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I have a list of lists in Python. As illustrated below, I want to check if one of the sublists contains an item. The following attempt fails. Does anyone know of a simple way -- without me writing my own for loop?

>>> a = [[1,2],[3,4],[5,6],7,8,9]
>>> 2 in a

I was hoping for True but the return was False

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This is a variation on the question of how to flatten a list. –  Blckknght Dec 5 '12 at 19:08

3 Answers 3

up vote 5 down vote accepted
>>> a = [[1,2],[3,4],[5,6],7,8,9]
>>> any(2 in i for i in a)
True
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I don't think there's any way of doing the test without a loop of some kind.

Here's a function that uses a straightforward for loop to explicitly check for an object within a sublist:

def sublist_contains(lst, obj):
    for item in lst:
        try:
            if obj in item:
                return True
        except TypeError:
            pass
    return False

Of course, that doesn't test if the object is in the top level list, nor will it work if there is more than one level of nesting. Here's a more general solution using recursion, which puts the loop in a generator expression that's passed to the built-in function any:

def nested_contains(lst, obj):
    return any(item == obj or
               isinstance(item, list) and nested_contains(item, obj)
               for item in lst)
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Simple way to do this is:

  a = [[1,2],[3,4],[5,6],7,8,9]
  result = [2 in i for i in a]

  True in result --> True
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