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I have a list like this:

lis = ['Date', 'Product', 'Price']

I want to compare it with:

dict = {'Date' : '2013-05-01', 'Salary' : '$5000', 'Product' : 'Toys', 'Price' : '$10', 'Salesman' : 'Smith'}

I want to compare each item of list with keys of dictionary and make a new dictionary.
What I have tried is:

n = {}
for k,v in dict.items():
    for i in lis:
        if i==k:
            n[k] = v

Output:

n = {'Date' : '2013-05-01', 'Product' : 'Toys', 'Price' : '$10'}

This works but I want to do it through generators - can someone help me do that?

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6  
Don't call your dict dict it will shadow the dict in Python, use d instead. –  Inbar Rose Mar 13 '13 at 12:29
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2 Answers

up vote 7 down vote accepted

Treat lis as a set instead, so you can use dictionary views and an intersection:

# python 2.7:
n = {k: d[k] for k in d.viewkeys() & set(lis)}

# python 3:
n = {k: d[k] for k in d.keys() & set(lis)}

Or you could use a simple dict comprehension with a in test against d:

# python 2.6 or older:
n = dict((k, d[k]) for k in lis if k in d)

# python 2.7 and up:
n = {k: d[k] for k in lis if k in d}

This presumes that not all values in lis are going to be in d; the if k in d test can be dropped if they are always going to be present.

For your specific case, the second form is quite a lot faster:

>>> from timeit import timeit
>>> timeit("{k: d[k] for k in d.viewkeys() & s}", 'from __main__ import d, lis; s=set(lis)')
2.156520128250122
>>> timeit("{k: d[k] for k in lis if k in d}", 'from __main__ import d, lis')
0.9401540756225586
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1  
Wouldn't {k: d[k] for k in list if k in d} be more efficient than {k: v for k, v in d.items() if k in lis}? That way the in check is always done against the dict (amortized O(1)) instead of the list (O(n)) –  Claudiu Mar 13 '13 at 12:38
    
@Claudiu: indeed, that might work better. Updating. –  Martijn Pieters Mar 13 '13 at 12:39
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filtered_dict = dict((k, original_dict[k]) for k in lis if k in original_dict)

Or if you have 2.7+:

filtered_dict = {k: original_dict[k] for k in lis if k in original_dict}

If you want to use a generator:

item_generator = ((k, original_dict[k]) for k in lis if k in original_dict)

The generator will yield (key, value) pairs.

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