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When I write this code and compile with /W4

long r;
__try { r = 0; }
__finally { }
return r;

I get:

warning C4701: potentially uninitialized local variable 'r' used

Why does this happen?

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2 Answers 2

up vote 2 down vote accepted

The compiler can't be sure the code inside of the try block will successfully run. In this case it always will, but if there's additional code in the try block r = 0 may never execute. In that case r is uninitialized hence the error.

It's no different than if you said:

long r;
if(something) {
  r = 0;
}
return r;

(where 'something' is pretty much anything other than a constant true value).

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If r = 0 doesn't execute then wouldn't an exception be raised? –  Mehrdad Apr 23 '12 at 17:53
    
Possibly, but the point is you are using a variable that the compiler can't 100% determine will be initialized so it gives you an error. The try block adds ambiguity about whether or not r will be initialized. As a human it's easy to determine r will be initialized, but your computer is not a human. –  JonBWalsh Apr 23 '12 at 17:58
    
If there was an __except ("catch") block, I would understand, since the variable would remain uninitialized through the catch block... but I don't really understand why this is happening here, since AFAIK it's impossible for the variable to remain uninitialized. –  Mehrdad Apr 23 '12 at 17:59
    
Most likely it's a limitation of the compiler and engine. For example in most cases writing: long r; boolean t = true; if(t) { r = 0;} return r; will result in the same error because the compiler is just checking the code not logically analyzing it. –  JonBWalsh Apr 23 '12 at 18:00
    
Hmm okay... not the answer I was looking for but probably correct. +1 thanks –  Mehrdad Apr 23 '12 at 18:01

Because long r; creates r but it is not initialized; it is null.

So it warns you that the variable is not initialized. In certain cases it will cause Null Pointers.

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I thought I said r = 0? –  Mehrdad Apr 23 '12 at 17:24

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