2

so I'm trying to overload a << operator for my class using friend keyword to access private fields. Code:

//Edge.h
#pragma once
class Edge
{
private:
    int startVertice;
    int endVertice;
    int weight;
public:
    //cut
    friend std::ostream& operator<< (std::ostream&, const Edge*);
};

//Edge.cpp
//cut
std::ostream& operator<< (std::ostream& out,const Edge *n) {
    out << "Start: [" << n->startVertice << "] End: [" << n->endVertice << "] Weight: [" << n->weight << "]";
    return out;
}
//cut

However IntelliSense tells me that member Edge::startVertice is inaccessible. Same for endVertice and weight. Where have I made a mistake? :D

EDIT: Compiler errors (connected to this case):

  • syntax error, missing ";" before "&"
  • ostream: 'friend' not allowefg on data declarations
  • missing type specifier (int assumed)
  • unexpected token preceding ';'
  • 'ostream' is not a member of std
  • 9
    "However IntelliSense tells me that" Does your code compile? If it does - I don't see a problem. IntelliSense isn't perfect.. – Algirdas Preidžius May 7 '18 at 12:13
  • If you implement the function inside the class in Edge.h, does the IntelliSense business go away? – DeiDei May 7 '18 at 12:14
  • 2
    An #include <ostream> at the top solved the problems for me (including intellisense). – Bo Persson May 7 '18 at 12:22
  • 2
    @Wylfryd Because you use std::ostream in your header file (in the declaration of the friend function). If you don't include <ostream> the compiler doesn't know what std::ostream is. – Borgleader May 7 '18 at 12:25
  • 1
    @Wylfryd Because you use std::ostream. Without looking in that header, the compiler has no idea what std::ostream is supposed to be. If you really want (and you're sure you don't need the full version), you might use #include <iosfwd> in the header instead, which says that ostream is a type but does not include the class definition. – aschepler May 7 '18 at 12:27

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