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I have the following code:

class Employee {
friend string FindAddr( list<Employee> lst,string name );
public:
Employee(const string& s){ cout << "Employee CTOR" << endl;}
bool operator==( Employee& e) {
    return e.name == name;
}
private:
string name;
string addr;
};


string FindAddr( list<Employee> lst, string name ) { 
string result = "";
for( list<Employee>::iterator itr = lst.begin(); itr != lst.end(); itr++ ) { 
    if ( *itr == name ) { // Problematic code
        return (*itr).addr;
    }
}
return result;
}

As I understand, the problematic line if ( *itr == name ) should follow these steps:

  1. Recognizing it is operator== on class Employee.
  2. Trying to figure out if there is a conversion from string name to Employee so that the operator could work.
  3. Implicitly call the constructor Employee(const string& s) on object string name.
  4. Continue with operator==.

However, this line gives me trouble at compile time:

Invalid operands to binary expression ('Employee' and 'string' (aka 'basic_string<char>'))

Even if I explicitly call the constructor:

if ( *itr == Employee::Employee(name) )

I get the same error.

This is confusing. I'm having trouble to understand when implicit constructor call works (and why the code doesn't work even if I explicitly call the constructor).

Thanks!

share|improve this question
3  
This is exactly why you should be using a const reference in operator==. – chris Jun 27 '12 at 14:58
2  
Hint: temporaries can not be bound to non-const references. – PlasmaHH Jun 27 '12 at 14:59
    
Since it isn't changing state, the member function should be const as well, so that it can be called on const objects. – chris Jun 27 '12 at 15:08
up vote 7 down vote accepted

The rule is:
Temporaries can be bound only to a const reference.

As you mentioned for the == to work,
The object name which is of the type std::string needs to be converted to type Employee, the conversion operators in your class Employee should make this happen. However, the created Employee object is an temporary object.i.e a nameless object which doesn't live long enough to need a name.Such a nameless temporary object cannot be bound to a non-const reference.[Ref 1]
So what you need is a const reference:

bool operator==(const Employee& e)
                ^^^^^^

[Ref 1]
Motivation for the rule:
Motivation for this particular rule is outline by Bajrne in Section 3.7 of The design and evolution of C++.

I made one serious mistake, though, by allowing a non-constant reference to be initialized by an an non l-value. For example:

void incr(int &rr) {r++;}    

void g()
{
    double ss = 1;
    incr(ss);    //note: double passed int expected
}

Because of the difference in the type the int& cannot refer to the double passed so a temporary was generated to hold an int initialized by ss's value. Thus the incr() modified the temporary, and the result wasn't reflected back to the function.

Thus many a times temporary objects are generated unknowingly in function calls, where they are least expected and one might (wrongly)assume that their function works on the original object being passed, whereas the function operates on the temporary.Thus it's easy to write a code that assumes one thing and does another.So to avoid such easy to mislead situations the rule was put in place.

share|improve this answer
    
Thanks, that seemed to solve the problem! – Mattan Jun 27 '12 at 15:08
1  
Declaring the function const would also be a good idea. Or better still, make it a non-member to allow conversions on both arguments (i.e. to allow name == *itr as well as *itr == name). – Mike Seymour Jun 27 '12 at 15:12
    
Temporaries surely take a space in memory and have an address... (for all but but those that fit in a register). Also the explanation of why they cannot be bound to a non-const reference is... misleading to say the least. I.e. it is more of a personal opinion than anything else --the exact same issues crop up with a const reference, for example, and some compilers have extensions to support this... security is not a reason for a language feature (safety might be)... – David Rodríguez - dribeas Jun 27 '12 at 15:25
    
@DavidRodríguez-dribeas In fact, the reason why you cannot initialize a non-const reference with a temporary has been documented by the person who made the decision (Stroustrup): it turned out to be too error prone. Not due to the lifetime, but due to the fact that you sometimes got temporaries without realizing it, and modified them, when you meant to modify the initializing object. – James Kanze Jun 27 '12 at 15:29
    
@James: I knew (I remember reading on that lines in The design and evolution of C++), I just don't like when people second-guess the reasons and create urban myths :) – David Rodríguez - dribeas Jun 27 '12 at 15:33

*itr gives you an Employee, so you're comparing an Employee to a string, name.

What you need is if ( *itr.name == name )

That way you'd be comparing the Employee in the list's name to the name you're searching for.

share|improve this answer
    
This works (with a getter at least), but it doesn't solve the underlying problem. *itr == name should work. – chris Jun 27 '12 at 15:05
    
I agree, this isn't the solution I was looking for. – Mattan Jun 27 '12 at 15:40

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