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With python, I would like to run a test over an entire list, and, if all the statements are true for each item in the list, take a certain action.

Pseudo-code: If "test involving x" is true for every x in "list", then do "this".

It seems like there should be a simple way to do this.

What syntax should I use in python?

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You should accept an answer. –  Omnifarious Dec 5 '10 at 20:44
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6 Answers

up vote 25 down vote accepted

Use all(). It takes an iterable as an argument and return True if all entries evaluate to True. Example:

if all((3, True, "abc")):
    print "Yes!"

You will probably need some kind of generator expression, like

if all(x > 3 for x in lst):
    do_stuff()
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Perfect! Thanks! Using it to solve some project euler problems. Finding the 10001st prime is much easier with the all statement! –  Zack Maril Dec 5 '10 at 4:55
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>>> x = [True, False, True, False]
>>> all(x)
False

all() returns True if all the elements in the list are True

Similarly, any() will return True if any element is true.

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thanks for the any() tip, just what I needed ! :) –  Guillaume Gendre Nov 14 '12 at 11:02
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Example (test all elements are greater than 0)

if all(x > 0 for x in list_of_xs):
    do_something()

Above originally used a list comprehension (if all([x > 0 for x in list_of_xs]): ) which as pointed out by delnan (Thanks) a generator expression would be faster as the generator expression terminates at the first False, while this expression applies the comparison to all elements of the list.

However, be careful with generator expression like:

all(x > 0 for x in list_of_xs)

If you are using pylab (launch ipython as 'ipython -pylab'), the all function is replaced with numpy.all which doesn't process generator expressions properly.

all([x>0 for x in [3,-1,5]]) ## False
numpy.all([x>0 for x in [3,-1,5]]) ## False
all(x>0 for x in [3,-1,5]) ## False
numpy.all(x>0 for x in [3,-1,5]) ## True 
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3  
That should be a generator expression!! Since generators calculate the values on-demand, (1) you don't waste any memory on a whole list and (2) you never computed the values after the first falsy, since all aborts there and doesn't consume the generator any further. –  delnan Dec 3 '10 at 18:45
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I believe you want the all() method:

$ python
>>> help(all)
Help on built-in function all in module __builtin__:

all(...)
    all(iterable) -> bool

    Return True if bool(x) is True for all values x in the iterable.
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if reduce(lambda x, y: x and involve(y), yourlist, True):
   certain_action()

involve is the action you want to involve for each element in the list, yourlist is your original list, certain_action is the action you want to perform if all the statements are true.

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What is invovle? Does this exist in Python? –  Sven Marnach Dec 3 '10 at 18:37
    
@Sven just from the OP: "involve all", "certain_action". –  khachik Dec 3 '10 at 18:40
    
Ah, I see. Thanks, +1! –  Sven Marnach Dec 3 '10 at 18:43
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all() alone doesn't work well if you need an extra map() phase.

see below:

all((x==0 for x in xrange(1000))

and:

all([x==0 for x in xrange(1000)])

the 2nd example will perform 1000 compare even the 2nd compare render the whole result false.

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