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If a and b are 2 dictionaries:

a = {'UK':'http://www.uk.com', 'COM':['http://www.uk.com','http://www.michaeljackson.com']}



bb = {'Australia': 'http://www.australia.com', 'COM':['http://www.Australia.com', 'http://www.rafaelnadal.com','http://www.rogerfederer.com']}

I want to merge them to get

{'Australia': ['http://www.australia.com'], 'COM': ['http://www.uk.com', 'http://www.michaeljackson.com', 'http://www.Australia.com', 'http://www.rafaelnadal.com', 'http://www.rogerfederer.com'], 'UK': ['http://www.uk.com']}

I want to union them i.e.

How to do it in Python without overwwriting and replacing any value?

share|improve this question
    
overwriting means? it will overwrite key with same name. –  Paritosh Singh Sep 12 '12 at 18:59
    
I dont want to overwrite –  VeilEclipse Sep 12 '12 at 19:07

1 Answer 1

Use a defaultdict:

from collections import defaultdict
d  = defaultdict(list)

for dd in (a,bb):
    for k,v in dd.items():
        #Added this check to make extending work for cases where 
        #the value is a string.
        v = (v,) if isinstance(v,basestring) else v  #basestring is just str in py3k.
        d[k].extend(v)

(but this is pretty much what I told you in my earlier answer)

This now works if your input dictionaries look like

{'Australia':['http://www.australia.com']}

or like:

{'Australia':'http://www.australia.com'}

However, I would advise against the latter form. In general, I think it's a good idea to keep all the keys/values of a dictionary looking the same (at least if you want to treat all the items the same as in this question). That means that if one value is a list, it's a good idea for all of them to be a list.

If you really insist on keeping things this way:

d = {}
for dd in (a,b):
   for k,v in dd.items():
       if(not isinstance(v,list)):
          v = [v]
       try:
          d[k].extend(v)
       except KeyError: #no key, no problem, just add it to the dict.
          d[k] = v
share|improve this answer
    
Thanks a lot!!! –  VeilEclipse Sep 12 '12 at 19:05
    
@ManabChetia -- No problem. Good luck. –  mgilson Sep 12 '12 at 19:07
    
You are right about the {'Australia':['http://www.australia.com']} –  VeilEclipse Sep 12 '12 at 19:08
    
I get this result defaultdict(<type 'list'>, {'Australia': ['h', 't', 't', 'p', ':', '/', '/', 'w', 'w', 'w', '.', 'a', 'u', 's', 't', 'r', 'a', 'l', 'i', 'a', '.', 'c', 'o', 'm'], 'COM': ['http://www.uk.com', 'http://www.michaeljackson.com', 'http://www.Australia.com', 'http://www.rafaelnadal.com', 'http://www.rogerfederer.com'], 'UK': ['h', 't', 't', 'p', ':', '/', '/', 'w', 'w', 'w', '.', 'u', 'k', '.', 'c', 'o', 'm']}) –  VeilEclipse Sep 12 '12 at 19:10
    
@ManabChetia -- Yeah, that's what I expected to happen -- I can add a check to get around that ... –  mgilson Sep 12 '12 at 19:13

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