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I cannot figure out what the difference between the following pieces of code is:

int t = __double2int_rd(pos.x/params.cellSize.x*2.0)&1;
if( t ==0) {...}

and

if(__double2int_rd(pos.x/params.cellSize.x*2.0)&1 == 0) {...}

The second option never returns true, while the first behaves as expected.

Does anyone have any ideas?

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1 Answer 1

up vote 2 down vote accepted

The second expression first evaluates (1==0) whose result is always false. Then ANDs it with the result of the function __double2int_rd.

Therefore it actually evaluates:

if(__double2int_rd(pos.x/params.cellSize.x*2.0) & 0)

Which would always be false.

The equivalent of the first expression would be:

if((__double2int_rd(pos.x/params.cellSize.x*2.0) & 1) == 0)

Mind the brackets. Its a good programming practice to add brackets if you are not sure about the order of evaluation of expressions.

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Thank you! It absolutely didn't occur to me that == has higher precedence than &. –  user1833446 Nov 18 '12 at 16:57
    
First time asking on stack overflow - sorry about the delay in accepting. I asked this Q because I was dead scared that intrinsic functions might be behaving in some odd manner. Of course it makes sense that logical AND and bitwise AND are exactly the same thing thing - silly of me! –  user1833446 Nov 20 '12 at 15:12

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