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I have always been taught to almost never to use goto statements in programming. However we are required to do so as part of my most recent programming project. I have an if/else statement with various goto statements, and the goto statements are failing to execute. I have no idea why. Any help would be appreciated.

       int myInt = XXXXXXX;
       if((myInt>>22) & 7 == X)
          goto a;
       else if((myInt>>22) & 7 == Y)
          goto b;
       else if((myInt>>22) & 7 == Z)
          goto c;
a:
    printf("this always executes\n");
    goto end;
b:
    printf("this never executes\n");
    goto end;
c:
    printf("nor does this\n");
    goto end;
end:
    //more code

A brief explanation of the bit shifting and such: We are implementing a computer processer, and need to look at the first 3 bits of a 25-bit opcode. So (myInt >> 22) & 7 isolates the 3 bits in the opcode.

Any ideas as to what is going on here?

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3  
What makes you think the goto doesn't execute? Also, the printf statements are either misleading or wrong: If the first printf prints, the second and third will print. Step through it with a debugger, that'll show you where execution is going. –  Thanatos Oct 22 '10 at 20:17
    
What's the result you are getting and what's the result you wanted to get? –  David Brown Oct 22 '10 at 20:18
    
hmm.. did you try it with your printf statement above and not see the prints? Does the code you're testing with have different code? You should at least see fallthrough. –  NG. Oct 22 '10 at 20:19
    
Your third if is identical to your first if, so goto c never executes ... and if goto b somehow does not execute, it will appear as though goto a always executed. –  pmg Oct 22 '10 at 20:19
    
sorry about those bugs. I adapted my projects exact code to avoid posting my code to the internet and introduced bugs in the process. Its fixed now. –  finiteloop Oct 22 '10 at 20:22
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3 Answers 3

up vote 18 down vote accepted

This actually has nothing to do with goto. You've got an operator precedence problem. Bitwise and (&) has lower precedence than equality (==). As a result, you're actually doing if ((myInt>>22) & (7 == X)).

To fix it, just add some parens: if ((myInt>>22) & 7) == X).

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Thanks a lot for seeing past those bugs I introduced by posting sample code. +1 and best answer from me. –  finiteloop Oct 22 '10 at 20:26
2  
you mean Bitwise AND (&) –  N 1.1 Oct 22 '10 at 20:27
    
@N 1.1 - doh, fixed –  SoapBox Oct 22 '10 at 20:30
    
+1 Nicely spotted. That's the reason I always use parenthesis with &, |, &&, ||, =, == even when they aren't needed –  pmg Oct 22 '10 at 20:38
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I see that } that makes me think that labels and corresponding printf are declared outside a function. Of course you can't do that.. they have to be inside a method anyway.

(it's just a guess, also because I see you've got other problems as other answers state :)

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yeah, it is all within a bigger if statement. thanks for catching it –  finiteloop Oct 22 '10 at 20:26
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The '==' operator has a higher precedence than '&' in C/C++.

Try if ( ((myInt>>22) & 7) == X) instead

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