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often I encounter hacks like

//lets say this is some class that still doesnt support...
//...all the functionality that it should based on the design docs
void MyClass::MyFunction()
{
  throw std::exception("not implemented");
}

I guess this is a bad practice, but that aside:
Is there a way to do the same thing during compilation, but only if the function is used (aka if it is unused compile should succeed).

Edit: Im also interested in virtual mem functions.

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If a function is not implemented (as in, not declared but not defined) then you will get a link time error. In this case, your function is implemented, and has well defined behavior. –  Chad Nov 28 '12 at 16:00

3 Answers 3

up vote 4 down vote accepted

If it is non-virtual function then you can simply comment out the definition.

If it is a virtual function declared in a base class, then you can't control the calls at compile time, so then your only option is some run-time error or exception.

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yes examples I saw are virtual member funcs. :) –  NoSenseEtAl Nov 28 '12 at 16:02

The simplest solution I can think of is to comment the unimplemented function.

Maybe not what you had in mind, but doing so will generate a compile-time error if anything tries to use it, and the resulting code should be identical to an empty function, which is usually optimized away.

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If you remove the implementation entirely and only have the function declaration, there will be a linker error, which is basically compile time. Unfortunately, linker errors have a tendency to be ugly and hard to track down, but in the case of calling a function that hasn't been implemented yet I think they're pretty manageable.

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2  
Linker error is not basically compile-time. It is link-time. –  Nawaz Nov 28 '12 at 16:06
1  
What if the function is virtual and some base class has implementation? –  Kiril Kirov Nov 28 '12 at 16:08

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