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Please see my example code:

var testObject = new SomeClass();
using (testObject)
{
     //At this point how can the testObject implicitly know 
     //if it is placed inside a 'using' scope?

     // In other words, how can testObject know that
     // .SomeAction() is being called from within a 'using' scope?

     testObject.someAction();
}
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6  
You can't, and you shouldn't. The using statement is syntactic sugar for a try/finally that invokes the Dispose() method manually. Both are perfectly valid use-cases, so it would be improper for your method to check for the using statement explicitly (even if it could -- which it can't). –  Kirk Woll Aug 31 '10 at 21:18
    
Why should testObject know that it is in a "using scope"? Only the compiler must know to call dispose when leaving the scope. –  Tim Schmelter Aug 31 '10 at 21:19
1  
The real question here is "Why" Why do you want to know if it's in a using scope? If it's supposed to be in using scope, make a wrapper class around it or something. –  McKay Aug 31 '10 at 21:22
    
@kirk I know how the using statement wroks @Tim Because I'd like to construct an object that can only have it's methods called if it is placed within a 'using' scope. –  7wp Aug 31 '10 at 21:22
    
@Roberto. Do you want to force users of your object always to use using? –  Alexander Pogrebnyak Aug 31 '10 at 21:28
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3 Answers

up vote 4 down vote accepted

It can't.

It could get a stack dump to determine where the calling code is, and analyze the code to try to determine what it does. It could look for the try...finaly and dispose that the using block generates, but it could still not tell if it actually was a using block or not.

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You can't. It would not make any difference anyway. All you are doing is creating the object, calling some methods, then disposing it. Why should the behaviour of someAction change depending on whether or not Dispose is called some time in the future?

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I'd like to construct an object that can only have it's methods called if it is placed within a 'using' scope.

No, that's not possible.

The only reason why you'd want functionality like that is to make a guarantee that an object always get's disposed when it leaves scope, and there are much better ways to enforce this logic.

If you're using VS2010, then you can use FxCop's Dispose objects before losing scope for objects implementing IDisposable. In the event you create an object without disposing it, FxCop will fail your build -- and that's about as good of a compiler guarantee as you can get for your requirements.

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Another option is to add a finalizer that throws if the object has not already been disposed. I do this for some objects in debug builds. –  Stephen Cleary Aug 31 '10 at 22:01
    
Sorry @Juliet, but you cannot assume that it is the only reason I would want functionality like that. I only wanted to know if it is possible, wasn't really asking for advice on the 'why' part. –  7wp Aug 31 '10 at 22:08
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