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Say I have four 32-bit numbers, defined so that their bits don't overlap, i.e.

unsigned long int num0 = 0xFF000000;
unsigned long int num1 = 0x00FF0000;
unsigned long int num2 = 0x0000FF00;
unsigned long int num3 = 0x000000FF;

Where in each number one could have anything in the place of the FFs.

Am I right in saying that addition and bitwise or would always produce the same output for such sort of numbers?

Thanks!

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1  
As a third alternative, you could also use exclusive-or, that is, the ^ operator. –  FredOverflow Sep 7 '11 at 14:15
2  
But note that if you want to combine such numbers into one it is good style to use |. –  starblue Sep 7 '11 at 16:18

6 Answers 6

up vote 11 down vote accepted

as long as for two numbers num1 and num2 applies num1 & num2 == 0, then follows:

num1 + num2 == num1 | num2

the reason for this is, that addition is basically a bitwise XOR, plus carry bit. But as long as there are no carry bits (num1 & num2 == 0) then addition boils down to bitwise XOR, which is (again because of num1 & num2 == 0) in this case logically equivalent to a bitwise OR

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wouldn't it be more accurate to say that addition is a bitwise XOR plus a carry? –  Evan Teran Sep 7 '11 at 13:51
    
well, yes. thanks for pointing this out. –  Andreas Grapentin Sep 7 '11 at 13:53

Yes, as (seen bitwise) 0+1 is the same as 0|1. The only difference is 1|1 (=1) vs. 1+1(=0b10), i.e. create a 0 and having overflow, affecting the bits to the left).

So in your case both are equivalent. But you should go to the safe side and choose the less error-prone one.

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No:

num3 + num3 => 0x000001FE

num3 | num3 => 0x000000FF

Of course, as long as you ensure that you only add things together where you know that they don't have the same bits set, you should be safe.

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Sorry, I forgot to implicitly exclude this case. –  Albus Dumbledore Sep 7 '11 at 14:10
    
And because you will forget it again next time (everyone does) always use | for logical expressions. - In contrast to when you are really calculating, i.e. in cases where, say, the decimal representation also makes sense. –  temple Dec 10 '13 at 12:43

As long as you're not doing something like num3 + num3, yes.

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Whenever the bitwise addition adds more than one 1 (either because the sources have them, or the carry from another place is 1 too), then a carry is produced and one place affects the other. As long as in an addition there is at most one 1 added, things are the same as bitwise or.

This can also be seen when we look at the adder circuits (http://en.wikipedia.org/wiki/Adder_%28electronics%29), where when no carry is produced, all elements taking part in the circuit are the "or" elements.

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Addition and bit-wise or would be the same as bit-wise or would include any bits in either, and normal addition would do exactly the same given the mutually exclusive nature of your bits.

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