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I had to remove some fields from a dictionary, the keys of this fields are on a list. So I write this function:

def delete_keys_from_dict(dict_del, lst_keys):
    """
    Delete the keys present in the lst_keys from the dictionary.
    Loops recursively over nested dictionaries.
    """
    dict_foo = dict_del.copy()#Used as iterator to avoid the 'DictionaryHasChanged' error
    for field in dict_foo.keys():
        if field in lst_keys:
            del dict_del[field]
        if type(dict_foo[field]) == dict:
            delete_keys_from_dict(dict_del[field], lst_keys)
    return dict_del

This code works, but it's not very elegant and I'm sure that you can code a better solution. Thaks in advance.

share|improve this question
    
hmmm I find it elegant ! – Anurag Uniyal Aug 4 '10 at 13:04
2  
I think it's not bad code; you've got the important bit which is recursing over nested dictionaries. You should probably check isinstance( spam, collections.MutableMapping ) to be more polymorphic. – katrielalex Aug 4 '10 at 13:04
up vote 8 down vote accepted
def delete_keys_from_dict(dict_del, lst_keys):
    for k in lst_keys:
        try:
            del dict_del[k]
        except KeyError:
            pass
    for v in dict_del.values():
        if isinstance(v, dict):
            delete_keys_from_dict(v, lst_keys)

    return dict_del
share|improve this answer
    
Sorry but this code doesn't work as expected I try to do: print delete_keys_from_dict ({'code': 'sdasda', 'tag.dbmko8e8': {'id':'casas', 'name': 'asdas identyfier'}, 'name': 'collection'}, ["id"]) And delete all the fields from the dictionary :( – fasouto Aug 4 '10 at 13:22
    
I wasn't returning the dictionary (I've updated the code above). You were getting "None" printed because the value wasn't being returned. Since this function doesn't modify the dictionary, you can simply print the same dictionary you passed in. I've updated the code so it returns the dict also. – Ned Batchelder Aug 4 '10 at 13:30
1  
tbh I think your fisrt version was better, not returning the dictionary because as you said the original will already have the updated keys and you are not "wasting" the return value to return something already existent and the method could be modified in the future to return for example the number of values removed without changes to the already existent calling code. – laurent Aug 4 '10 at 13:47
    
Oops!! I dont realize that missing return :( thanks for your code Ned!! – fasouto Aug 4 '10 at 13:56
    
@fsouto - I would use the actual dictionary modified for print (or other) statement and not the return value as when you use print delete_keys... you end having a print statement modifying data. Of course this is OK but personaly I avoid do do this because if you don't need anymore to print the dict, you can't only remove the print statement because the dictionary won't be updated so you'll have to remember that and comment it for other programers or for you in a few weeks and I think this is an unecessary potencial source of errors :) – laurent Aug 4 '10 at 14:03

Since you already need to loop through every element in the dict, I'd stick with a single loop and just make sure to use a set for looking up the keys to delete

def delete_keys_from_dict(dict_del, the_keys):
    """
    Delete the keys present in the lst_keys from the dictionary.
    Loops recursively over nested dictionaries.
    """
    # make sure the_keys is a set to get O(1) lookups
    if type(the_keys) is not set:
        the_keys = set(the_keys)
    for k,v in dict_del.items():
        if k in the_keys:
            del dict_del[k]
        if isinstance(v, dict):
            delete_keys_from_dict(v, the_keys)
    return dict_del
share|improve this answer

Since the question requested an elegant way, I'll submit my general-purpose solution to wrangling nested structures. First, install the boltons utility package with pip install boltons, then:

from boltons.iterutils import remap

data = {'one': 'remains', 'this': 'goes', 'of': 'course'}
bad_keys = set(['this', 'is', 'a', 'list', 'of', 'keys'])

drop_keys = lambda path, key, value: key not in bad_keys
clean = remap(data, visit=drop_keys)
print(clean)

# Output:
{'one': 'remains'}

In short, the remap utility is a full-featured, yet succinct approach to handling real-world data structures which are often nested, and can even contain cycles and special containers.

This page has many more examples, including ones working with much larger objects from Github's API.

It's pure-Python, so it works everywhere, and is fully tested in Python 2.7 and 3.3+. Best of all, I wrote it for exactly cases like this, so if you find a case it doesn't handle, you can bug me to fix it right here.

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