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Lets say I have a list a=[1,2,3] And I want to know if at least one of the numbers in it exist in another list, like this one: b=[4,5,6,7,8,1] In other words, I want to know if 1,2 or 3 exist(s) in list b. I now I could do something like

def func(a, b):
    for i in a:
       if i in b:
          return True
    return False

But is there possibly a way to put that in one line to make things tidy?

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4  
possible duplicate of Python Check if one of the following items is in a list –  Felix Kling May 19 '12 at 19:37

6 Answers 6

up vote 17 down vote accepted

There are many ways to do this. The most direct translation is:

any_in = lambda a, b: any(i in b for i in a)

You could also use various things involving sets, such as:

any_in = lambda a, b: bool(set(a).intersection(b))

(which depends on the elements of a being hashable, but if that's true, it'll probably be faster to make a set of the larger out of a and b for either of these approaches).

Edit: isdisjoint is better than intersection for Python 2.6 and above, as noted by various people below. Glad to learn about that. :)

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Python 2.6 and above:

def func(a, b):
  return not set(a).isdisjoint(b)

For 2.4 or 2.5:

def func(a, b):
  return len(set(a).intersection(b)) != 0

For 2.3 and below:

sudo apt-get update
sudo apt-get upgrade

;)

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+1 For a fast answer that scales nicely. –  Raymond Hettinger May 19 '12 at 19:45
    
I appreciate the simplicity here. Never met a lambda that didn't slow down reading the program... –  mlissner May 7 at 18:15

This is a set problem, not a list problem. With the right data type, the answer is often immediately obvious :-)

def func(a, b):
    return not set(a).isdisjoint(b)
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a simple one-liner would be:

any(i in b for i in a)
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By converting your lists to sets you can perform set operations on them. If the intersection is larger than 0, you have at least one element matching:

len(set(a) & set(b)) > 0
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This should work.

def func(a, b):
    return any([i in b for i in a])
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