Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need a little bit of homework help. I have to write a function that combines several dictionaries into new dictionary. If a key appears more than once; the values corresponding to that key in the new dictionary should be a unique list. As an example this is what I have so far:

f = {'a': 'apple', 'c': 'cat', 'b': 'bat', 'd': 'dog'}
g =  {'c': 'car', 'b': 'bat', 'e': 'elephant'}
h = {'b': 'boy', 'd': 'deer'}
r = {'a': 'adam'}

def merge(*d):
    newdicts={}
    for dict in d:
        for k in dict.items():
            if k[0] in newdicts:
                newdicts[k[0]].append(k[1])
            else:
                newdicts[k[0]]=[k[1]]
    return newdicts

combined = merge(f, g, h, r)
print(combined)

The output looks like:

{'a': ['apple', 'adam'], 'c': ['cat', 'car'], 'b': ['bat', 'bat', 'boy'], 'e': ['elephant'], 'd': ['dog', 'deer']}

Under the 'b' key, 'bat' appears twice. How do I remove the duplicates?

I've looked under filter, lambda but I couldn't figure out how to use with (maybe b/c it's a list in a dictionary?)

Any help would be appreciated. And thank you in advance for all your help!

share|improve this question
add comment

4 Answers

up vote 4 down vote accepted

Just test for the element inside the list before adding it: -

for k in dict.items():
    if k[0] in newdicts:
        if k[1] not in newdicts[k[0]]:  # Do this test before adding.
            newdicts[k[0]].append(k[1])
    else:
        newdicts[k[0]]=[k[1]]

And since you want just unique elements in the value list, then you can just use a Set as value instead. Also, you can use a defaultdict here, so that you don't have to test for key existence before adding.

Also, don't use built-in for your as your variable names. Instead of dict some other variable.

So, you can modify your merge method as:

from collections import defaultdict

def merge(*d):
    newdicts = defaultdict(set)  # Define a defaultdict
    for each_dict in d:

        # dict.items() returns a list of (k, v) tuple.
        # So, you can directly unpack the tuple in two loop variables.
        for k, v in each_dict.items():  
            newdicts[k].add(v)

    # And if you want the exact representation that you have shown   
    # You can build a normal dict out of your newly built dict.
    unique = {key: list(value) for key, value in newdicts.items()}
    return unique
share|improve this answer
    
thank you for a very nice/simple solution with your explanations/comments. really appreciate it since i am learning. –  JJoseph Feb 8 '13 at 7:35
    
@JJoseph.. You're welcome :) –  Rohit Jain Feb 8 '13 at 7:37
add comment

In your for loop add this:

for dict in d:
    for k in dict.items():
        if k[0] in newdicts:
            # This line below
            if k[1] not in newdicts[k[0]]:
                newdicts[k[0]].append(k[1])
        else:
            newdicts[k[0]]=[k[1]]

This makes sure duplicates aren't added

share|improve this answer
add comment
>>> import collections
>>> import itertools
>>> uniques = collections.defaultdict(set)
>>> for k, v in itertools.chain(f.items(), g.items(), h.items(), r.items()):
...   uniques[k].add(v)
... 
>>> uniques
defaultdict(<type 'set'>, {'a': set(['apple', 'adam']), 'c': set(['car', 'cat']), 'b':        set(['boy', 'bat']), 'e': set(['elephant']), 'd': set(['deer', 'dog'])})

Note the results are in a set, not a list -- far more computationally efficient this way. If you would like the final form to be lists then you can do the following:

>>> {x: list(y) for x, y in uniques.items()}

{'a': ['apple', 'adam'], 'c': ['car', 'cat'], 'b': ['boy', 'bat'], 'e': ['elephant'], 'd': ['deer', 'dog']}

share|improve this answer
add comment

Use set when you want unique elements:

def merge_dicts(*d):
    result={}
    for dict in d:
        for key, value in dict.items():
          result.setdefault(key, set()).add(value)
    return result

Try to avoid using indices; unpack tuples instead.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.