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Source list of dictionaries

[
    {'main_id': 0, '_id': ObjectId('111111111111111'), 'key1': 'val1'}, 
    {'main_id': 1, '_id': ObjectId('222222222222222'), 'key1': 'val2'}, 
    {'main_id': 1, '_id': ObjectId('333333333333333'), 'key1': 'val3'}, 
    {'main_id': 4, '_id': ObjectId('444444444444444'), 'key1': 'val4'},
    {'main_id': 2, '_id': ObjectId('555555555555555'), 'key1': 'val5'},
]

filtered list of dictionaries

[
    {'main_id': 0, '_id': ObjectId('111111111111111'), 'key1': 'val1'}, 
    {'main_id': 1, '_id': ObjectId('222222222222222'), 'key1': 'val2'}, 
    {'main_id': 2, '_id': ObjectId('555555555555555'), 'key1': 'val3'},
]

I want to get a new list of dictionaries:

[
    {'main_id': 1, '_id': ObjectId('333333333333333'), 'key1': 'val3'}, 
    {'main_id': 4, '_id': ObjectId('444444444444444'), 'key1': 'val4'},
]

in other words, I want a new list to contain values that don't exist in a filtered list. Your ideas?

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2  
In your example, the filtered list is not a subset of the first list. Why? –  wim Nov 7 '12 at 3:49
    
@wim Rather, it is. –  pydsigner Nov 7 '12 at 4:04
1  
I think val3 is supposed to be val5 in the filtered list? –  lc. Nov 7 '12 at 4:49

3 Answers 3

up vote 3 down vote accepted

One liner:

result = [s for s in original if s not in filtered]

or use filter:

filter(lambda x: x not in filtered, original)
share|improve this answer
full = [
    {'main_id': 0, '_id': ObjectId('111111111111111'), 'key1': 'val1'}, 
    {'main_id': 1, '_id': ObjectId('222222222222222'), 'key1': 'val2'}, 
    {'main_id': 1, '_id': ObjectId('333333333333333'), 'key1': 'val3'}, 
    {'main_id': 4, '_id': ObjectId('444444444444444'), 'key1': 'val4'},
    {'main_id': 2, '_id': ObjectId('555555555555555'), 'key1': 'val5'},
]
filtered = [
    {'main_id': 0, '_id': ObjectId('111111111111111'), 'key1': 'val6'}, 
    {'main_id': 1, '_id': ObjectId('222222222222222'), 'key1': 'val7'}, 
    {'main_id': 2, '_id': ObjectId('555555555555555'), 'key1': 'val8'},
]

diff = [x for x in full if x not in filtered]
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It would probably be best to copy filtered into a set first, as the membership checks will be significantly faster. (Obviously, it depends on what the size of the input will be and what the needs are for performance/memory use). –  Lattyware Nov 7 '12 at 3:56
    
Ah, CPU versus RAM. The classic duel. –  pydsigner Nov 7 '12 at 4:04
    
but it would not allow you to copy this to set - will throw dict obj is unhashable. –  Artsiom Rudzenka Nov 7 '12 at 4:08

Using original data:

# dummy!
ObjectId = str


original = [
    {'main_id': 0, '_id': ObjectId('111111111111111'), 'key1': 'val1'}, 
    {'main_id': 1, '_id': ObjectId('222222222222222'), 'key1': 'val2'}, 
    {'main_id': 1, '_id': ObjectId('333333333333333'), 'key1': 'val3'}, 
    {'main_id': 4, '_id': ObjectId('444444444444444'), 'key1': 'val4'},
    {'main_id': 2, '_id': ObjectId('555555555555555'), 'key1': 'val5'},
]

filtered = [
    {'main_id': 0, '_id': ObjectId('111111111111111'), 'key1': 'val1'}, 
    {'main_id': 1, '_id': ObjectId('222222222222222'), 'key1': 'val2'}, 
    {'main_id': 2, '_id': ObjectId('555555555555555'), 'key1': 'val3'},
]

new_list = [d for d in original if d not in filtered]

print(new_list)
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