Expected a list, tuple, or dict")

If your values are integers, and you use Python 2.7 or newer, you can use collections.Counter instead of dict. The most_common method will give you all items, sorted by the value.

protected by Brad Jun 23 '12 at 15:31

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