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Running this code in VS2010, I get the warnings shown below, but the C-strings "f()" and "g()" are output on the console.

Question 1: Why does f() generates the warning and g() doesn't? Aren't string literals maintained in static memory until the program ends ?

Question 2: When I comment out the call to h() in main() the code crashes. Why the different behavior?

#include<iostream>

const char* const& f()
{
   return "f()";            //  warning C4172: returning address of local variable or temporary
}

const char* g()
{
    return "g()";           //  no warning
}

const std::string& h()
{
    return "h()";           //  warning C4172:
}

int main()
{
    std::cout << f() << '\n';
    std::cout << g() << '\n';
//  std::cout << h().c_str() << '\n';       //  comment out and program crashes
}
share|improve this question

You are returning a reference to a value that you only use locally. This is undefined behavior. What you probably want is to just return a char pointer, or a std::string, not a char pointer reference or a std::string&.

The fact that you happen to see f() printed out is just the luck of the draw. It is still undefined behavior, and can't be counted on.

share|improve this answer

f() produces undefined behaviour. Undefined behaviour keeps your program in an invalid state which results in (pseudo-random) crashes.

It is undefined behaviour, because you return a reference to a local variable. After the function call the local variable will be destroyed, leaving your char* pointing to nowhere, really.

If you remove the reference, the value will be copied and we don't have a scope violation.

share|improve this answer
    
After the function call the local variable will be destroyed, leaving your char* pointing to nowhere But don't string literals stay alive till the end of the program? – Belloc Mar 17 '13 at 18:26
    
@user1042389 The literal still exists, but the pointer to it is destroyed. – Xymostech Mar 17 '13 at 18:27
    
@Xymostech You mean the pointer (probably) associated with the reference? – Belloc Mar 17 '13 at 18:30
    
Yes. There is a string literal somewhere in memory, your function creates a char pointer that points to it and returns a reference to it, but the pointer itself is destroyed when the function returns. So the reference points to random memory (it just happens that what it points to might have the value you want, but it also might not). – Xymostech Mar 17 '13 at 18:32
    
@Xymostech But how come VS2010 always return a valid address in f()? Thus, probably what you're saying is that other compilers might do it differently. Is that the idea? – Belloc Mar 17 '13 at 19:11

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