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Possible Duplicate:
Get difference from 2 lists. Python

I'm still a beginner at this, could someone give me a simplified way of doing this? I have been trying on my own and I can't figure it out. list a and list b, the new list should have items that are only in list a. so

a = apple, carrot, lemon
b = pineapple, apple, tomato
new_list = carrot, lemon

I tried writing a code but every time it always returns the whole list a to me.

EDIT: Thank you everyone for all your suggestions, I now know how to do this in more than one way!

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marked as duplicate by Wooble, Felix Kling, Junuxx, Kemal Fadillah, Graviton Aug 16 '12 at 3:11

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

5 Answers 5

You can write this using a list comprehension which tells us quite literally which elements need to end up in new_list:

a = ['apple', 'carrot', 'lemon']
b = ['pineapple', 'apple', 'tomato']

# This gives us: new_list = ['carrot' , 'lemon']
new_list = [fruit for fruit in a if fruit not in b]

Or, using a for loop:

new_list = []
for fruit in a:
    if fruit not in b:

As you can see these approaches are quite similar which is why Python also has list comprehensions to easily construct lists.

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You can use a set:

# Assume a, b are Pyton lists

# Create sets of a,b
setA = set(a)
setB = set(b)

# Get new set with elements that are only in a but not in b
onlyInA = setA.difference(b)

As iurisilvio and mgilson pointed out, this approach only works if a and b do not contain duplicates, and if the order of the elements does not matter.

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I guess this is the way to go, but it changes the list if it has duplicated strings. – iurisilvio Jul 11 '12 at 14:23
@iurisilvio: You are right. This approach works only if a and b only contain unique entries. In that case it would make even more sense to use a set for a,b anyways. But then this is probably the fastest approach. – Michael Schlottke-Lakemper Jul 11 '12 at 14:30
It also doesn't work if the order of the items matters, but that might not be the case here (+1 from me) – mgilson Jul 11 '12 at 14:33

Would this work for you?

a = ["apple", "carrot", "lemon"]
b = ["pineapple", "apple", "tomato"]

new_list = []
for v in a:
    if v not in b:

print new_list

Or, more concisely:

new_list = filter(lambda v: v not in b, a)
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How about using sets (or the built in set since Sets was deprecated in 2.6)?

from sets import Set
a = Set(['apple', 'carrot', 'lemon'])
b = Set(['pineapple','apple','tomato'])
new_set =  a.difference(b)
print new_set

gives the output

Set(['carrot', 'lemon'])
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Why not use the builtin set? – mgilson Jul 11 '12 at 14:27
I got that from the example in the python docs but i'm not sure why they did it that way, any ideas? – StuGrey Jul 11 '12 at 14:32
sets is deprecated since Python v2.6 (see – Michael Schlottke-Lakemper Jul 11 '12 at 14:33
I think the sets module was around before the builtin set. Now it's mostly left in there for backwards compatability. – mgilson Jul 11 '12 at 14:34

Is this what you want?

a = ["apple", "carrot", "lemon"]
b = ["pineapple", "apple", "tomato"]

new_list = [x for x in a if (x not in b)]

print new_list
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