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I'm looking for a method that given 2 floats A and B return the value (A or B) with lower absolute value.

Initially I tried

Math.min(Math.abs(A),Math.abs(B)); 

but it is not correct because for example for (-9,-2) return +2 and the return value I'm looking for is -2.

Is there some native/built-in for that?

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1  
Uh, why would that return 999? –  Dennis Meng Aug 9 '12 at 17:05
    
The example was incorrect,updated –  Addev Aug 9 '12 at 17:07
2  
-2 is the correct result –  Sean Owen Aug 9 '12 at 17:07
    
Please look up what Math.abs does. If you just pass in A and B, you would have gotten -2. –  Alex W Aug 9 '12 at 17:10
    
@Baz I think what Sean meant was that OP wanted -2. –  Dennis Meng Aug 9 '12 at 17:10

5 Answers 5

up vote 8 down vote accepted
Math.abs(A) < Math.abs(B) ? A : B;
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3  
(In other words, there's probably no built-in, and it's just easier to implement yourself) –  Dennis Meng Aug 9 '12 at 17:08

I don't approve of using upper-case for local variables, but

 (Math.abs(A) < Math.abs(B)) ? A : B
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Math.min() returns the lowest of the two parameters passed into it. In the example above, you're providing it with arguments of 999 and 2 (The absolute values generated by Math.abs().

You could replace the Math.min() call with something like:

Math.abs(A) < Math.abs(B) ? A : B;
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val = (Math.abs(A) < Math.abs(B)) ? A : B; 
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Auuggh, 15 seconds ahead of me... –  Malvolio Aug 9 '12 at 17:10

Well, it's a correct behaviour.

You're getting the absolute value of both numbers inside the Min funcion which returns the minimum value of both. In your case that's 2 because you're comparing 9 and 2.

EDIT

AFAIK There's not built-in way to do what you want to do. As others have suggested, you have to make the comparation yourself with something like:

Math.abs(A) < Math.abs(B) ? A : B

Just remember to be careful with the types you compare and the result.

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I know its correct behaviour, I'm asking for a built-in way of getting my initial goal –  Addev Aug 9 '12 at 17:09

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