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I've found this strange behavior with VS2005 C++ compiler. Here is the situation:

I cannot publish the code, but situation is very simple.

Here is initial code: it work perfectly

class Foo {
     public:
     Foo(Bar &bar) { ... }
}

The constructor implementation stores a reference, setup some members... indeed nothing special.

If I change the code in the following way:

class Foo {
     public:
     Foo(const Bar &bar) { ... }
}

I've added a const qualifier to the only constructor routine parameter.

It compiles correctly, but the compiler outputs a warning saying that the routine Foo::Foo will cause a stackoverflow (even if the execution path doesn't construct any object Foo); effectively this happens.

So, why the code without the const parameter works perfectly, while the one with the const qualifier causes a stackoverflow? What can cause this strange behavior?

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2  
You need to post both the code and the compiler warning you are getting. –  anon May 29 '10 at 8:53
4  
No way to tell with this information. We need lot more information or the minimal piece of code with which the warning can be reproduced –  Naveen May 29 '10 at 8:54
    
Really? I have VS2005 with version 15.00.30729.01 of the C++ compiler and both code snippets (using class Bar {};) don't give me any stack overflow warnings, even at the highest warning level. Am I missing something? –  In silico May 29 '10 at 8:56
    
Next days I'll publish a snippet provoking the error. It will take some time to reproduce the same runtime error. –  Luca May 29 '10 at 9:07
3  
Do this every time you run into such an error. It is very likely that boiling down the code to a small example reproducing the error will show you what you have done wrong. An dif it doesn't, you have a perfect piece of code to post here and ask about. –  sbi May 29 '10 at 9:17
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3 Answers

Try usng the explicit keyword?

My guess is that, with const, you're declaring an automatic conversion from Bar to Foo; and if you already have any similarly automatic conversion from Foo to Bar, then overflow?

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The only way for this to cause a stack overflow (besides a bug in the compiler, which, in my 15 years of doing C++, I have found rare compared to my own errors) is that Foo(const Bar&) creates a Foo object passing it a Bar object. Bugs like these can be subtle and hard to find by looking at the code.

But if you have VS2005, you have a pretty good debugger at hand. Put a breakpoint into that constructor, run the program until you hit the breakpoint, then run again until you hit the breakpoint the second time. Examination of the stack will show you how it happens.

If not every call to this constructor will cause a stack overflow, you can add this code:

namespace { unsigned int recursion_detector = 0; }

Foo::foo(const Bar& bar)
{
  if(recursion_detector++)
    ++recursion_detector; // meaningless code just to put a breakpoint here
  // rest of constructor code
}

and put a breakpoint on the line indicated, which will be hit when the recursion occurs.

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You could change the parameter from const Bar &bar to const Bar *bar. It will work fine, you would just have to change the way you manage the parameter bar (from a referente to a pointer).

The object initialization would be something like:

Bar mybar;

...

Foo myfoo(&mybar);


class Foo {
     public:
     Foo(const Bar *bar) { ... }
};

It's not that bad...

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