0

This looks like it should be simple, but for some reason I can't get there.

I have dicts that could be in several possible formats:

dict1 = {"repo": "val1", "org":"val2"}
dict2 = {"key1":"repo", "key2":"org"}
dict3 = {"key1":"org and stuff"}
dict4 = {"org and stuff":"value1"}
dict5 = {"key1":{"value1":"value2"}, "key2":{"1":"org"}}
dict6 = {"org":{"value1":"value2"}, "key2":{"value1":"value2"}}
dict7 = {"org":{"subkey1":{"value1":"value2"}}, "key2":{"value1":"value2"}}
dict8 = {"key1":{"subkey1":{"value1":"org"}}, "key2":{"value1":"value2"}}

I want to search for the string 'org' and if it is anywhere in the dict (key, value, key[subkey][value], etc.), return true. I do not want partial string matches.

That is, I'm looking for the following result:

True
True
False
False
True
True
True
True

I have read these questions, but none of them quite answer because I could have nested dicts:

How to search for all the characters from a string in all Dictionary.Values()

Generic Function to replace value of a key in a dict or nested dict or list of dicts

Find dictionary items whose key matches a substring

Filter a dict of dict

How can I check if the characters in a string are in a dictionary of values?

  • 1
    Be aware that the general answer is "This isn't a great idea, change your data structure." It's not impossible though :) – Adam Smith Mar 15 at 0:24
5

Use recursion!

def indict(thedict, thestring):
    if thestring in thedict:
        return True
    for val in thedict.values():
        if isinstance(val, dict) and indict(val, thestring):
            return True
        elif isinstance(val, str) and val == thestring:
            return True
    return False
  • Not sure you need isinstance(val, str) in the second case because val == thestring necessarily means it will be True. – Julien Mar 15 at 0:30
  • 1
    isinstance() part is not need indeed, but I keep it for consistency with the previous one. However, don't return val == thestring! I need to check next one if it is false. – adrtam Mar 15 at 0:31
  • Right deleted that 2nd horrible remark :) – Julien Mar 15 at 0:33
1

Technically you could just convert the dict to a string and search if the word exists using re. Plus this requires no loops and should be faster/simpler than using loops/recursion if your dicts happen to be very large. Also if you have sub lists or tuples and such

import re

def indict(data, word):
    return bool(re.search(f"'{word}'", str(data)))

For proof of concept, using your dicts I tested and this returns your desired results.

dicts = (dict1, dict2, dict3, dict4, dict5, dict6, dict7, dict8)

for d in dicts:
  print(indict(d, 'org'))

This prints:

True
True
False
False
True
True
True
True
True
0

It looks like adrtam got here first, but I basically came up with the same thing

def searcher(input_dict, search_item):
    for key, value in input_dict.items():
        if search_item == key or search_item == value:
            return True
        elif type(value) is dict:
            searcher(input_dict[key], search_item) #search recursively
    return False
0

You can use a recursive function that returns True if the search string is in any of the keys or values of the given dict, or if the given dict is actually not a dict, returns if the search string is equal to it:

def is_in(d, s):
    return s in d or any(is_in(v, s) for v in d.values()) if isinstance(d, dict) else d == s

so that:

for d in [
    {"repo": "val1", "org":"val2"},
    {"key1":"repo", "key2":"org"},
    {"key1":"org and stuff"},
    {"org and stuff":"value1"},
    {"key1":{"value1":"value2"}, "key2":{"1":"org"}},
    {"org":{"value1":"value2"}, "key2":{"value1":"value2"}},
    {"org":{"subkey1":{"value1":"value2"}}, "key2":{"value1":"value2"}},
    {"key1":{"subkey1":{"value1":"org"}}, "key2":{"value1":"value2"}}]:
    print(is_in(d, 'org'))

outputs:

True
True
False
False
True
True
True
True

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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