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I have two dicts:

blocked = {'-5.00': ['121', '381']}
all_odds = {'-5.00': '{"121":[1.85,1.85],"381":[2.18,1.73],"16":[2.18,1.61],"18":\

I want to first check whether the .keys() comparision (==) returns True, here it does (both -5.00) then I want to remove all items from all_odds that has the key listed in blocked.values() .

For the above it should result in:

all_odds_final = {'-5.00': '{"16":[2.18,1.61],"18": [2.12,1.79]}'}

I tried for loop:

if blocked.keys() == all_odds.keys():
    for value in blocked.values():
        for v in value:
            for val in all_odds.values():
                val = eval(val)
                if val.has_key(v):
                    del val[v] 

which you know is very ugly plus it's not working properly yet.

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You meant to have a nested dict and not a string, correct? – Jared Jun 28 '13 at 5:25
@Jared correct. – nutship Jun 28 '13 at 5:28
But, you seem to be using eval which means you want that to be a string? Please edit your question accordingly. :) – Sukrit Kalra Jun 28 '13 at 5:29
I evaluated a nested dict to be a dict after for loop iteration. – nutship Jun 28 '13 at 5:31

3 Answers 3

up vote 1 down vote accepted

First, make the string a dictionary with ast.literal_eval(). Don't use eval():

>>> import ast
>>> all_odds['-5.00'] = ast.literal_eval(all_odds['-5.00'])

Then you can use a dictionary comprehension:

>>> if blocked.keys() == all_odds.keys():
...     print {blocked.keys()[0] : {k:v for k, v in all_odds.values()[0].iteritems() if k not in blocked.values()[0]}}
{'-5.00': {'18': [2.12, 1.79], '16': [2.18, 1.61]}}

But if you want the value of -5.00 as a string...

>>> {blocked.keys()[0]:str({k: v for k, v in all_odds.values()[0].iteritems() if k not in blocked.values()[0]})}
{'-5.00': "{'18': [2.12, 1.79], '16': [2.18, 1.61]}"}
share|improve this answer
Clean and beautiful. Thanks for ast.literal_eval hint :) – nutship Jun 28 '13 at 6:14

Here's how you can do the same in about 2 lines. I'm not going to use ast, or eval here, but you can add that if you want to use that.

>>> blocked = {'-5.00': ['121', '381']}
>>> all_odds = {'-5.00': {'121':[1.85,1.85],'381':[2.18,1.73],'16':[2.18,1.61],'18':\
...      [2.12,1.79]}}
>>> bkeys = [k for k in all_odds.keys() if k in blocked.keys()]
>>> all_odds_final = {pk: {k:v for k,v in all_odds.get(pk).items() if k not in blocked.get(pk)} for pk in bkeys}
>>> all_odds_final
{'-5.00': {'18': [2.12, 1.79], '16': [2.18, 1.61]}}
share|improve this answer

This seems to work:

blocked = {'-5.00': ['121', '381']}
all_odds = {'-5.00': {"121":[1.85,1.85],"381":[2.18,1.73],"16":[2.18,1.61],"18":\
all_odds_final = dict(all_odds)
for key, blocks in blocked.iteritems():

If you do not want to copy the dictionary, you can just pop items out of the original all_odds dictionary:

for key, blocks in blocked.iteritems():

The empty list in the map function is so pop gets called with None as it's second argument. Without it pop only gets one argument and will return an error if the key is not present.

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