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I've been searching all over but wasn't able to fig this thing out.

I'm from a Java background, if that helps, trying to learn python.

a = [
    (i,j,k) for (i,j,k) in [
        (i,j,k) for i  in {-4,-2,1,2,5,0}
                    for j in {-4,-2,1,2,5,0}
                            for k in {-4,-2,1,2,5,0}  if  (i+j+k > 0 & (i!=0 & j!=0 & k!=0))
        ]
]

Statement is : get all the tuples whose sum is zero, but none of them should have 0 in it.

Always, this results consists of all tuples. :(

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2  
What's the reason for the outer comprehension? It doesn't actually do anything useful, but you must have had a reason for writing it. –  user2357112 Jul 10 '13 at 7:39
    
True, first time i tried without it.. But it still didn't work.. hence I saw if it works with it.. –  abhididdigi Jul 10 '13 at 8:18

5 Answers 5

up vote 9 down vote accepted

You are using the wrong operator. You want boolean and; & is a bitwise operator:

[(i,j,k) for (i,j,k) in [(i,j,k) for i  in {-4,-2,1,2,5,0} for j in {-4,-2,1,2,5,0} for k in {-4,-2,1,2,5,0}  if  (i+j+k > 0 and (i!=0 and j!=0 and k!=0)) ]  ]

You can eliminate that nested list comprehension, it is redundant:

[(i,j,k) for i  in {-4,-2,1,2,5,0} for j in {-4,-2,1,2,5,0} for k in {-4,-2,1,2,5,0}  if  (i+j+k > 0 and (i!=0 and j!=0 and k!=0))]

Next, use the itertools.product() function to generate all combinations instead of nested loops, and all() to test if all values are non-zero:

from itertools import product
[t for t in product({-4,-2,1,2,5,0}, repeat=3) if sum(t) > 0 and all(t)]

but you may as well omit the 0 from the set and save yourself the all() test:

from itertools import product
[t for t in product({-4,-2,1,2,5}, repeat=3) if sum(t) > 0]

and perhaps you wanted to correct that test to equals to 0:

from itertools import product
[t for t in product({-4,-2,1,2,5}, repeat=3) if sum(t) == 0]

Result:

>>> [t for t in product({-4,-2,1,2,5}, repeat=3) if sum(t) == 0]
[(1, 1, -2), (1, -2, 1), (2, 2, -4), (2, -4, 2), (-4, 2, 2), (-2, 1, 1)]
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Thank you, I did try to use && but now I know i should've used and –  abhididdigi Jul 10 '13 at 8:19

In python, & is a bit operator. For your need, you should use and.

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Besides, the different precedence is a big problem here. –  glglgl Jul 10 '13 at 7:44

As others already said, you use the wrong operator.

That wouldn't be a problem per se, as you only combine (or, rather, try to combine) boolean values.

But the & and the and operator have different precedence.

(i+j+k > 0 and (i!=0 and j!=0 and k!=0))

would be right, as and has a higher precedence than > and !=.

However,

(i+j+k > 0 & (i!=0 & j!=0 & k!=0))

turns out to be

(i+j+k > (0 & (i != (0 & j) != (0 & k) !=0)))

which makes the right hand evaluate to 0, and the expression i + j + k > 0 seems to be true for nearly all your data.

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Thanks to you for taking time to explain this difference. –  abhididdigi Jul 10 '13 at 8:25

Using itertools.product and sum():

from itertools import product

list1 = (-4,-2,1,2,5,0)
list2 = (-4,-2,1,2,5,0)

print [ couple for couple in product(list1, list2) if not sum(couple) ]
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Was not fast enough, can can use repeat argument of itertools.product as shown by @Martijn –  geertjanvdk Jul 10 '13 at 7:47

The other guys are addressing the wrong problem. Yes, and is logical and and & is bitwise and, but since the operands are booleans, it happens to not actually affect your code. Whoops; that actually does affect your code, since the precedence is different. Besides that, though, you have a typo:

i+j+k > 0

should be

i + j + k == 0

if you want the tuples whose sum is 0.

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Yea, Thank you for your help Changed it - My question was actually around the operators.. –  abhididdigi Jul 10 '13 at 8:22

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