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I am currently using the following function to compare dictionary values. Is there a faster or better way to do it?

match = True
for keys in dict1:
    if dict1[keys] != dict2[keys]:
        match = False
        print keys
        print dict1[keys],
        print  '->' ,
        print dict2[keys]

Edit: Both the dicts contain the same keys.

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Need a little bit of clarification...Are you trying to determine if dict1 and dict2 contain exactly the same things? Or can dict2 contain other values that are not in dict1? Also, do you need to be able to display all the keys that don't match? –  Brent Nash Dec 15 '09 at 23:53
    
I need to be able to display all the values that dont match. Dict2 has the same keys as dict1 –  randomThought Dec 15 '09 at 23:58
    
That's about what I'd write then. You can print dict1[keys], "->", dict2[keys] on one line. –  Jason Orendorff Dec 16 '09 at 0:06
    
Here's one util for visualising differences: github.com/AJamesPhillips/compare/tree/master –  AJP Nov 28 '13 at 22:18

6 Answers 6

up vote 8 down vote accepted

If the dicts have identical sets of keys and you need all those prints for any value difference, there isn't much you can do; maybe something like:

diffkeys = [k for k in dict1 if dict1[k] != dict2[k]]
for k in diffkeys:
  print k, ':', dict1[k], '->', dict2[k]

pretty much equivalent to what you have, but you might get nicer presentation for example by sorting diffkeys before you loop on it.

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If the true intent of the question is the comparison between dicts (rather than printing differences), the answer is

dict1 == dict2

This has been mentioned before, but I felt it was slightly drowning in other bits of information. It might appear superficial, but the value comparison of dicts has actually powerful semantics. It covers

  • number of keys (if they don't match, the dicts are not equal)
  • names of keys (if they don't match, they're not equal)
  • value of each key (they have to be '==', too)

The last point again appears trivial, but is acutally interesting as it means that all of this applies recursively to nested dicts as well. E.g.

 m1 = {'f':True}
 m2 = {'f':True}
 m3 = {'a':1, 2:2, 3:m1}
 m4 = {'a':1, 2:2, 3:m2}
 m3 == m4  # True

Similar semantics exist for the comparison of lists. All of this makes it a no-brainer to e.g. compare deep Json structures, alone with a simple "==".

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all of this applies recursively to nested dicts as well Is this explicitly documented, along with any limitations to a complex nested structure e.g. dict of list of dict etc.? –  buffer Nov 5 at 18:52
    
I can't think off the top of my head about a single piece of documentation that talks exactly about this. My answer is from experience and experimentation. I recommend the same to you, e.g. test comparisons of some data structures that are interesting to you. –  ThomasH Nov 10 at 11:39

You can use sets for this too

>>> a = {'x': 1, 'y': 2}
>>> b = {'y': 2, 'x': 1}
>>> set(a.iteritems())-set(b.iteritems())
set([])
>>> a['y']=3
>>> set(a.iteritems())-set(b.iteritems())
set([('y', 3)])
>>> set(b.iteritems())-set(a.iteritems())
set([('y', 2)])
>>> set(b.iteritems())^set(a.iteritems())
set([('y', 3), ('y', 2)])
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This works really well unless one of the values is unhashable (e.g., a list). set({'x': []}.iteritems()) will raise a TypeError. –  todofixthis Aug 24 '13 at 21:17

Uhm, you are describing dict1 == dict2 ( check if boths dicts are equal )

But what your code does is all( dict1[k]==dict2[k] for k in dict1 ) ( check if all entries in dict1 are equal to those in dict2 )

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Which misses the case where dict2 has additional keys over dict1, so they're actually not behaving the same. –  ThomasH Apr 12 '11 at 12:59
>>> a = {'x': 1, 'y': 2}
>>> b = {'y': 2, 'x': 1}
>>> print a == b
True
>>> c = {'z': 1}
>>> print a == c
False
>>>
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If you're just comparing for equality, you can just do this:

if not dict1 == dict2:
    match = False

Otherwise, the only major problem I see is that you're going to get a KeyError if there is a key in dict1 that is not in dict2, so you may want to do something like this:

for key in dict1:
    if not key in dict2 or dict1[key] != dict2[key]:
        match = False

You could compress this into a comprehension to just get the list of keys that don't match too:

mismatch_keys = [key for key in x if not key in y or x[key] != y[key]]
match = not bool(mismatch_keys) #If the list is not empty, they don't match 
for key in mismatch_keys:
    print key
    print '%s -> %s' % (dict1[key],dict2[key])

The only other optimization I can think of might be to use "len(dict)" to figure out which dict has fewer entries and loop through that one first to have the shortest loop possible.

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