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I'm currently re-engaging with Python after a long absence and loving it. However, I find myself coming across a pattern over and over. I keep thinking that there must be a better way to express what I want and that I'm probably doing it the wrong way.

The code that I'm writing is in the following form:

# foo is a dictionary
if foo.has_key(bar):
  foo[bar] += 1
else:
  foo[bar] = 1

I'm writing this a lot in my programs. My first reaction is to push it out to a helper function, but so often the python libraries supply things like this already.

Is there some simple little syntax trick that I'm missing? Or is this the way that it should be done?

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8  
As an aside, you can say if bar in foo: instead of if foo.has_key(bar): –  Cameron Apr 12 '10 at 23:17
4  
@Cameron: s/can/should/ –  J.F. Sebastian Apr 12 '10 at 23:32
    
@J.F. Sebastian: +1 for using a regular expression :-) –  Cameron Apr 13 '10 at 12:35
    
I used has_key because I thought (mistakenly I guess) that it would make use of a hashing function to find the key rather than searching through a list, and hence be more efficient. Thanks for the tip - I'll adjust my coding accordingly. –  cursa Apr 13 '10 at 16:36
    
4 years later, but I think this is important to say for those who may end up here from Google (like me): if key in dict is actually more efficient than d.has_key(key) and conceptually better. –  LeartS Apr 24 at 15:34

5 Answers 5

up vote 47 down vote accepted

Use a defaultdict:

from collections import defaultdict

foo = defaultdict(int)
foo[bar] += 1

In Python >= 2.7, you also have a separate Counter class for these purposes. For Python 2.5 and 2.6, you can use its backported version.

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1  
collections.Counter is in 2.7 docs.python.org/dev/whatsnew/2.7.html#new-and-improved-modules –  J.F. Sebastian Apr 12 '10 at 23:35
    
Thanks, I'm fixing the answer. –  Tamás Apr 12 '10 at 23:40
    
Thanks! I didn't know about defaultdict. That's exactly what I was looking for. –  cursa Apr 13 '10 at 16:34

The dict's get() method takes an optional second parameter that can be used to provide a default value if the requested key is not found:

foo[bar] = foo.get(bar, 0) + 1
share|improve this answer
    
Why the downvote? It's valid and readable –  Wallacoloo Apr 12 '10 at 23:39
    
I didn't vote it down, but I guess the original downvoter did that because it violates the DRY (Don't Repeat Yourself) principle: "foo" and "bar" are both mentioned twice. –  Tamás Apr 13 '10 at 8:09
    
@Tamas: Well, the OPs version mentions each of those three times :) –  truppo Apr 13 '10 at 8:12
    
Yeah, that's even worse :) –  Tamás Apr 13 '10 at 8:37
6  
@Tamas... That seems a fairly extreme interpretation of the DRY principle... I usually see it referred to in the context of repeating logic - not variable names! This is a good answer by my book, as it conveys the logic cleanly and can be adapted to a number of scenarios (any default value, any function to be performed) –  Alex Dec 7 '12 at 6:10

I did some time comparisons. Pretty much equal. The one-lined .get() command is fastest, though.

Output:

get 0.543551800627
exception 0.587318710994
haskey 0.598421703081

Code:

import timeit
import random

RANDLIST = [random.randint(0, 1000) for i in range(10000)]

def get():
    foo = {}
    for bar in RANDLIST:
        foo[bar] = foo.get(bar, 0) + 1


def exception():
    foo = {}
    for bar in RANDLIST:
        try:
            foo[bar] += 1
        except KeyError:
            foo[bar] = 1


def haskey():
    foo = {}
    for bar in RANDLIST:
        if foo.has_key(bar):
            foo[bar] += 1
        else:
            foo[bar] = 1


def main():
    print 'get', timeit.timeit('get()', 'from __main__ import get', number=100)
    print 'exception', timeit.timeit('exception()', 'from __main__ import exception', number=100)
    print 'haskey', timeit.timeit('haskey()', 'from __main__ import haskey', number=100)


if __name__ == '__main__':
    main()
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Interesting - love to see some testing, though the differences you've measured are tiny! I wonder how they would be affected by having more or less duplicates? My prediction: exception version will perform best when foo[bar] += 1 usually succeeds –  Alex Dec 7 '12 at 6:36

You can also take advantage of the control structure in exception handling. A KeyError exception is thrown by a dictionary when you try to assign a value to a non-existent key:

my_dict = {}
try:
    my_dict['a'] += 1
except KeyError, err:    # in 2.6: `except KeyError as err:`
    my_dict['a'] = 1
share|improve this answer
5  
Just because exception handling can be used for control flow doesn't mean that it should. –  Corey Porter Apr 12 '10 at 23:58
    
AFAIK, doing something like dict.has_key(key) actually tries to access the key and returns False if an exception is caught. –  detly Apr 13 '10 at 8:03

For Python >= 2.5 you can do the following:

foo[bar] = 1 if bar not in foo else foo[bar]+1
share|improve this answer
2  
While valid, this is not any more concise or readable than the OP's code. –  Sasha Chedygov Apr 13 '10 at 0:07

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