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I receive a dictionary as input, and want to return a list of keys for which the dictionary values are unique in the scope of that dictionary.

I will clarify with an example. Say my input is dictionary a, constructed as follows:

a = dict()
a['cat'] =      1
a['fish'] =     1
a['dog'] =      2  # <-- unique
a['bat'] =      3
a['aardvark'] = 3
a['snake'] =    4  # <-- unique
a['wallaby'] =  5
a['badger'] =   5

The result I expect is ['dog', 'snake'].

There are obvious brute force ways to achieve this, however I wondered if there's a neat Pythonian way to get the job done.

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9 Answers

up vote 12 down vote accepted

I think efficient way if dict is too large would be

countMap = {}
for v in a.itervalues():
    countMap[v] = countMap.get(v,0) + 1
uni = [ k for k, v in a.iteritems() if countMap[v] == 1]
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1  
It would be prettier with collections.defaultdict(int), IMO –  Ryan Ginstrom Jun 24 '09 at 1:13
    
yes, but I would leave it so that people know what we use to do when there were no defaultdicts –  Anurag Uniyal Jun 24 '09 at 13:49
    
WASTEFUL: does for k, v in a.iteritems(): but doesn't use k!!! –  John Machin Jun 25 '09 at 0:25
2  
@John Machin, thanks removed the WASTE –  Anurag Uniyal Jul 29 '11 at 0:34
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Here is a solution that only requires traversing the dict once:

def unique_values(d):
    seen = {} # dict (value, key)
    result = set() # keys with unique values
    for k,v in d.iteritems():
        if v in seen:
            result.discard(seen[v])
        else:
            seen[v] = k
            result.add(k)
    return list(result)
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If a value occurs 3 times, you will try to remove a non-existent element from result ... docs say """remove(elem) Remove element elem from the set. Raises KeyError if elem is not contained in the set.""" –  John Machin Jun 23 '09 at 13:41
    
Right you are! I have corrected it to use discard() instead. –  Rick Copeland Jun 23 '09 at 13:55
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Note that this actually is a bruteforce:

l = a.values()
b = [x for x in a if l.count(a[x]) == 1]
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it will not output ['dog', 'snake'] –  Anurag Uniyal Jun 23 '09 at 12:52
    
Isn't l.count('dog') zero? l is [3, 3, 2, 1, 4, 5, 1, 5] on my system. –  Paul Stephenson Jun 23 '09 at 13:30
    
ok, i see that cobbal has already corrected the code. thanks. –  Bartosz Radaczyński Jun 25 '09 at 14:00
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>>> b = []
>>> import collections
>>> bag = collections.defaultdict(lambda: 0)
>>> for v in a.itervalues():
...     bag[v] += 1
...
>>> b = [k for (k, v) in a.iteritems() if bag[v] == 1]
>>> b.sort() # optional
>>> print b
['dog', 'snake']
>>>
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collections.defaultdict(int) will also work –  Ryan Ginstrom Jun 24 '09 at 1:14
    
@Ryan: True but lambda: 0 is more explicit than int ... AFAICT, until defaultdict arrived [2.5], the number of persons who knew that int() produced 0 [since 2.2] instead of an exception was < epsilon and the number who had a use for that knowledge was even smaller :-) –  John Machin Jun 24 '09 at 2:10
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A little more verbose, but does need only one pass over a:

revDict = {}
for k, v in a.iteritems():
  if v in revDict:
     revDict[v] = None
  else:
     revDict[v] = k

[ x for x in revDict.itervalues() if x != None ]

( I hope it works, since I can't test it here )

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1  
Doesn't work if one of the dictionary keys is None. For example if a is {None: 1} the output should be [None] but the above code will produce []. Also: x is not None is preferable to x != None. –  John Machin Jun 23 '09 at 13:51
    
Thanks for the comment! You are totally right. In praxis, it seldom happens that None is used ... but even then, one could create some DummyObject: "Dummy = object()" instead of using None. –  Juergen Jun 23 '09 at 13:59
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What about subclassing?

class UniqueValuesDict(dict):

    def __init__(self, *args):
        dict.__init__(self, *args)
        self._inverse = {}

    def __setitem__(self, key, value):
        if value in self.values():
            if value in self._inverse:
                del self._inverse[value]
        else:
            self._inverse[value] = key
        dict.__setitem__(self, key, value)

    def unique_values(self):
        return self._inverse.values()

a = UniqueValuesDict()

a['cat'] =      1
a['fish'] =     1
a[None] =       1
a['duck'] =     1
a['dog'] =      2  # <-- unique
a['bat'] =      3
a['aardvark'] = 3
a['snake'] =    4  # <-- unique
a['wallaby'] =  5
a['badger'] =   5

assert a.unique_values() == ['dog', 'snake']
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This has the advantage of a smaller memory footprint, but you end up doing an O(N) search every time you set an item, so it's liable to be a lot slower than the dictionary tabulation method. Also, I think you could use a set for _inverse instead of a dict. –  Ryan Ginstrom Jun 24 '09 at 1:12
    
Another problem: the OP placed no constraints on how the contents of the dict were obtained. So one would expect that del a['bat']; print a.unique_values() would cause aardvark to appear in the output but sadly it doesn't and fixing that would require even more convolutions and double__underscores :-( –  John Machin Jun 24 '09 at 5:00
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Here's another variation.

>>> import collections
>>> inverse= collections.defaultdict(list)
>>> for k,v in a.items():
...     inverse[v].append(k)
... 
>>> [ v[0] for v in inverse.values() if len(v) == 1 ]
['dog', 'snake']

I'm partial to this because the inverted dictionary is such a common design pattern.

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You want [ v[0] for k,v ...] in the last line to get ['dog', 'snake'] as requested. –  Paul Stephenson Jun 23 '09 at 13:46
    
(1) Instead of .items(), use .iteritems(). (2) The last line extracts the key needlessly; should be [v[0] for v in inverse.itervalues() if len(v) == 1 (3) In any case building the whole inverted dict is overkill. –  John Machin Jun 24 '09 at 0:17
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You could do something like this (just count the number of occurrences for each value):

def unique(a):
    from collections import defaultdict
    count = defaultdict(lambda: 0)
    for k, v in a.iteritems():
        count[v] += 1
    for v, c in count.iteritems():
        if c <= 1:
            yield v
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This is yielding values (2, 4) when it should yield keys ('dog', 'snake'). –  John Machin Jun 23 '09 at 13:15
1  
I find defaultdict(int) to be a bit more clear than defaultdict(lambda:0). Since a default dict of almost any other type will simply use the type name. –  S.Lott Jun 23 '09 at 13:20
    
Ah, yielding wrong value, sorry. –  Alex Morega Jun 23 '09 at 13:29
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Use nested list comprehensions!

print [v[0] for v in 
           dict([(v, [k for k in a.keys() if a[k] == v])
                     for v in set(a.values())]).values()
       if len(v) == 1]
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I don't see how using list comprehensions in this way is a win. For me, this just makes the solution harder to comprehend (no pun intended). Readability is key and this solution is just not that readable IMO. –  Bryan Oakley Jun 23 '09 at 14:15
    
Rax asked for "a neat Pythonian way to get the job done," as opposed to "obvious" solutions to an otherwise trivial problem. –  Greg Bacon Jun 23 '09 at 15:11
    
(1) Use k in a instead of k in a.keys() (2) Use whatever.itervalues() instead of whatever.values() (3) The dict(yadda yadda) part is building the already-overkill inverse of a inefficiently (4) It's neither neat nor Python(ic|ian) ... but it's certainly not obvious! (5) Count the number of responders whose first effort at the so-called trivial problem was a stuff-up. –  John Machin Jun 24 '09 at 0:31
1  
-1 Inefficient O(N^2), complex, unreadable –  Tom Leys Jun 24 '09 at 1:14
    
This solution can be edited (using only the delete key!) to get rid of building the inverse; still O(N^2) though: print [v[0] for v in [[k for k in a if a[k] == v] for v in set(a.values())] if len(v) == 1] –  John Machin Jun 24 '09 at 3:24
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