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I have a python dictionary consisting of JSON results. The dictionary contains a nested dictionary, which contains a nested list which contains a nested dictionary. Still with me? Here's an example:

{'hits':{'results':[{'key1':'value1', 
                    'key2':'value2', 
                    'key3':{'sub_key':'sub_value'}},
                   {'key1':'value3',
                    'key2':'value4',
                    'key3':{'sub_key':'sub_value2'}}
                  ]}}

What I want to get from the dictionary is the sub_vale of each sub_key and store it in a different list. No matter what I try I keep getting errors.

This was my last attempt at it:

inner_list=mydict['hits']['results']#This is the list of the inner_dicts

index = 0
    for x in inner_list:
        new_dict[index] = x[u'sub_key']
        index = index + 1

print new_dict

It printed the first few results then started to return everything in the original dictionary. I can't get my head around it. If I replace the new_dict[index] line with a print statement it prints to the screen perfectly. Really need some input on this!

for x in inner_list:
    print x[u'sub_key']
share|improve this question
1  
Please post the erroneous output. The program looks correct, so I have a feeling I don't understand what it's doing that is contrary to what you expect –  inspectorG4dget Jul 9 '12 at 18:10
    
@inspectorG4dget just ran that exact code there and got traceback error File "C:\Python27\test.py", line 24, in main newresults[index] = x[u'sub_key'] IndexError: list assignment index out of range –  adohertyd Jul 9 '12 at 18:16
    
If newresults is what you've posted as new_dict and is a list, then try appending to it, as opposed to assigning to an index that doesn't yet exist –  inspectorG4dget Jul 9 '12 at 18:33

5 Answers 5

up vote 1 down vote accepted

After making some assumptions:

[e['key3']['sub_key'] for e in x['hits']['results']]

To change every instance:

for e in x['hits']['results']:
 e['key3']['sub_key'] = 1
share|improve this answer
    
Thanks that's it. I started out as a C programmer so I find the python syntax strange still. What if I wanted to change the value of the subkey then? As in change sub_value to sub_value_y –  adohertyd Jul 9 '12 at 18:34
    
@adohertyd : for instance x['hits']['results'][0]['key3']['sub_key'] = y –  Marco de Wit Jul 9 '12 at 18:36
    
What about changing it in every instance though? As in a loop? –  adohertyd Jul 9 '12 at 18:38
    
@adohertyd : See answer. –  Marco de Wit Jul 9 '12 at 18:44
    
Thank you very much this has made life much easier for me –  adohertyd Jul 9 '12 at 18:44

x is a dictionary

on the first iteration of for x in ...

x={'key1':'value1', 
                'key2':'value2', 
                'key3':{'sub_key':'sub_value'}},

notice that there is no key sub_key in x but rather in x['key3']['sub_key']

share|improve this answer
    
Why then, when I do print x['sub_key'] it prints no problem? –  adohertyd Jul 9 '12 at 18:22
    
It doesnt for me ... it raises an error ` >>> for x in inner: ... print x[u'sub_key'] ... Traceback (most recent call last): File "<stdin>", line 2, in <module> KeyError: u'sub_key'` –  Joran Beasley Jul 9 '12 at 18:24
    
remove the u from the front of sub_key sorry –  adohertyd Jul 9 '12 at 18:28
    
nope ... still not ... there is oviously something you are doing to inner list in the middle that you are not including... x has no key 'sub_key' .... only x['key3'] has 'sub_key' –  Joran Beasley Jul 9 '12 at 18:31
    
I must have changed something in the code since the print statement worked for me so! But thanks for the input –  adohertyd Jul 9 '12 at 18:36

You forgot on level of nesting.

for x in inner_list:
    for y in x:
        if isinstance(x[y], dict) and 'sub_key' in x[y]:
            new_dict.append( x[y]['sub_key'] )
share|improve this answer
>>> dic={'hits':{'results':[{'key1':'value1', 
                    'key2':'value2', 
                    'key3':{'sub_key':'sub_value'}},
                   {'key1':'value3',
                    'key2':'value4',
                    'key3':{'sub_key':'sub_value2'}}
                  ]}}
>>> inner_list=dic['hits']['results']
>>> [x[y]['sub_key'] for x in inner_list for y in x if isinstance(x[y],dict)]
['sub_value', 'sub_value2']

and if you're sure that it's key3 that always contain the inner dict, then :

>>> [x['key3']['sub_key'] for x in inner_list]
['sub_value', 'sub_value2']

without using List comprehensions:

>>> lis=[]
>>> for x in inner_list:
    for y in x:
        if isinstance(x[y],dict):
            lis.append(x[y]['sub_key'])


>>> lis
['sub_value', 'sub_value2']
share|improve this answer
1  
Wow that's a mouthful there! I'm not making this easy on myself at all! –  adohertyd Jul 9 '12 at 18:23
    
Thanks so much! As I said to Marco, I'm still in the C programming mode so the python syntax is still a bit strange to me. Thank you. –  adohertyd Jul 9 '12 at 18:36
    
yes, List Comprehensions are slighly hard to understand for a new python programmer, so I added a simple version of the answer(w/o using List comprehension) –  Ashwini Chaudhary Jul 9 '12 at 18:43

The index error is coming from new_dict[index] where index is larger than the size of new_dict.

List comprehension should be considered. It is generally better, but to help understand how this works in a loop. Try this instead.

new_list = []
for x in inner_list:
    new_list.append(x[u'sub_key'])

print new_list

If you want to stick with a dict, but use index for a key try this:

index = 0
new_dict = {}
    for x in inner_list:
        new_dict[index] = x[u'sub_key']
        index = index + 1

print new_dict

Ok, based on your comments below, I think this is what you wanted.

inner_list=mydict['hits']['results']#This is the list of the inner_dicts

new_dict = {}
for x in inner_list:
    new_dict[x['key2']] = x['key3']['sub_key']

print new_dict
share|improve this answer
    
Yes it's part of a larger program where I am taking specific elements from 3 dictionaries, putting them in lists and comparing them based on certain criteria. It's easier to do that from a list I think –  adohertyd Jul 9 '12 at 18:39
    
Chip what if I wanted to create a dictionary from some of the elements of the original dictionary. How would I go about doing that? –  adohertyd Jul 9 '12 at 18:42
    
Really similar to the syntax in your code actually, but you need a string for a key. new_dict[key] = value. What element did you want to use for the key and which one for the value. –  ChipJust Jul 9 '12 at 18:44
    
We'll say I want to create a new dictionary with key2 and sub_key and leaving out the rest –  adohertyd Jul 9 '12 at 18:45
    
is key2 a static value or does that change? If you are wanting the second element in a dict that is not going to work because dicts are unordered... –  ChipJust Jul 9 '12 at 18:50

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