2

I want to get a list of all keys in a nested dictionary that contains lists and dictionaries.

I currently have this code, but it seems to be missing adding some keys to the list and also duplicate adds some keys.

keys_list = []
def get_keys(d_or_l, keys_list):
    if isinstance(d_or_l, dict):
        for k, v in iter(sorted(d_or_l.iteritems())):
            if isinstance(v, list):
                get_keys(v, keys_list)
            elif isinstance(v, dict):
                get_keys(v, keys_list)
            else:
                keys_list.append(k)
    elif isinstance(d_or_l, list):
        for i in d_or_l:
            if isinstance(i, list):
                get_keys(i, keys_list)
            elif isinstance(i, dict):
                get_keys(i, keys_list)
    else:
        print "** Skipping item of type: {}".format(type(d_or_l))
    return keys_list

This just takes an empty list and populates it with the keys. d_or_l is a variable and takes the original dict to compare it against.

  • 1
    What do you want to do if there is same key in differerent directories ? – Serge Ballesta Oct 2 '14 at 18:23
  • Doesn't matter if there are same keys. I want this for doing a diff against the keys in different dicts for comparison purposes. Taking out duplicate values wouldn't be good. – GatesOfDelirium Oct 2 '14 at 18:39
4

This should do the job:

def get_keys(dl, keys_list):
    if isinstance(dl, dict):
        keys_list += dl.keys()
        map(lambda x: get_keys(x, keys_list), dl.values())
    elif isinstance(dl, list):
        map(lambda x: get_keys(x, keys_list), dl)

To avoid duplicates you can use set, e.g.:

keys_list = list( set( keys_list ) )

Example test case:

keys_list = []
d = {1: 2, 3: 4, 5: [{7: {9: 1}}]}
get_keys(d, keys_list)
print keys_list
>>>> [1, 3, 5, 7, 9]
3

As it stands, your code ignores keys that lead to list or dict values. Remove the else block in your first for loop, you want to add the key no matter what the value is.

keys_list = []
def get_keys(d_or_l, keys_list):
    if isinstance(d_or_l, dict):
        for k, v in iter(sorted(d_or_l.iteritems())):
            if isinstance(v, list):
                get_keys(v, keys_list)
            elif isinstance(v, dict):
                get_keys(v, keys_list)
            keys_list.append(k)   #  Altered line
    elif isinstance(d_or_l, list):
        for i in d_or_l:
            if isinstance(i, list):
                get_keys(i, keys_list)
            elif isinstance(i, dict):
                get_keys(i, keys_list)
    else:
        print "** Skipping item of type: {}".format(type(d_or_l))
    return keys_list

get_keys({1: 2, 3: 4, 5: [{7: {9: 1}}]}, keys_list) returns [1, 3, 9, 7, 5]

To avoid duplication, you could use a set datatype instead of a list.

  • Doesn't work for dict with list and dict e.g. {1: 2, 3: 4, 5: [{7: {9: 1}}]} – pm007 Oct 2 '14 at 18:53
  • @pm7 It works for me in my environment, I'll post the full code I used. – MackM Oct 2 '14 at 19:02
  • Previous version didn't work, now it's fine! – pm007 Oct 2 '14 at 19:04

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