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So from a question asked in another thread, I have thought of a new question and the answer is not obvious to me.

So it appears there is a c++ rule that says if you have a const reference to a temporary, then the lifetime of the temporary is at least as long as the const reference. But what if you have a local const reference to another object's member variable and then when you leave scope - Does it call the destructor of that variable?

So here is modified program from the original question:

#include <iostream>
#include <string>
using namespace std;

class A {
public:
   A(std::string l) { k = l; };
   std::string get() const { return k; };
   std::string k;
};

class B {
public:
   B(A a) : a(a) {}
   void b() { cout << a.get(); }  //Has a member function
   A a;
};

void f(const A& a)
{  //Gets a reference to the member function creates  a const reference
     stores it and goes out of scope
 const A& temp = a;
 cout << "Within f(): " << temp.k << "\n";
}

int main() {
   B b(A("hey"));

   cout << "Before f(): " << b.a<< "\n";

   f(b.a);

   cout << "After f(): " << b.a.k << "\n";

   return 0;
}

So when I run this code, I get "hey" as the value everytime. Which seems to imply that a local const reference does not bind itself through life with a passed in member object. Why doesn't it?

share|improve this question
    
So you expect the destructor of b.a being called when temp goes out of scope? So b would then contain a destructed member? –  Henrik Apr 13 '12 at 13:08
    
What do you expect? I don't see any reason that b.a will be changed. –  Cosyn Apr 13 '12 at 13:16
    
see stackoverflow.com/questions/3097593/… –  EdChum Apr 13 '12 at 13:17

2 Answers 2

up vote 10 down vote accepted

b.a is not a temporary so its lifetime is not affected by any references that are subsequently bound to it.

share|improve this answer
    
That makes sense, but how would the compiler track its not a temporary? Does it know where data is stored on the stack or on the heap? How does it know that there are multiple references tied to that memory location? I know I am asking a lot of questions but I'm a new to C++ and its compilers, so please forgive my curiousity. –  nndhawan Apr 13 '12 at 14:29
    
@nndhawan: The compile looks at the expression b.a. It refers to an existing object, it is an lvalue. This is determined at compile time. It doesn't matter where the object is actually stored at run time. –  Charles Bailey Apr 13 '12 at 14:40
    
There seems to be some basic confusion here (probably because the standard itself is poorly worded). The only time the lifetime of a temporary is extended is when the temporary itself is used to initialize a reference. At which point in time, the compiler can see both the temporary and the reference, and so knows what to do. Initializing a reference from another reference does not extend the lifetime of any temporary bound to the source reference. –  James Kanze Apr 13 '12 at 14:44

I'm not sure I understand what you're asking. In your code, the only temporary I see is the A("hey") in the expression that initializes b in main. And that is copied (using the copy constructor) into b.a in B::B. After that, there are no more temporaries, anywhere.

More generally, the fact that a temporary is bound to a reference doesn't necessarily change its lifetime. What extends the lifetime is the fact that the temporary is used to initialize the reference: in your case, for example, temp in f will never have an effect on the lifetime of a temporary, because it is not initialized with a temporary, but with another reference. And there are exceptions to this rule: if you use a temporary to initialize a member reference in the initializers of a class, it's lifetime will still not extend beyond the end of the constructor, so:

class A
{
    std::string const& rString;
public:
    A() : rString( std::string( "hey" ) ) {}
    std::string get() const { retur rString; }
};

will not work.

share|improve this answer
    
Ok I see what, in general, everyone is saying. But I don't get why this example won't work. It seems counter intutive, how else would you initialize rString? –  nndhawan Apr 13 '12 at 15:57
    
@nndhawan Not with a temporary. If your class has a reference, then this reference has to refer to something obtained from outside of the class: the constructor takes a reference as an argument (and the lifetime issues are the responsibility of the client---be sure to document them), or to something looked up elsewhere (e.g. configuration data). In practice, however, having a reference as a member should be very rare. The general solution would be for all members to be values, not references. –  James Kanze Apr 13 '12 at 16:09

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