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I am implementing the SHA-2 algorithm in Java. However, I have run into a problem. I need to append two hex values into one, but I am unable to do so. I tried appending the two as a string and using Long.parseLong(appendedString) but that causes a number format exception. Is there anyway I can do this in Java? If not is there anyway to do this in C and I'll just implement it in C? Thanks for reading.

Here is the code:

    String temp = h[0] + "" + h[1]; //Where h[0] and h[1] are two hex values stored as Long
    //I also tried String temp = String.valueOf(h[0]) + String.valueOf(h[1]); but no dice
    Long appended = Long.parseLong(temp); //Number format exception here

When I say append I mean something like: 0x6a09e667 + 0xbb67ae85 = 0x6a09e667bb67ae85

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3  
Please write complete code. –  Bhavik Ambani May 14 '12 at 15:50
2  
if your string is like 0xDEA0xDBEEF this would explain the number format exception. –  Aif May 14 '12 at 15:52
1  
What do you mean by 'append'? –  Richard J. Ross III May 14 '12 at 15:52
    
As in, 0x6a09e667 + 0xbb67ae85 = 0x6a09e667bb67ae85 –  D347th May 14 '12 at 15:54
1  
Please write the string value of h[0] and h[1]. –  Bhavik Ambani May 14 '12 at 15:54

2 Answers 2

up vote 4 down vote accepted

I'm assuming your code looks something like this:

long hex1 = 0x6a09e667;
long hex2 = 0xbb67ae85;

and you want the output of 0x6a09e667bb67ae85.

You can do this with some bit-shifting, such as the following:

long result = hex2 | (hex1 << 32);
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1  
+1 Very good implementation. –  Bhavik Ambani May 14 '12 at 15:57
    
I'm getting this when I use that: -4942790177982912921 Is this because of how System.out.println() works? –  D347th May 14 '12 at 15:59
2  
@D347th yes. You would need to get println to print the hexadecimal value of result, which can probably be done via some google searching :) –  Richard J. Ross III May 14 '12 at 16:00
    
@D347th not possible. Long values only store up to 64 bits, instead, you would need a BigInt, which IIRC, is available for java. So use that & it's supported bit shift functions instead. And yes, you would need to increase the shift. –  Richard J. Ross III May 14 '12 at 16:05
    
Thank you very much! This works. –  D347th May 14 '12 at 16:08

0x6a09e667 + 0xbb67ae85 gives 0x6a09e6670xbb67ae85 which isn't valid. Try this code instead:

String temp = h[0] + h[1].substring( 2 ); // Strip "0x" from second string
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I get the error substring(int) cannot be invoked on the primitive type long –  D347th May 14 '12 at 16:02
    
My code only works when h is an array of Strings which contain hex values (as you wrote in your question). Please be more careful when you ask questions: Always use the values that the data types contain (and not the values which you imagine should be in the data types). That said, Richard's answer is correct. –  Aaron Digulla May 14 '12 at 16:05

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