11

Search for a value and get the parent dictionary names (keys):

Dictionary = {dict1:{
        'part1': {
            '.wbxml': 'application/vnd.wap.wbxml',
            '.rl': 'application/resource-lists+xml',    
        },
        'part2':
            {'.wsdl': 'application/wsdl+xml',
            '.rs': 'application/rls-services+xml',
            '.xop': 'application/xop+xml',
            '.svg': 'image/svg+xml',
            },
        'part3':{...}, ...

   dict2:{
          'part1': {    '.dotx': 'application/vnd.openxmlformats-..'                           
            '.zaz': 'application/vnd.zzazz.deck+xml',
            '.xer': 'application/patch-ops-error+xml',}  
          },
          'part2':{...},
          'part3':{...},...  

    },...

In above dictionary I need to search values like: "image/svg+xml". Where, none of the values are repeated in the dictionary. How to search the "image/svg+xml"? so that it should return the parent keys in a dictionary { dict1:"part2" }.

Please note: Solutions should work unmodified for both Python 2.7 and Python 3.3.

  • Please don't use contradictory tags... chose one or the other. – A.J. Uppal Mar 4 '14 at 5:17
  • @aj8uppal - This is because, I wan't the answer in both of the python versions. If it works in python 2.7 it must work in python 3.3 and vice versa. Because we do have two servers. one is using python2.7 and other one is the latest. And we are writing a script, that should run on both the server. Sorry about that! – Laxmikant Ratnaparkhi Mar 4 '14 at 5:26
  • Something like this should be in the standard lib. – Jonathan Allen Grant Jun 13 '19 at 12:47
8

This is an iterative traversal of your nested dicts that additionally keeps track of all the keys leading up to a particular point. Therefore as soon as you find the correct value inside your dicts, you also already have the keys needed to get to that value.

The code below will run as-is if you put it in a .py file. The find_mime_type(...) function returns the sequence of keys that will get you from the original dictionary to the value you want. The demo() function shows how to use it.

d = {'dict1':
         {'part1':
              {'.wbxml': 'application/vnd.wap.wbxml',
               '.rl': 'application/resource-lists+xml'},
          'part2':
              {'.wsdl': 'application/wsdl+xml',
               '.rs': 'application/rls-services+xml',
               '.xop': 'application/xop+xml',
               '.svg': 'image/svg+xml'}},
     'dict2':
         {'part1':
              {'.dotx': 'application/vnd.openxmlformats-..',
               '.zaz': 'application/vnd.zzazz.deck+xml',
               '.xer': 'application/patch-ops-error+xml'}}}


def demo():
    mime_type = 'image/svg+xml'
    try:
        key_chain = find_mime_type(d, mime_type)
    except KeyError:
        print ('Could not find this mime type: {0}'.format(mime_type))
        exit()
    print ('Found {0} mime type here: {1}'.format(mime_type, key_chain))
    nested = d
    for key in key_chain:
        nested = nested[key]
    print ('Confirmation lookup: {0}'.format(nested))


def find_mime_type(d, mime_type):
    reverse_linked_q = list()
    reverse_linked_q.append((list(), d))
    while reverse_linked_q:
        this_key_chain, this_v = reverse_linked_q.pop()
        # finish search if found the mime type
        if this_v == mime_type:
            return this_key_chain
        # not found. keep searching
        # queue dicts for checking / ignore anything that's not a dict
        try:
            items = this_v.items()
        except AttributeError:
            continue  # this was not a nested dict. ignore it
        for k, v in items:
            reverse_linked_q.append((this_key_chain + [k], v))
    # if we haven't returned by this point, we've exhausted all the contents
    raise KeyError


if __name__ == '__main__':
    demo()

Output:

Found image/svg+xml mime type here: ['dict1', 'part2', '.svg']

Confirmation lookup: image/svg+xml

  • @kobehjohn:I'm waiting for your further explaination – Laxmikant Ratnaparkhi Mar 4 '14 at 10:23
  • @LaxmikantGurnalkar did you try it yet? You can put all this code in one .py file and run it. It should give you the same output that I listed. If this is what you are looking for, then I will put some more documentation. If not, please let me know what is different. – KobeJohn Mar 4 '14 at 12:11
  • @kobehjohn: I was quite busy to work on that task. Later, Will work on that after an hour. Will accept the answer once tested. Thanks – Laxmikant Ratnaparkhi Mar 4 '14 at 12:34
  • @LaxmikantGurnalkar Sounds good. Hope it works for you. I updated the answer code to show how to look up the value after getting the chain of keys. – KobeJohn Mar 4 '14 at 12:43
  • 1
    +1. Here's the same algorithm implemented using recursive calls – jfs Mar 4 '14 at 13:58
18

Here's a simple recursive version:

def getpath(nested_dict, value, prepath=()):
    for k, v in nested_dict.items():
        path = prepath + (k,)
        if v == value: # found value
            return path
        elif hasattr(v, 'items'): # v is a dict
            p = getpath(v, value, path) # recursive call
            if p is not None:
                return p

Example:

print(getpath(dictionary, 'image/svg+xml'))
# -> ('dict1', 'part2', '.svg')
1

Here are two similar quick and dirty ways of doing this type of operation. The function find_parent_dict1 uses list comprehension but if you are uncomfortable with that then find_parent_dict2 uses the infamous nested for loops.

Dictionary = {'dict1':{'part1':{'.wbxml':'1','.rl':'2'},'part2':{'.wbdl':'3','.rs':'4'}},'dict2':{'part3':{'.wbxml':'5','.rl':'6'},'part4':{'.wbdl':'1','.rs':'10'}}}

value = '3'

def find_parent_dict1(Dictionary):
    for key1 in Dictionary.keys():
        item = {key1:key2 for key2 in Dictionary[key1].keys() if value in Dictionary[key1][key2].values()}
        if len(item)>0:
            return item

find_parent_dict1(Dictionary)


def find_parent_dict2(Dictionary):
    for key1 in Dictionary.keys():
        for key2 in Dictionary[key1].keys():
            if value in Dictionary[key1][key2].values():
                print {key1:key2}

find_parent_dict2(Dictionary)
  • 1
    It doesn't work for arbitrary nested dictionaries. .keys() call is redundant in for-loops. – jfs Mar 4 '14 at 14:01
0

Here is a solution that works for a complex data structure of nested lists and dicts

import pprint

def search(d, search_pattern, prev_datapoint_path=''):
    output = []
    current_datapoint = d
    current_datapoint_path = prev_datapoint_path
    if type(current_datapoint) is dict:
        for dkey in current_datapoint:
            if search_pattern in str(dkey):
                c = current_datapoint_path
                c+="['"+dkey+"']"
                output.append(c)
            c = current_datapoint_path
            c+="['"+dkey+"']"
            for i in search(current_datapoint[dkey], search_pattern, c):
                output.append(i)
    elif type(current_datapoint) is list:
        for i in range(0, len(current_datapoint)):
            if search_pattern in str(i):
                c = current_datapoint_path
                c += "[" + str(i) + "]"
                output.append(i)
            c = current_datapoint_path
            c+="["+ str(i) +"]"
            for i in search(current_datapoint[i], search_pattern, c):
                output.append(i)
    elif search_pattern in str(current_datapoint):
        c = current_datapoint_path
        output.append(c)
    output = filter(None, output)
    return list(output)


if __name__ == "__main__":
    d = {'dict1':
             {'part1':
                  {'.wbxml': 'application/vnd.wap.wbxml',
                   '.rl': 'application/resource-lists+xml'},
              'part2':
                  {'.wsdl': 'application/wsdl+xml',
                   '.rs': 'application/rls-services+xml',
                   '.xop': 'application/xop+xml',
                   '.svg': 'image/svg+xml'}},
         'dict2':
             {'part1':
                  {'.dotx': 'application/vnd.openxmlformats-..',
                   '.zaz': 'application/vnd.zzazz.deck+xml',
                   '.xer': 'application/patch-ops-error+xml'}}}

    d2 = {
        "items":
            {
                "item":
                    [
                        {
                            "id": "0001",
                            "type": "donut",
                            "name": "Cake",
                            "ppu": 0.55,
                            "batters":
                                {
                                    "batter":
                                        [
                                            {"id": "1001", "type": "Regular"},
                                            {"id": "1002", "type": "Chocolate"},
                                            {"id": "1003", "type": "Blueberry"},
                                            {"id": "1004", "type": "Devil's Food"}
                                        ]
                                },
                            "topping":
                                [
                                    {"id": "5001", "type": "None"},
                                    {"id": "5002", "type": "Glazed"},
                                    {"id": "5005", "type": "Sugar"},
                                    {"id": "5007", "type": "Powdered Sugar"},
                                    {"id": "5006", "type": "Chocolate with Sprinkles"},
                                    {"id": "5003", "type": "Chocolate"},
                                    {"id": "5004", "type": "Maple"}
                                ]
                        },

                        ...

                    ]
            }
    }

pprint.pprint(search(d,'svg+xml','d'))
>> ["d['dict1']['part2']['.svg']"]

pprint.pprint(search(d2,'500','d2'))
>> ["d2['items']['item'][0]['topping'][0]['id']",
 "d2['items']['item'][0]['topping'][1]['id']",
 "d2['items']['item'][0]['topping'][2]['id']",
 "d2['items']['item'][0]['topping'][3]['id']",
 "d2['items']['item'][0]['topping'][4]['id']",
 "d2['items']['item'][0]['topping'][5]['id']",
 "d2['items']['item'][0]['topping'][6]['id']"]
  • Hello, and welcome to SO! Please add more detail and explaination of your answer. – Devang Padhiyar Apr 6 '19 at 14:15
  • I am not a regular programmer. I apologize for the novice coding style. The solution is intended to work for any complex dictionary with a nested dictionary of dicts and lists. The logic is very simple. I start from the top hierarchy and recursively go through the dicts and lists down the hierarchy. At each point, I check if any key or its value (for dicts) or any index or its value (for lists) match the search pattern. If there is a match the path till that point is pushed into the output list. – Vinay Kumar Apr 6 '19 at 14:17

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