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Is there a direct way how to turn a negative number to positive using bitwise operations in Actionscript 3? I just think I've read somewhere that it is possible and faster than using Math.abs() or multiplying by -1. Or am I wrong and it was a dream after day long learning about bytes and bitwise operations?

What I saw was that bitwise NOT almost does the trick:

// outputs: 449
trace( ~(-450) );

If anyone find this question and is interested - in 5 million iterations ~(x) + 1 is 50% faster than Math.abs(x).

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5 Answers 5

up vote 4 down vote accepted

You need to add one after taking the bitwise negation. This is a property of two's complement number system. It is not related to Actionscript (aside from the alleged performance difference).

So, (~(-450)+1) gives 450
and (~(450)+1) gives -450.

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Thank you for the link, didn't know about such "two's complement number" thing. –  Richards Jul 16 '11 at 18:43

Use the rule that says

~(x) = (-x)-1
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It probably goes without saying that simple algebra gets you to the formula you wanted, namely -x = ~x+1 but a good thing to add is that this trick only works for pure integers, and for the smallest possible integer, call it z, you actually get back z itself, because of the way integers are represented in what is called "twos complement." So make sure you are doing this for in-range integers only. –  Ray Toal Jul 16 '11 at 18:31

If two-complement is being used (usually the case), negation is complement then add 1:

-x == ~x + 1

Whether it's faster depends on what optimisations the compiler performs. When in doubt, test.

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+1 for the test suggestion and the remark about how this is complier dependent. –  Ray Toal Jul 16 '11 at 18:39

Negation is an operator all unto itself, the unary - operator. Using this is just as fast as using bitwise operations and saves you a lot of typing.

negativeX = -positiveX; // is the same as (~positiveX) + 1

No multiplication is performed.

If speed is your need, and you don't know if the number is negative or positive, the ternary operator ?: is faster than introducing the function-call overhead of Math.abs().

positiveX = unknownX < 0 ? -unknownX : unknownX;
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Try this:

var number:Number = 10;
//Makes a number
trace(number)
//Tells you the number BEFORE converting
number = number - number * 2;
//Converts number
// Takes number times 2 and subtracts it from original number
trace(number);
//Tells you the number AFTER converting

In the end, all you need is this:

var number:Number = 10;
number = number - number * 2;
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