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I am trying to find a way to reverse a number without

  1. Converting it to a string to find the length
  2. Reversing the string and parsing it back
  3. Running a separate loop to compute the Length

i am currently doing it this way

 public static int getReverse(int num){
        int revnum =0;
        for( int i = Integer.toString(num).length() - 1 ; num>0 ; i-- ){
            revnum += num % 10 * Math.pow( 10 , i );
            num /= 10;
        }
        return revnum;        
    }

But I would Like to implement the above 3 conditions.

I am looking for a way , possibly using the bit wise shift operators or some other kind of bitwise operation.

Is it possible ? If so how ?

PS : If 1234 is given as input it should return 4321. I will only be reversing Integers and Longs

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2  
How would you reverse 10000? Only 1? You will loose the "zeros".. –  dacwe Sep 19 '11 at 14:56
    
You are unlikely to find a good way to reverse the decimal representation with bitwise operations. –  Oli Charlesworth Sep 19 '11 at 15:00
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2 Answers 2

up vote 4 down vote accepted

How about:

int revnum = 0;
while (num != 0) {
  revnum = revnum * 10 + (num % 10);
  num /= 10;
}
return revnum;

The code expects a non-negative input.

This may or may not matter to you, but it's worth noting that getReverse(getReverse(x)) does not necessarily equal x as it won't preserve trailing zeroes.

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wow! We think the solution in the same way. –  Ivan Sep 19 '11 at 15:02
    
Its ok If it doesn't reverse negative numbers , I'll just convert it into positive and reverse it and then convert it back to negative –  mataug Sep 19 '11 at 15:04
    
I guess getReverse(getReverse(x)) won't be much of a problem now , but if it does I might have to rethink what I am using this function for. I think I will be getting the same problem even with the previous implementation –  mataug Sep 19 '11 at 15:17
    
@gautham5678: That's correct: this is a feature of the function's signature (int->int) rather than of this implementation. –  NPE Sep 19 '11 at 15:18
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How about this? It handles negative numbers as well.

public int getReverse(int num){
   int rst=0;
   int sign;
   sign=num>0?1:-1;

   num*=sign;
   while(num>0){
      int lastNum = num%10;
      rst=rst*10+lastNum
      num=num/10;
   }
   return rst*sign;
}
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