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Why does this:

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

class Sandbox
{
public:
    Sandbox(const string& n) : member(n) {}
    const string& member;
};

int main()
{
    Sandbox sandbox(string("four"));
    cout << "The answer is: " << sandbox.member << endl;
    return 0;
}

Give output of:

The answer is:

Instead of:

The answer is: four

share|improve this question
3  
While there is an error in your code, it doesn't contain the text The answer is, so it cannot be the code you use actually. – Johannes Schaub - litb May 6 '10 at 20:47
    
Fixed, thank you. – Kyle May 6 '10 at 21:00
14  
And just for more fun, if you had written cout << "The answer is: " << Sandbox(string("four")).member << endl;, then it would be guaranteed to work. – Roger Pate May 11 '10 at 22:51
2  
@RogerPate Could you explain why? – Paolo M Jun 8 '15 at 7:40
    
For someone who's curious, example Roger Pate posted works because string("four") is temporary and that temporary is destroyed at the end of full expresion, so in his example when SandBox::member is read, temporary string is still alive. – PcAF May 23 at 15:03
up vote 94 down vote accepted

Only local const references prolong the lifespan.

The standard specifies such behavior in §8.5.3/5, [dcl.init.ref], the section on initializers of reference declarations. The reference in your example is bound to the constructor's argument n, and becomes invalid when the object n is bound to goes out of scope.

The lifetime extension is not transitive through a function argument. §12.2/5 [class.temporary]:

The second context is when a reference is bound to a temporary. The temporary to which the reference is bound or the temporary that is the complete object to a subobject of which the temporary is bound persists for the lifetime of the reference except as specified below. A temporary bound to a reference member in a constructor’s ctor-initializer (§12.6.2 [class.base.init]) persists until the constructor exits. A temporary bound to a reference parameter in a function call (§5.2.2 [expr.call]) persists until the completion of the full expression containing the call.

share|improve this answer
25  
You should also see GotW #88 for a more human-friendly explanation: herbsutter.com/2008/01/01/… – Nathan Ernst May 6 '10 at 22:59
    
I think it would be clearer if the standard said "The second context is when a reference is bound to a prvalue". In OP's code you could say that member is bound to a temporary, because initializing member with n means to bind member to the same object n is bound to, and that is in fact a temporary object in this case. – M.M May 18 at 3:39
1  
@M.M There are cases where lvalue or xvalue initializers containing a prvalue will extend the prvalue. My proposal paper P0066 reviews the state of affairs. – Potatoswatter May 20 at 7:50
    
Right, so my suggesting is also bad as it forgets about binding to lvalue or xvalue members of temporary object which would extend. Seems like this is one of those things that's intuitively obvious but not so easy to formalize. – M.M May 20 at 7:53

Here's the simplest way to explain what happened:

In main() you created a string and passed it into the constructor. This string instance only existed within the constructor. Inside the constructor, you assigned member to point directly to this instance. When when scope left the constructor, the string instance was destroyed, and member then pointed to a string object that no longer existed. Having Sandbox.member point to a reference outside its scope will not hold those external instances in scope.

If you want to fix your program to display the behavior you desire, make the following changes:

int main()
{
    string temp = string("four");    
    Sandbox sandbox(temp);
    cout << sandbox.member << endl;
    return 0;
}

Now temp will pass out of scope at the end of main() instead of at the end of the constructor. However, this is bad practice. Your member variable should never be a reference to a variable that exists outside of the instance. In practice, you never know when that variable will go out of scope.

What I recommend is to define Sandbox.member as a const string member; This will copy the temporary parameter's data into the member variable instead of assigning the member variable as the temporary parameter itself.

share|improve this answer
    
If I do this: const string & temp = string("four"); Sandbox sandbox(temp); cout << sandbox.member << endl; Will it still work? – Thomas May 18 at 3:27
    
@Thomas const string &temp = string("four"); gives the same result as const string temp("four"); , unless you use decltype(temp) specifically – M.M May 18 at 3:42
    
@M.M Thanks a lot now I totally understand this question. – Thomas May 18 at 4:07

Technically speaking, this program isn't required to actually output anything to standard output (which is a buffered stream to begin with).

  • The cout << "The answer is: " bit will emit "The answer is: " into the buffer of stdout.

  • Then the << sandbox.member bit will supply the dangling reference into operator << (ostream &, const std::string &), which invokes undefined behavior.

Because of this, nothing is guaranteed to happen. The program may work seemingly fine or may crash without even flushing stdout -- meaning the text "The answer is: " would not get to appear on your screen.

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Because your temporary string went out of scope once the Sandbox constructor returned, and the stack occupied by it was reclaimed for some other purposes.

Generally, you should never retain references long-term. References are good for arguments or local variables, never class members.

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5  
"Never" is an awfully strong word. – Fred Larson May 6 '10 at 21:02
8  
never class members unless you need to keep a reference to an object. There are cases where you need to keep references to other objects, and not copies, for those cases references are a clearer solution than pointers. – David Rodríguez - dribeas May 6 '10 at 21:06

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