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In Visual Studio 2008, the following code will build successfully:

void Foo (int x);//Prototype

void Foo(const int x)//Implementation
{

}

However, this will generate an error (unresolved external symbol) during linking:

void Foo (int x);//Prototype

void Foo(const int x)//Implementation
{

}

void Bar()
{
    int x = 0;
    Foo(x);
}

The problem is because the function implementation for Foo specifies that the integer argument is constant, while the prototype does not require a constant.

Why does this happen? How come the problem isn't detected during compilation?

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Ah, the call foo(x) in Bar() should be Foo(x) instead. –  user6851 Nov 28 '10 at 22:47
    
@user then please fix it. –  Johannes Schaub - litb Nov 28 '10 at 22:48
    
What version of Visual Studio are you using? 2002? 2003? 2005? 2008? 2010? –  FredOverflow Nov 28 '10 at 23:02
    
It's 2008. I'll edit that into the question as well. –  user6851 Nov 28 '10 at 23:07

4 Answers 4

up vote 2 down vote accepted

It's because you have a broken compiler. Broken compilers can choose their behavior themselfs. I know some compilers have this broken handling of that case.

Look on MSDN about a manual that documents that broken behavior. It works fine with compliant (non-broken in this regard) compilers.

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1  
I think this is the bug in question: connect.microsoft.com/VisualStudio/feedback/details/421943/… –  beldaz Nov 28 '10 at 23:37

The problem is that when you call the function you call foo, but you have defined the Foo (with capital F). Both Foo's (re)declare the same function, because top-level consts on parameters do not contribute to the function's signature. they are ignored if the declaration is not a definition and if it is a definition then the parameter variable is considered const inside the function. Think about it - if the parameter is passed as a copy (by value), then it is absolutely irrelevant for the caller whether the function will change the copy or not. That's why function declarations that differ only in top-level consts on their parameters are considered to declare the same function.

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According to your answer there should be no question here. You've not actually answered the question asked: Why the linker error, and why was it not detected at compile time? –  Crazy Eddie Nov 28 '10 at 22:13
1  
@Noah: I bet there is a compile-time error. It is impossible that the compiler doesn't issue a diagnostic that foo is an undeclared identifier. Unless it is an extension which allows functions to be called without being declared which would produce a linker error when looking for definition of foo. Please remove the downvote - it is really uncalled for –  Armen Tsirunyan Nov 28 '10 at 22:17
    
+1 for the explanation of top-level consts - I didn't know this. As Johannes suggests, the actual problem is likely to be a broken compiler, but I appreciated the explanation of the red herring in the question. –  beldaz Nov 28 '10 at 23:11

Just to make absolutely sure that Armen is not crazy:

#include <type_traits>

int main()
{
    static_assert( std::is_same<void(int ), void(const int )>::value, "...");
    static_assert(!std::is_same<void(int&), void(const int&)>::value, "...");
}

This should compile fine on any standard-conforming compiler with minimum C++0x support. If it does not, the compiler is broken. For example, g++ 4.5.1 accepts this code just fine.

And by the way, your actual problem is that you define a Foo but call a foo (note the different case).

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And it does indeed compile it just fine. –  Puppy Nov 28 '10 at 23:24
    
@DeadMG: "It" being what? Visual Studio 2008 supports neither <type_traits> nor static_assert. –  FredOverflow Nov 28 '10 at 23:26
    
Yes, trying to include <type_traits> didn't work when I put this in VS2008. Strangely, there is this page on MSDN though: msdn.microsoft.com/en-us/library/bb982077(v=VS.90).aspx –  user6851 Nov 29 '10 at 3:33
    
@Only: If you install SP1, you get TR1 which defines <type_traits>. –  FredOverflow Nov 29 '10 at 16:43

Because you compile in C++, so the compiler considers the two functions (one with const param and one with non-const param) as two separate functions (with different decorated name). Only one of them is implemented, and the other one is used, hence the linking error.

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3  
NO! It does NOT. Top-level consts on parameters do not contribute to the function's signature. they are the same function!!! –  Armen Tsirunyan Nov 28 '10 at 22:04
    
@Armen Tsirunyan: What about this (Builds with MSVC 2010) int func ( int & x ) {return x;} int func ( const int& x ) {return x;} void Text() { func( 1 ); } –  Edwin Nov 28 '10 at 22:36
2  
@Edwin: int vs const int is the same. int vs const int& is not, because one is reference on is not. int& vs const int& is not the same either because the const is not top-level. See C++ standard Overloading chapter –  Armen Tsirunyan Nov 28 '10 at 22:38
    
@Armen Tsirunyan: yes i forgot & on the first ( have editted but you were faster –  Edwin Nov 28 '10 at 22:40
    
@Edwin: To demonstrate the top-levelness: int * = int * const (top-level) int * != const int * (not top-level) –  Armen Tsirunyan Nov 28 '10 at 22:42

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