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I am implementing a pow function in Java, and I am wondering how do we deal with Integer.MIN_VALUE as a exponent ? Do we just treat it as a special case ?

Because I tried to compare the result with the standard Java.lang.Math API and I get a couple different result. The following is the list of comparison

//this will print "1.0 vs 0.0"
System.out.println(pow(2,Integer.MIN_VALUE) + " vs " + Math.pow(2,Integer.MIN_VALUE));

//this will print "1.0 vs 1.0"
System.out.println(pow(1,Integer.MIN_VALUE) + " vs " + Math.pow(1,Integer.MIN_VALUE));

public double pow(double base, int exp){
     double result = 1.0;
     boolean pos = false;

     if(exp == 0) return result;
     if(exp > 0){
         pos = true;
         exp *= -1;
     }

     while(exp > 0){
        if((exp & 1) == 1){
           result *= base;
        }
        base *= base;
        exp /= 2;
     }
     if(!pos){
        result = 1/result;
     }
     return result;
}

So I am wondering if Integer.MIN_VALUE is a special case where I have to have a if statement for checking it.

  if(exp == Integer.MIN_VALUE && base > 1) return 0.0;
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1  
It really depends on the implementation that you've commented out... –  Louis Wasserman Dec 10 '12 at 22:20
    
It just put the code back –  peter Dec 10 '12 at 22:23
1  
(-1)*Integer.MIN_VALUE == Integer.MIN_VALUE. So in that case, your while loop doesn't run. –  Daniel Fischer Dec 10 '12 at 22:25

3 Answers 3

Based on this line:

exp *= -1;

it seems that it might have to be a special case. There are certainly ways to implement this without that special case, but because -1 * Integer.MIN_VALUE cannot be stored in an int, you will get a bug if you do not handle it separately.

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So will it help if I assign and cast it to a long in that case ? –  peter Dec 10 '12 at 22:27
    
yes, that could help. –  Joe K Dec 10 '12 at 22:38

Yeah, you've got the problem that Integer.MIN_VALUE * -1 == Integer.MIN_VALUE. You could either special-case it, or you could deal with it another way. Indeed, one possible solution would be to make exp negative when it's positive, instead of the other way around; you'd just use -exp instead of exp.

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If making -exp then we can't use bit shifting correct ? since ext >>= 1 will eventually end up with -1 not 0, so we have to use exp /= 2. –  peter Dec 11 '12 at 3:18
    
You can use >>> instead of >>, which will work. –  Louis Wasserman Dec 11 '12 at 6:36
    
I thought with the Unsigned right shift that the negative exp will become positive, and it didn't work as I tried it out –  peter Dec 11 '12 at 18:56
    
You can make it work, it just takes some thinking. I don't think I should just give you the answer, though. –  Louis Wasserman Dec 11 '12 at 18:59
    
Is it that you do a flip exp = ~exp+1 and then do a unsigned right shift and then do a flip again exp = ~exp+1 ? –  peter Dec 11 '12 at 19:30

On my system I have

-2147483648
2147483647

For Integer.MIN_VALUE and Integer.MAX_VALUE respectively. So you should see the problem in the line

exp *= -1;
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Every system will have those values. It's platform independent. –  erickson Dec 10 '12 at 22:36

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