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I'm trying to convert a number from an integer into an another integer which, if printed in hex, would look the same as the original integer.

For example:

Convert 20 to 32 (which is 0x20)

Convert 54 to 84 (which is 0x54)

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one small point - in hexadecimal, you have letters in your numbers, and these cannot be represented in an integer (until after conversion, that is). Do you need to convert a hex string to an int? (e.g. "20" to 32) –  jburns20 Feb 17 '12 at 1:14
2  
Is this homework? What have you tried so far? –  Ken White Feb 17 '12 at 1:15

6 Answers 6

up vote 15 down vote accepted
public static int convert(int n) {
  return Integer.valueOf(String.valueOf(n), 16);
}

public static void main(String[] args) {
  System.out.println(convert(20));  // 32
  System.out.println(convert(54));  // 84
}

That is, treat the original number as if it was in hexadecimal, and then convert to decimal.

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Converting from 4 bytes to a string, then from string to an int and then to hex? No, thanks. –  Ondra Žižka Jun 6 '13 at 19:32
2  
This solution is flawed. Try to run the following: Integer.valueOf(String.valueOf(-2115381772), 16) - this returns a NumberFormatException. –  Lonzak Oct 15 '13 at 7:19
    
You are awesome –  Anas Azeem Feb 21 at 6:40

The easiest way is to use Integer.toHexString(int)

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1  
The question was to convert from integer to integer, not integer to string. Please read the question again. –  Adam Nybäck Nov 1 '13 at 8:11
6  
That doesn't make sense though, you can't control the integer's internal representation. If you want something in hex, you're by definition asking about a human readable representation. –  sircodesalot Mar 6 at 15:45
int orig = 20;
int res = Integer.ParseInt(""+orig, 16);
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You could try something like this (the way you would do it on paper):

public static int solve(int x){
    int y=0;
    int i=0;

    while (x>0){
        y+=(x%10)*Math.pow(16,i);
        x/=10;
        i++;
    }
    return y;
}

public static void main(String args[]){
    System.out.println(solve(20));
    System.out.println(solve(54));
}

For the examples you have given this would calculate: 0*16^0+2*16^1=32 and 4*16^0+5*16^1=84

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String input = "20";
int output = Integer.parseInt(input, 16); // 32
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The following is optimized iff you only want to print the hexa representation of a positive integer.

It should be blazing fast as it uses only bit manipulation, the utf-8 values of ASCII chars and recursion to avoid reversing a StringBuilder at the end.

public static void hexa(int num) {
    int m = 0;
    if( (m = num >>> 4) != 0 ) {
        hexa( m );
    }
    System.out.print((char)((m=num & 0x0F)+(m<10 ? 48 : 55)));
}
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