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I'm trying to understand how the any() and all() python built in functions work . I'm trying to compare the tuples so that if any value was different the it would return True and if they were all the same it would return False How are they working in this case to return [False, False, False] ?

d is from defaultdict(list)

print d['Drd2']
# [[1, 5, 0], [1, 6, 0]]
print list(zip(*d['Drd2']))
# [(1, 1), (5, 6), (0, 0)]
print [any(x) and not all(x) for x in zip(*d['Drd2'])]
#[False, False, False]

to my knowledge, this should output

#[False, True, False]

since (1,1) are the same, (5,6) are different, and (0,0) are the same .

Why is it saying False for all tuples ?

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all([5,6]) is true .... all([5,0]) is not true , any([5,0]) is true, any([0,0]) is false –  Joran Beasley Oct 15 '13 at 19:33
4  
Why do you think any(x) and not all(x) will return True when the two items are different and False when they are the same? –  kindall Oct 15 '13 at 19:34
    
[x[0]==x[1] for x in ... –  hpaulj Oct 15 '13 at 19:36
    
>>> help(any) and >>> help(all) –  Wayne Werner Oct 15 '13 at 19:36
    
ok i see, if there is a 0 in all then it will return false and if there is at least 1 non-zero in any then it will return True . i've never seen these functions before until the other day and i have been trying to figure out how they work in this line of code but the documentation is confusing and i couldn't find much about it where i could apply it to this situation –  draconisthe0ry Oct 15 '13 at 19:42

2 Answers 2

up vote 4 down vote accepted

The code in question you're asking about comes from my answer given here. It was intended to solve the problem of comparing multiple bit arrays - i.e. collections of 1 and 0.

any and all are useful when you can rely on the "truthiness" of values - i.e. their value in a boolean context. 1 is True and 0 is False, a convenience which that answer leveraged. 5 happens to also be True, so when you mix that into your possible inputs... well. Doesn't work.

You could instead do something like this:

[len(set(x)) == 1 for x in zip(*d['Drd2'])]

It lacks the aesthetics of the previous answer (I really liked the look of any(x) and not all(x)), but it gets the job done.

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wow that is a really good idea. since a set doesn't include duplicates within a list. touche sir . . btw any() and all() do look cool and now i know how to use them . i've never heard of them until i reviewed the answer . thank you for your help @roippi –  draconisthe0ry Oct 15 '13 at 20:03

You can roughly think of any and all as logical OR and AND operators, respectively.

any

any will return True when atleast one of the values is Truthy. Read about Truth Value Testing.

all

all will return True only when all the elements are Truthy.

Truth table

+---------------------+---------+---------+
|                     |   any   |   all   |
+---------------------+---------+---------+
| All Truthy values   |  True   |  True   |
| All Falsy values    |  False  |  False  |
| Atleast one Truthy  |  True   |  False  |
| Atleast one Falsy   |  True   |  False  |
+---------------------+---------+---------+

So, if we look at your code, you do

any(x) and not all(x)

which makes sure that, atleast one of the values is Truthy but not all of them. That is why it is returning [False, False, False]. If you really wanted to check if both the numbers are not the same,

print [x[0] != x[1] for x in zip(*d['Drd2'])]
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