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Im writing a function to handle multiple queries in a boolean AND search. I have a dict of docs where each query occurs= query_dict

I want the intersection of all values in the query_dict.values():

query_dict = {'foo': ['doc_one.txt', 'doc_two.txt', 'doc_three.txt'],
              'bar': ['doc_one.txt', 'doc_two.txt'],
              'foobar': ['doc_two.txt']}

intersect(query_dict)

>> doc_two.txt

I've been reading about intersection but I'm finding it hard to apply it to a dict.

Thanks for your help!

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its not very clear what you actually are trying to do ... – Joran Beasley Dec 10 '12 at 22:12
In [36]: query_dict = {'foo': ['doc_one.txt', 'doc_two.txt', 'doc_three.txt'],
              'bar': ['doc_one.txt', 'doc_two.txt'],
              'foobar': ['doc_two.txt']}

In [37]: reduce(set.intersection, (set(val) for val in query_dict.values()))
Out[37]: set(['doc_two.txt'])

In [41]: query_dict = {'foo': ['doc_one.txt', 'doc_two.txt', 'doc_three.txt'], 'bar': ['doc_one.txt', 'doc_two.txt'], 'foobar': ['doc_two.txt']}

set.intersection(*(set(val) for val in query_dict.values())) is also a valid solution, though it's a bit slower:

In [42]: %timeit reduce(set.intersection, (set(val) for val in query_dict.values()))
100000 loops, best of 3: 2.78 us per loop

In [43]: %timeit set.intersection(*(set(val) for val in query_dict.values()))
100000 loops, best of 3: 3.28 us per loop
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2  
Instead of reduce, set.intersection(*(set(val).. etc)) should work too. – DSM Dec 10 '12 at 22:15
1  
@DSM: that would work too, but mine's faster. See my updated answer – inspectorG4dget Dec 10 '12 at 22:34
2  
not if you compare the time it takes to type the extra characters, depending on how many times you perform the op.. – DSM Dec 10 '12 at 22:38
    
Points to @DSM for comedy – inspectorG4dget Dec 10 '12 at 22:39

Another way

first = query_dict.values()[0]
rest = query_dict.values()[1:]
print [t for t in set(first) if all(t in q for q in rest)]
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