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How to remove items from a list if it is in another list while keeping the duplicate?

I've succeeded by doing this but is there a faster way?

x = [1,2,3,4,7,7,5,6,7,8,8]
y = [1,4,5,6,8,9]
z = []
for i in x:
  if i not in y:
   z.append(i)
print z

Correct output:

[2, 3, 7, 7, 7]

Alternatively, a list comprehension also works but are these the only way?

x = [1,2,3,4,7,7,5,6,7,8,8]
y = [1,4,5,6,8,9]
z = [i for i in x if not in y]

Although using set is a lot faster but it doesn't keep the duplicate:

x = [1,2,3,4,7,7,5,6,7,8,8]
y = [1,4,5,6,8,9]
print list(set(x) - set(y))

The set subtraction gave the output that loses the duplicate:

[2, 3, 7]
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you could use a single set for y. –  sloth Feb 22 '13 at 11:03
1  
Dominic means you can put set_y = set(y) outside the list comprehension so you don't create the set over and over –  gnibbler Feb 22 '13 at 11:06
1  
There's also itertools.ifilterfalse(set(y).__contains__, x). It should be fairly fast. –  Blender Feb 22 '13 at 11:06
    
set_y = set(y); z = [v for v in x if v not in set_y] shouldn't be much slower. –  J.F. Sebastian Feb 22 '13 at 11:46

1 Answer 1

up vote 2 down vote accepted

If order isn't important

>>> x = [1,2,3,4,7,7,5,6,7,8,8]
>>> y = [1,4,5,6,8,9]
>>> from collections import Counter
>>> count=Counter(x)
>>> for i in y:
...     del count[i]
... 
>>> list(count.elements())
[2, 3, 7, 7, 7]
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