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In Java, the body of a do-while loop and the loop condition do not belong to the same scope. So the following code won't compile:

do {
    boolean b = false;
} while (b); // b cannot be resolved to a variable

But this code does make sense to me.

Also, I cannot find any pitfalls if the body and the condition are in the same scope; since the body will always get executed, and Java does not have Goto, I don't know how a variable declaration in the outermost do-while body scope could be skipped. Even if it is possible, the compiler could always detect such possibility and then produce compile time errors.

Is there any reason for this behavior (aside from keeping the do-while loop in the same format as while)? I am really curious. Thanks for any inputs!

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2  
I think it's because the scope in Java goes by block {}. –  Bhesh Gurung Nov 9 '11 at 17:18
1  
Scope in Java is clearly delineated by curly braces. Notice that the while(b) is outside the curly braces and boolean b is inside. That puts them in different scopes. –  DwB Nov 9 '11 at 17:19
    
Can you use extraneous {} in Java like you can in C/C++ then? –  hugomg Nov 9 '11 at 17:30
    
@missingno Yep. –  Dave Newton Feb 12 '13 at 4:40

7 Answers 7

up vote 8 down vote accepted

Because that's how scope is defined in Java; inside {} is a new scope.

IMO it wouldn't make much sense to special-case a single construct.

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So there's no real problem aside from the general rules? I need to look into the spec now:) –  Ziyao Wei Nov 9 '11 at 17:21
1  
@ZiyaoWei It's not a problem, just not what you expected :) –  Dave Newton Nov 9 '11 at 17:30

Following your logic here is the case when b would not be defined prior to first usage:

do {
    continue;
    boolean b = false;
} while (b); // b cannot be resolved to a variable

Note that very often boolean flags are a code small, try to avoid them rather than fight with them.

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I doubt if this is the real problem? If this is a while loop then the compiler complains about "unreachable code", but since this is a do-while loop the compiler just complains about b not being declared, but I imagine the compiler would just do the same if the do-while is a single scope. Thanks! –  Ziyao Wei Nov 9 '11 at 17:24
    
Well, the real problem is that the scope of a variable is limited to the {} block where it was declared. Period. I just wanted to show you that even if this was not the case, it is possible to reach while condition without b being defined. –  Tomasz Nurkiewicz Nov 9 '11 at 17:27
    
The compiler cannot give a warning about "unreachable code" if there is an if statement and continue is in the then part. –  wannik Nov 9 '11 at 17:55
    
I just hate to receive downvotes without explanation. If I am wrong please correct me, I also want to learn something here :-). –  Tomasz Nurkiewicz Nov 9 '11 at 18:00
    
I liked the example; +1 for me. –  Dave Newton Nov 9 '11 at 19:58

In your example, the boolean variable b is scoped to the body of the do..while loop. Since the conditional check is executed outside the body, the variable is out of scope. The correct construct would be:

boolean b = false ; // Or whichever initial value you want
do {
    b = false;
} while (b);
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do {
    boolean b = false;
}
while (b);

Because the boolean variable b is a local variable having scope only within a block.

From the JLS:

Every local variable declaration statement is immediately contained by a block.

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It is basic scope rules. Variables declared inside a set of curly braces {} go out of scope at the end of the braces. It defeats the standard scope rules and it would be extra work for the compiler to detect such a case.

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You can write something like this if you want exit do-while block while boolean defined inside of do-while block.

do{
  boolean b;
  ...
  if(b){
    break;
  }
}while(otherCondition)  //or while(true)
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The statement definition and your variable are not visible outside your statement block {}, which is why the compiler complains.

The difference between the while and do ... while is that the do ... while is guaranteed to execute at least once and that is a more simpler way to write according to the JLS

Regarding scope of a variable, it has to be visible, according to these rules or else you get a compile time error.

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