13

I overloaded the << operator of a class. How do I have to overload the operator if I want to use it on pointers, like the following?

class A {
    std::string operator<<(std::string&);
}

aInst << "This works";
aPointer << "This doesnt work";
aPointer->operator<<("Whereas this works but is useless");

I hope you can help me.

heinrich

23

You need to dereference the pointer first.

A *ptr = new A();
(*ptr) << "Something";

The only other way is the way you described above

Edit: Andre's solution below is workable as well, but like he said it may not be a good idea.

12

First off, to stick with standard conventions, your operator<< should be declared like this:

class A {
    A& operator<<(const std::string&);
};

Now, technically, you could achiever part of what you want by implementing the following global function:

A * operator<< ( A * a, const std::string& s ) { (*a) << s; return a; }

This would allow statements such as:

string s = "this will be printed."; aPointer << s;
aPointer << string("this will be printed");

However, you won't be able to write the following:

aPointer << "this will not compile.";

In any case, writing such an operator would be confusing, at best. You should live with the more simple syntax of

(*aPointer) << "this will be printed.";

and write code that sticks to established conventions to allow others (and yourself, in a few weeks) to read your code.

3

You cannot do that. Operator functions are only considered for operands that have enumeration or class types among them.

You after all shift a pointer, but not a class. You need to explicitly say that you want to shift into a class object by dereferencing the pointer first.

  • @sbi, thanks. fixed – Johannes Schaub - litb Oct 29 '10 at 20:19
  • (Note that "class types" encompasses structs and unions.) – sbi Nov 1 '10 at 16:30
  • @sbi correct. structs and unions are classes. Operator functions are considered when structs and unions are operands of a suitable operator, as for classes declared with the "class" class-key. – Johannes Schaub - litb Nov 1 '10 at 17:28
0

Normally there is no good reason doing that, because semantically operator << return reference to stream object. And technically you basically can't do that.

  • 2
    No, semantically operator<< should return the left-hand side argument. – André Caron Oct 29 '10 at 19:26

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