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I have multiple dicts/key-value pairs like this:

d1 = {key1: x1, key2: y1)  
d2 = {key1: x2, key2: y2)  

I want the result to be a new dict (in most efficient way, if possible):

d = {key1: (x1, x2), key2: (y1, y2)}  

Actually, I want result d to be:

d = {key1: (x1.x1attrib, x2.x2attrib), key2: (y1.y1attrib, y2.y2attrib)}  

But, I am guessing if somebody shows me how to get the first result, I can figure out the rest.

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@Salil Please, indent the code correctly (just leave a blank line before and after blocks of code) –  Oscar Mederos May 10 '11 at 6:54
    
@Salil: Can we assume that each key is present in all dictionaries? –  Björn Pollex May 10 '11 at 6:55
1  
Are you sure you don't mean d = {key1: (x1, x2), key2: (y1, y2)}? If that's what you meant, could always do d = dict(((k, (d1[k], d2[k])) for k in d1))... –  Daniel May 10 '11 at 6:59
    
possible duplicate of merging Python dictionaries –  Johnsyweb May 10 '11 at 7:15
    
Sorry, I meant d = {key1: (x1, x2), key2: (y1, y2)} as Daniel suggested. –  Salil May 10 '11 at 7:39
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5 Answers

up vote 3 down vote accepted

assuming all keys are always present in all dicts:

ds = [d1, d2]
d = {}
for k in d1.iterkeys():
    d[k] = tuple(d[k] for d in ds)
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1  
Just "for k in d1" would do I think. –  Salil May 10 '11 at 8:38
    
and d.get(k, None) in place of d[k] –  tahir May 23 '13 at 14:05
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Here's a general solution that will handle an arbitraty amount of dictionaries, with cases when keys are in only some of the dictionaries:

from collections import defaultdict

d1 = {1: 2, 3: 4}
d2 = {1: 6, 3: 7}

dd = defaultdict(list)

for d in (d1, d2): # you can list as many input dicts as you want here
    for key, value in d.iteritems():
        dd[key].append(value)

print(dd)

Shows:

defaultdict(<type 'list'>, {1: [2, 6], 3: [4, 7]})

Also, to get your .attrib, just change append(value) to append(value.attrib)

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I think the OP wants the values as tuple not list. –  user225312 May 10 '11 at 7:08
    
@A A: does it really matter? tuples will be more tricky to build in the more general case of multiple input dicts where some keys present not everywhere, imho –  Eli Bendersky May 10 '11 at 7:10
    
You may then want to make a normal dict out of the defaultdict so you have normal dict behavior for non-existent keys etc: dd = dict(dd) –  Ned Deily May 10 '11 at 7:12
    
@Ned: good point, but it depends on the eventual use of the data –  Eli Bendersky May 10 '11 at 7:14
    
@Eli: No it doesn't matter but I was just trying to base it on what the OP wanted and was hoping that there would be a solution for tuples from you :-) –  user225312 May 10 '11 at 7:28
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If you only have d1 and d2,

from collections import defaultdict

d = defaultdict(list)
for a, b in d1.items() + d2.items():
    d[a].append(b)
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def merge(d1, d2, merge):
    result = dict(d1)
    for k,v in d2.iteritems():
        if k in result:
            result[k] = merge(result[k], v)
        else:
            result[k] = v
    return result

d1 = {'a': 1, 'b': 2}
d2 = {'a': 1, 'b': 3, 'c': 2}
print merge(d1, d2, lambda x, y:(x,y))

{'a': (1, 1), 'c': 2, 'b': (2, 3)}

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Here is one approach you can use which would work even if both dictonaries don't have same keys :

d1 = {'a':'test','b':'btest','d':'dreg'}
d2 = {'a':'cool','b':'main','c':'clear'}

d = {}

for key in set(d1.keys() + d2.keys()):
    try:
        d.setdefault(key,[]).append(d1[key])        
    except KeyError:
        pass

    try:
        d.setdefault(key,[]).append(d2[key])          
    except KeyError:
        pass

print d

This would generate below input:

{'a': ['test', 'cool'], 'c': ['clear'], 'b': ['btest', 'main'], 'd': ['dreg']}

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