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I am trying to find an easy way to do this:

list1 = ['little','blue','widget']
list2 = ['there','is','a','little','blue','cup','on','the','table']

I want to get common elements of the two lists, with list1's order untouched, so this result is expected.

list3 = ['little','blue']

I am using

list3 = list(set(list1)&set(list2))

however, this only returns list3 = ['blue', 'little'], obviously, set() just ignore the order.

Any help will be appreciated!

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4 Answers 4

up vote 1 down vote accepted

You were almost there, just sort list3 according to list1

list1 = ['little','blue','widget']
list2 = ['there','is','a','little','blue','cup','on','the','table']

list3 = set(list1)&set(list2) # we don't need to list3 to actually be a list

list4 = sorted(list3, key = lambda k : list1.index(k))

Result:

>>> list4
['little', 'blue']
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Using list comprehension:

>>> list1 = ['little','blue','widget']
>>> list2 = ['there','is','a','little','blue','cup','on','the','table']
>>> s = set(list2)
>>> list3 = [x for x in list1 if x in s]
>>> list3
['little', 'blue']
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Are you converting list2 to a set first because sets are faster to search, or is there another reason? –  Brionius Aug 16 '13 at 1:38
1  
@Brionius, Converting list2 for the search speed. No other reason. –  falsetru Aug 16 '13 at 1:41
    
What if list1 = ['little','blue','widget', 'little']? Then your method would produce ['little', 'blue', 'little']. –  Akavall Aug 17 '13 at 2:09
    
@Akavall, If you want ['little', 'blue'], use [x for x in OrderedDict.fromkeys(list1) if x in s] instead. –  falsetru Aug 17 '13 at 3:01

This does what your asking for using python 2.7, not particularly elegant but it does answer your question.

list1 = ['little','blue','widget']
list2 = ['there','is','a','little','blue','cup','on','the','table']
list3 = []
for l1 in list1:
    for l2 in list2:
        if l2 == l1:
            list3.append(l2)

print list3  # ['little', 'blue']
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Here's an implementation using filter:

list1 = ['little','blue','widget']
list2 = ['there','is','a','little','blue','cup','on','the','table']
set2 = set(list2)
f = lambda x:x in set2

list3 = filter(f, list1)
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Just for the record, the list comprehension method is about 70% faster than the filter method. –  Brionius Aug 16 '13 at 1:51

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