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If A and B are two dictionaries, using python, is there any way of removing elements from Dictionary A that are in dictionary B?

For example,

parent_dict = {"a" : "aaa", "b" : "bbb", "c" : "ccc", "d" : "ddd", "e": "eee"}
derived_dict = {"a" : "aaa", "d" : "ddd", "e" : "eee"}

Now I need to write a function dict_reduce(dictA, dictB) which deletes all the elements of dictB from dictA.

(i.e.,) dict_reduce(parent_dict, derived_dict) should give {"b" : "bbb", "c" : "ccc"}

My work around with a for loop is:

def dict_reduce(parent_dict, child_dict):
    for key in child_dict.keys():
        del parent_dict[key]
    return parent_dict

reduced_dict = dict_reduce(parent_dict, child_dict)

NOTE:

  1. It will be great if the solution is a one liner or something which do not takes a for loop.
  2. Also we need not to check whether parent dictionary has the key before deleting, since the child dictionary is derived from the parent dictionary. So need not think about keyError.
  3. The parent dictionary is a static dictionary which should not be affected by the method. Instead the returning dictionary should be stored in another reduced dictionary.
  4. There is no need to check whether the child_dict has same key as that of parent_dict. Only the key matters.
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3  
What's your issue with using a for loop? Your function looks perfectly clear and once you've written the function any time you use it is a one liner and is also readable. Nobody gets prizes for writing overly smart obscure code when a three line function does the job. –  Duncan Jul 18 '11 at 13:34
    
your workaround affects parent_dict, is it what you want? –  neurino Jul 18 '11 at 13:37
    
@Duncan I have no issues with using a for loop. But my situation is to work with a dictionary generated by a rrd tool. So I am kind of trying to reduce the number of for loops. It takes hell lot of time for my application to process. If there is a solution without a for loop then I can definitely make use of it. –  thiruvenkadam Jul 18 '11 at 15:05
    
@neurino parent_dict should not be affected as it is the dictionary used throughout the code. I will update my question accordingly. Thanks for pointing it out. –  thiruvenkadam Jul 18 '11 at 15:07
1  
@thiruvenkadam: whatever you will end up using, map, filter, list comprehensions or other you will ever end with a for loop underneath even if you don't find it explicitly written ... –  neurino Jul 18 '11 at 15:31

3 Answers 3

up vote 2 down vote accepted
dict((k, v) for (k, v) in parent_dict.iteritems() if k not in derived_dict)
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Removes duplicate keys that have different values. –  agf Jul 18 '11 at 13:39
    
@agf Yes, that's the task (according to "workaround") –  DrTyrsa Jul 18 '11 at 13:46
    
@DrTyrsa Cool... It is working like a charm for me. I can easily assign it to a new dictionary. –  thiruvenkadam Jul 18 '11 at 15:29
map(lambda k: del parent_dict[k], child_dict.keys())
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1  
Syntax error for me (2.6). –  DrTyrsa Jul 18 '11 at 13:35
1  
del is a statement, and can't be placed in a lambda. –  interjay Jul 18 '11 at 13:35
    
Oops! That's absolutely right. Sorry. Note for the future: always test the snippet before posting, especially if you are currently working in a different language! –  deStrangis Jul 18 '11 at 13:52

If affect parent_dict is what you want this does the job

map(parent_dict.pop, filter(lambda k: k in derived_dict, parent_dict))

(and also returns duplicate keys)

This variant will also check (if requiered) that also values match:

map(parent_dict.pop, filter(lambda k: k in derived_dict and derived_dict[k] == parent_dict[k], parent_dict))
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parent_dict should not be affected. I have included the note along with the question now. Thanks for pointing it out. –  thiruvenkadam Jul 18 '11 at 15:18

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