Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So I have this script:

class input {
public static void main (String[] args){
    String hexa;
    hexa = "68101005200B10034D201A10162014100D17060520100F06200E101306200409020D0D060F0806200A0F201A101613200B1016130F061A4F2075090A1420100F06201802142007020A130D1A200602141A20151020041302040C4F207802140F4815200A156020525359200C061A14200A1420022012160A150620140E020D0D200C061A14110204064D201410200A1520140910160D050F481520090217062015020C060F201A101620151010200D100F0820151020050604131A11152015090A14200E0614140208064F2078060D0D2005100F064D201A1016132014100D16150A100F200A14200F050311030210130A0D10074F";
    int pituus;
    pituus = hexa.length();
    int i = 1;
    char luku;
    char luku2;
    int asc;
    String pari;
    String koodi;
    StringBuilder sb2 = new StringBuilder();
    StringBuilder sb = new StringBuilder();
    StringBuilder ASCII = new StringBuilder();
    for(int a = 0;a <30;a++){
    if (a > 0){
        hexa = sb.toString();
    }while(i < pituus){
    luku = hexa.charAt(i);
    luku2 = hexa.charAt (i-1);
    luku++;
           if(luku == 'G'){ 
        luku = '0';
        luku2++;
    }
           else if(luku == ':')
               luku = 'A';

    if (luku2 == '8')
        luku2 = '0';
 sb2.append(luku2);
 sb2.append(luku);
 pari = sb2.toString();
 sb2.setLength(0);
 asc = Integer.parseInt(pari,16);
 ASCII.append((char)asc);
 sb.append(luku2);
 sb.append(luku);
 i+=2;
    }
    koodi = ASCII.toString();
    System.out.printf("All hex pair values increased by: %d\n%s\n======================\n%s\n",a+1,hexa,koodi);
    }
}
}

EDIT2: Now on this version hexa is right before program steps, to while-loop. Inside while loop, program uses old value of hexa. Why is that and how to "update" the while-loop?

share|improve this question
2  
Debugger is your best option. –  Maroun Maroun Mar 11 at 9:54
    
Could you be little more specific? –  user3403621 Mar 11 at 9:57
    
Use the debugger and you'll find your problem, it's the best tool for learning and finding bugs in your program. –  Maroun Maroun Mar 11 at 9:58
    
What are you trying to acheive? what value does hexa contain? –  amudhan3093 Mar 11 at 10:03
    
Hexa is 490 char long string that contains values 0-9 and A-F, so it's hexdecimal string. The script increses every pair of the characters by 1 and turns the string to text. I try to loop it to give on the next step incrreasement by 2 next 3 and so on until increasement of 30. So if the hexa would be 686A it would print "ik" on first step "jl" next and so on. –  user3403621 Mar 11 at 10:09

3 Answers 3

up vote 1 down vote accepted

I think the inner loop never is executed.

Because initially pituus is 0 and the inner loop isn't executed and sb.toString(); is "" and pituus is 0 again, because of this the inner loop never is executed.

share|improve this answer
    
Oh thats not a problem, Hexa is actually 490 characters long, I didn't include it due to it's lenght –  user3403621 Mar 11 at 10:11
    
I thnk the inner loop only is executed once. And you repeat the other 29 times this statements: hexa = sb.toString(); koodi = ASCII.toString(); System.out.print(koodi); This is because you don't update the value of i and pituus when you exit the loop –  maiklahoz Mar 11 at 11:46
    
I updated the code a bit to make it more selfexplaining. The output is only too long put in comment. –  user3403621 Mar 11 at 12:05
    
Yeah you were right! Now I was able to solve my problem! –  user3403621 Mar 11 at 13:43

Step through the program by hand or in a debugger. You'll find that pituus is first set to 0 and is never changed, so the inner while-loop is never entered.

share|improve this answer
    
I now included actual value of hexa. –  user3403621 Mar 11 at 10:18

I have just ran your code (JDK 1.7.0_21) and the value of the hexa variable was indeed changed at the end of the main method:

hexa = "69111106210C11044E211B11172115110E18070621111007210F11140721050A030E0E07100907210B10211B111714210C11171410071B5021760A0B1521111007211903152108030B140E1B210703151B21161121051403050D5021790315104916210B16612153545A210D071B15210B1521032113170B160721150F030E0E210D071B15120305074E211511210B1621150A11170E06104916210A0318072116030D0710211B111721161111210E11100921161121060705141B121621160A0B15210F071515030907502179070E0E21061110074E211B1117142115110E17160B1110210B152110060412040311140B0E110850"

Please try to run the code yourself and give a detailed report of the expected and actual results.

P.S. To be able to see the value of hexa at the end of the main method consider putting a non-modifying method call there:

            [...]
            koodi = ASCII.toString();
            System.out.print(koodi);
        }
        hexa.hashCode(); // place breakpoint here to see that the value has changed
    }
}
share|improve this answer
    
Yeah, thats true. But I want i to give me strings like this: 6911, 6A12, 6B13, 6C14... . Right now it only gives: 6911, 6911, 6911... –  user3403621 Mar 11 at 11:33
    
Could you please elaborate on the logic that would create those string(s?) As the question now stands, it is answered, the variable IS altered when the loop exits. If you still have problems with your code, try to make it clear what the code is for and how it tries to achieve that, using comments and descriptive variable names. –  zovits Mar 11 at 11:42
    
It is to decipher a message. Every pair of character represent a ascii code 0-127, but every pair of the characters are increased or decreased certain amount. So I made this script to make increasements 1-30 and then print representing ASCII characters. –  user3403621 Mar 11 at 11:51
    
So increasement by 1 is the value of hexa you posted on your comment, 6911110621... , but the problem is that every time for loop goes back up hexa regains its original value, so the recursion doesnt happen, it only gives same value 30 times. Hope I made myself clear this time. :D There might be easier ways, but I like to learn some programming at the same time. –  user3403621 Mar 11 at 11:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.