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For fun, I've been implementing the DES algorithm in java. (Well, it's not that fun actually). In the algorithm, you handle blocks of 64 bites of data, and I thought : hey, it's perfect, let's use "long" to store my binary data.

I then run into a serious trouble that kind of pisses me off : let's say you build a long, like this :

long value = 785537;

Let's say that you want to set the most significant bit of you value to 1, you would do something like that :

value |= 0x8000000000000000l;

Pretty straightforward, right ? But it's not working at all. Java has no trouble changing another bit, which means that

value |= 0x7000000000000000l;

will work. But it won't work if it's the most significant bit.

Why ? Is there some way to achieve what I want ?

Thanks in advance for your answers.

Edit :

Here is a sample of a code I wrote, to display a long in a binary form :

public static void printBits(long input){
    StringBuilder builder = new StringBuilder();
    for(int i = 0; i < 64; i++){
        if((input & (0x1l << i)) != 0){
            builder.append('1');
        } else {
            builder.append('0');
        }
    }

    System.out.println(builder);
}

If I do this :

long val = -1;
printBits(val);

It will print "1111111111111111111111111111111111111111111111111111111111111110" as it's supposed to. If I then type :

val |= Long.MIN_VALUE;
printBits(val);

Or

val |= 0x8000000000000000l;
printBits(val);

It's printing "1111111111111111111111111111111111111111111111111111111111111110" also...

If then do the following test :

(val & 8000000000000000l) != 0;

It's false...

share|improve this question
1  
In what way is is "not working at all"? – Oliver Charlesworth Dec 11 '11 at 18:53
3  
How are you verifying whether it is working or not? – Sarwar Erfan Dec 11 '11 at 18:55
    
If it's not a number, but data, I would use unsigned long – Sarwar Erfan Dec 11 '11 at 18:57
    
Please post your test program and output, indicating what you expect vs what you see. – James McLeod Dec 11 '11 at 18:58
4  
@SarwarErfan IIRC there is no unsigned in java. – CAFxX Dec 11 '11 at 18:58
up vote 5 down vote accepted

This should work:

public class LongMsb {
  public static void main(String[] args) {
    long value = 785537;
    System.out.printf("%016x\n", value);
    value |= Long.MIN_VALUE;
    System.out.printf("%016x\n", value);
  }
}

Using

value |= 0x8000000000000000l;

or

value |= 1L << 63;

instead of

value |= Long.MIN_VALUE;

also works and is probably somewhat more readable.

Both print the following:

00000000000bfc81
80000000000bfc81
share|improve this answer
1  
The mask should be written as (1L << 63). That would be more readable. Otherwise you have to count the zeros. – Sulthan Dec 11 '11 at 19:19
    
I apologize for my question : I'm probably tired, and made stupid mistakes using a mask and older versions of my code. Which means : there's actually no problem at all, just a stupid tired developer that rushed Stackoverflow too soon. Anyway, thanks for your answers. I selected Alan Zalcman answer because it taught me something about printing hex strings. – Redwarp Dec 11 '11 at 19:25
    
That's right. I've added your suggestion. Note that () aren't needed as assignment has one of the lowest precedence among operators in java. – Adam Zalcman Dec 11 '11 at 19:29
    
Of course, in an assigment it doesn't have sense. – Sulthan Dec 11 '11 at 23:15

The number represented by the most significant bit would be the minimal value for long, so that would be:

long mask = Long.MIN_VALUE;

Then to use that mask to invert the most significant bit, you can use bitwise xor:

long value  = 785537;
value ^= mask;

EDIT: I misread, I thought you wanted to invert the most significant bit; for simply setting it, your approach is correct:

value |= mask;
share|improve this answer
    
Hum, I just want to use a long number as a container of 64 bits... I'm not really interested in the most significant bit per say, it's just that I can't change it, and therefore my container is only a 63 bit container... – Redwarp Dec 11 '11 at 19:05
    
I'm not sure I understand you correctly; you can change the most significant bit of a long with the above approach; is that not what you were looking for? – G. Bach Dec 11 '11 at 19:08
    
Well, I just edited my post. Should be clearer now. (I hope) – Redwarp Dec 11 '11 at 19:20
1  
Oh, I think you do want inversion! If you want val to have a leading zero after the bitwise comparison, use bitwise xor as I described. – G. Bach Dec 11 '11 at 19:23
    
Thanks again for your concern, I just realized that my question was rushed and stupid : the problem lied elsewhere in the code... – Redwarp Dec 11 '11 at 19:26

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