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I have to define a procedure, union, that takes as inputs two lists. It should modify the first input list to be the set union of the two lists. I assume the first list is a set, that is, it contains no repeated elements.

I´ve tried this, and it works:

def union(a, b):
    for item in b:
        if item in a:

When I try to test it, this is the output:

a = [1,2,3] b = [2,4,6] union(a,b) print a

The output that I should receive is for the excercise: [1,2,3,4,6]

The output that I receive is: [1, 3, [2, 4, 6]]

How may I print the output in order to match the desired one? Or is it the same thing?

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3 Answers 3

why don't you use a set?

def union(a, b):
    return list(set(a + b))

this will not modify you list BUT set is not ordered, so you can't rely on order of you elements.

if you try to find an error in your code, you could modify it like this:

def union(a, b):
    for item in b:
        if item in a:

if you really want to add new items to a, you can use this:

def union(a, b):
    a.extend([x for x in b if x not in a])
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Thanks! Its a for excercise :). But even trying to solve it using set(), I get that a=[1, 2, 3] and b=[2, 4, 6], it´s not the desired output. –  Rosamunda Jul 27 '13 at 13:33
Good stuff there. Can't you also just do list(set(a+b)) for your first case to return a list? –  Steven Moseley Jul 27 '13 at 13:34
thanks, missed that! –  Roman Pekar Jul 27 '13 at 13:36
a = [1,2,3]
b = [2,4,6]

def union(a, b):
    set_a = set(a)
    for ele in b:
        if ele not in set_a:
    return a


>>> union(a,b)
[1, 2, 3, 4, 6]

Note that when you use remove, the first element in the list is removed:

>>> a = [1,2,3,2,4,6]
>>> a.remove(2)
>>> a
[1, 3, 2, 4, 6]

Therefore, to get your desired outcome we must keep a as it is, and add to it elements from b that are not it a.

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Try this simple way:

def union(a, b):
    return list(set(a + b))
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