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The Python standard library defines an any() function that

Return True if any element of the iterable is true. If the iterable is empty, return False.

It checks only if the elements evaluate to True. What I want it to be able so specify a callback to tell if an element fits the bill like:

any([1, 2, 'joe'], lambda e: isinstance(e, int) and e > 0)
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If you want, you can always use any(map(lambda:..., [...])) but using a generator comprehension is more idiomatic. –  Thomas Ahle Dec 5 '13 at 10:11
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6 Answers 6

up vote 52 down vote accepted

How about:

>>> any(isinstance(e, int) and e > 0 for e in [1,2,'joe'])
True

It also works with all() of course:

>>> all(isinstance(e, int) and e > 0 for e in [1,2,'joe'])
False
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Yo should use a "generator expression" - that is, a language construct that can consume iterators and apply filter and expressions on then on a single line:

For example (i ** 2 for i in xrange(10)) is a generator for the square of the first 10 natural numbers (0 to 9)

They also allow an "if" clause to filter the itens on the "for" clause, so for your example you can use:

any (e for e in [1, 2, 'joe'] if isinstance(e, int) and e > 0)
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Thanks for calling out the generator since I think that is what makes it the most like a lambda version (in terms of not having to process the entire list if an earlier item is false). Also, nice to know we can leave off parens of a generator if it is the only parameter. Somehow missed that.. –  ShawnFumo Nov 8 '13 at 20:23
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any function returns True when any condition is True.

>>> any(isinstance(e, int) and e > 0 for e in [0 ,0, 1])
True # Returns True because 1 is greater than 0.


>>> any(isinstance(e, int) and e > 0 for e in [0 ,0, 0])
False # Returns False because not a single condition is True.

Actually,the concept of any function is brought from Lisp or you can say from the function programming approach. There is another function which is just opposite to it is all

>>> all(isinstance(e, int) and e > 0 for e in [1, 33, 22])
True # Returns True when all the condition satisfies.

>>> all(isinstance(e, int) and e > 0 for e in [1, 0, 1])
False # Returns False when a single condition fails.

These two functions are really cool when used properly.

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filter can work, plus it returns you the matching elements

>>> filter(lambda e: isinstance(e, int) and e > 0, [1,2,'joe'])
[1, 2]
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While this is workable (since an empty list is False), it has several disadvantages over using any. First, it will iterate over the entire list (even if the first element is False) and it will copy the True items over to a new list, increasing time and memory. Lastly, if all you're doing is checking if any of the items match something, it makes your intentions less clear. If you need to use only the matching items immediately after, I agree it could be useful (consider itertools.ifilter depending on how you're using the results). –  ShawnFumo Nov 8 '13 at 20:48
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While the others gave good Pythonic answers (I'd just use the accepted answer in most cases), I just wanted to point out how easy it is to make your own utility function to do this yourself if you really prefer it:

def any_lambda(iterable, function):
  return any(function(i) for i in iterable)

In [1]: any_lambda([1, 2, 'joe'], lambda e: isinstance(e, int) and e > 0
Out[1]: True
In [2]: any_lambda([-1, '2', 'joe'], lambda e: isinstance(e, int) and e > 0)
Out[2]: False

I think I'd at least define it with the function parameter first though, since that'd more closely match existing built-in functions like map() and filter():

def any_lambda(function, iterable):
  return any(function(i) for i in iterable)
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Slight improvement to Antoine P's answer

>>> any(type(e) is int for e in [1,2,'joe'])
True

For all()

>>> all(type(e) is int for e in [1,2,'joe'])
False
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