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Is there a way to short circuit an all() statement in Python?

So something like this:

return all([x != 0, 10 / x == 2, True, False, 7])

won't return an error if x is 0?

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4 Answers 4

up vote 5 down vote accepted

That doesn't work because the list (that is, all its items) is evaluated before all is even called. You best option in this particular case is something like this:

return x != 0 and 10 / x == 2 and True and False and 7

I assume you already know this, so I'll provide you with another, more general solution that can also be applied if the list items are not hardcoded:

return all(f() for f in [lambda: x != 0, lambda: 10 / x == 2, 
                         lambda: True, lambda: False, lambda: 7])

That way the expressions will only be evaluated within the short-circuit all.

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If your code were in a generator, then you could also short circuit stuff this way:

def test(x):
    yield x != 0
    yield 10/x == 2
    yield True
    yield False
    yield 7

all(test(9))
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This isn't going to work exactly as you envision it, because Python evaluates all its function arguments before passing the resulting values to the function. In other words, it evaluates 10 / x == 2 down to a single value before calling all. (Contrast this with Mathematica, which will pass the unevaluated condition 10 / x == 2 and will do exactly what you want.)

The simplest thing to do, given that you know you're going to be passing this list to all, is to just use the short-circuiting capabilities of Python's and operator:

return all([x != 0 and 10 / x == 2, True, False, 7])

Alternatively you could rewrite the mathematical condition so that it doesn't divide by zero,

return all([x != 0, 10 == 2 * x, True, False, 7])

(watch out for floating-point division issues).

If you really want to emulate Mathematica's behavior of passing an unevaluated condition, though, the only way I can think of to do that is to pass a callable object which evaluates the condition when you call it. For example, you could convert all your list elements to lambda functions:

return all(f() for f in [lambda: x != 0, lambda: 10 / x == 2,
                     lambda: True, lambda: False, lambda: 7])

If you don't want to convert everything to a function, I guess you could come up with some sort of wrapper that will only call the things that are actually callable:

return all(f() if callable(f) else f in [x != 0, lambda: 10 / x == 2,
                                                  True, False, 7])

but honestly, that seems like a mess (unless you are writing a CAS in Python :-P).

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Nice trick in the second example :) –  Niklas B. Jan 27 '12 at 22:57
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yes. If you want it to be false for x==0:

all([x != 0, x!=0 and 10 / x == 2, True, False, 7])

just make sure each value is allowed for any value x.

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