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I am trying to understand how operator overloads works.

I want to code it so that I can write

Log(Log::LEVEL_ERR) << "fatal error: " << 13 ; 

And for both the string and the number the overloaded operator is used.

I now have

class Log{
  public:
    std::ostream& operator<<(char const*);
}

std::ostream& Log::operator<<(char const* text){
  if (Log::isToWrite()) {
    printLevel();
    std::cout << text;
  }
  return std::cout;
}

This only get's me the string but not the number, why?

Edit @bitmask Just to be clear, you mean implement like this:

class Log{
  public:
    friend  Log& operator<<(Log& in, char const* text);
}

friend  Log& operator<<(Log& in, char const* text){
  if (in.isToWrite()) {
    in.printLevel();
    std::cout << text;
  }
  return std::cout;
}

Because I get these everywhere now:

error: Semantic Issue: Invalid operands to binary expression ('Log' and 'const char [15]')

Maybe this is really simple but can you spell it out for me?
I'm really not getting it.

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because it takes a char*, and an int is not implicitly convertable to char* –  Mooing Duck Apr 2 '12 at 0:24

1 Answer 1

up vote 1 down vote accepted

Because you returned an ostream&, the next << operator matches operator<<(ostream&, int). You should return *this; (type is Log&) instead, so that the next << operator matches an operator defined for your class.

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But then I get error: invalid operands to binary expression ('Log' and 'int') [3] –  kotoko Apr 2 '12 at 0:35
1  
@kotoko: Yes, because you only implemented operator<< to accept a char const*, but you try to pass it an int. Implement your operator<< as a template. –  bitmask Apr 2 '12 at 0:49
    
@bitmask I'm not saying that isn't a good idea but I never worked with templates before. Is there a way to do it using a free form friend function? –  kotoko Apr 2 '12 at 0:59
    
@kotoko: Well, yes. Implement one for char const* and one for int. But that's what it will be limited to, then. –  bitmask Apr 2 '12 at 1:17

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