Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like to create a "translator" type of dict that would assign values that are keys in different dicts, which are nested, to keys in a dict that I created. The problem I run into is that I can't create a value that represents a nested dict key without having to convert that to a string or some other data type, and when I try to use a string as an index to the nested dict, I get an index error. Ideally, my dict would look something like this:

new_dict{
    "new_key_1" : ['subdict1']['subdict2']['old_key_1'],
    "new_key_2" : ['subdict1']['subdict2']['old_key_2'],
    "new_key_3" : ['subdict1']['subdict3']['old_key_3']
    }

Then, for each nested dict, I could generate a new dict object with a simple for loop:

for key, value in new_dict.items() :
    user_dict_1[key] = OldDict[value]

The nested dicts are very large and I only need a few fields from each, otherwise I could just use the .copy() function to work with the old dicts.

PS- Any help in rewriting this question to be more readable also appreciated.

share|improve this question
    
when you say ['subdict1']['subdict2']['old_key_1'] you mean like a nested dict --> {'subdict1': {'subdict2': 'old_key_1'}} or a list of dicts? I didn't got that part very well. If you can post why you want to do this we may help you in different ways (maybe simpler ways) to handle your problem –  Hassek Jul 13 '12 at 16:53
    
Yes, it is a nested dict but old_key_1 is a key - like {'subdict1': {subdict2: {old_key_1 : some_value, old_key_2 : some_other value}}}. It is actually a JSON-rpc object converted to a dict in Python. –  pdom Jul 13 '12 at 19:51

2 Answers 2

up vote 4 down vote accepted

You're going to need reduce() for this one...

attrmap = {
  "new_key_1": ('subdict1', 'subdict2', 'old_key_1'),
   ...
}

print reduce(lambda x, y: x[y], attrmap[somekey], old_object)
share|improve this answer
    
Fancy nice answer. I upvote it. –  DevPlayer Jul 13 '12 at 17:09
    
Ignacio, could you elaborate on this answer some more. I have tried to get this code to work, but I keep getting an AttributeError: dict object has no attribute 'subdict1'. –  pdom Jul 13 '12 at 20:20
    
Pfft. That's because I screwed up. –  Ignacio Vazquez-Abrams Jul 13 '12 at 20:23
    
Very nice code, thanks. –  pdom Jul 13 '12 at 23:26

Are you talking something like this?

from pprint import pprint as pp
subdict1 = {'subdict1_item1':1, 'subdict1_item2':2}
subdict2 = {'subdict2_item1':3, 'subdict2_item2':4}
subdict3 = {'subdict3_item1': 5, 'subdict3_item1':6}
olddict = {
    'old_key_1': [subdict1, subdict2],
    'old_key_2': [subdict1, subdict2],
    'old_key_3': [subdict1, subdict3],
    }

newdict = {
    'new_key_1': olddict['old_key_1'].append('old_key_1'),
    'new_key_2': olddict['old_key_2'].append('old_key_2'),
    'new_key_3': olddict['old_key_3'].append('old_key_3'),
    }

or this

newdict = {
    'new_key_1': 'old_key_1',
    'new_key_2': 'old_key_2',
    'new_key_3': 'old_key_3',
    }
def getnew(newkey, newdict, olddict):
    if newkey in newdict:
        oldkey = newdict[newkey]
        if oldkey in olddict:
            preitem = olddict[ oldkey ] # returns a list with two items
            item = []
            item.append([preitem[0]]) # makes subdict1 wrapped in a list
            item.append([preitem[1]]) # makes subdict2/3 wrapped in a list
            item.append([oldkey])
            return item
        else:
            raise KeyError('newdict has no matching olddict key')

results to:

pp( getnew('new_key_1', newdict, olddict) )
print 
pp( getnew('new_key_2', newdict, olddict) )
print
pp( getnew('new_key_3', newdict, olddict) )
[[{'subdict1_item1': 1, 'subdict1_item2': 2}],
 [{'subdict2_item1': 3, 'subdict2_item2': 4}],
 ['old_key_1']]

[[{'subdict1_item1': 1, 'subdict1_item2': 2}],
 [{'subdict2_item1': 3, 'subdict2_item2': 4}],
 ['old_key_2']]

[[{'subdict1_item1': 1, 'subdict1_item2': 2}],
 [{'subdict3_item1': 6}],
 ['old_key_3']]
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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