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I'm implementing vector class and I need to get an opposite of some vector. Is it possible to define this method using operator overloading?

Here's what I mean:

Vector2f vector1 = -vector2;

Here's what I want this operator to accomplish:

Vector2f& oppositeVector(const Vector2f &_vector)
{
 x = -_vector.getX();
 y = -_vector.getY();

 return *this;
}

Thanks.

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3  
Style comment: don't prefix your variables with ''. This style is reserved for the implementation (compiler) and you may have conflicts. Also, readers my unintentionally recognize your variables as implementation variables because of the '' prefix. You don't need to use '_' inside functions; they will be readable without it. –  Thomas Matthews Jan 28 '10 at 18:48
3  
Two underscores are reserved for implementation, not just one. –  el.pescado Jul 7 '10 at 11:56
    
I believe that it's _MACROs and __identifiers. –  Puppy Jul 7 '10 at 12:20
    
Please tell me why you are using .getX() and .getY() on your simple Vector type –  bobobobo May 9 '13 at 1:00

3 Answers 3

up vote 58 down vote accepted

Yes, but you don't provide it with a parameter:

class Vector {
   ...
   Vector operator-()  {
     // your code here
   }
};

Note that you should not return *this. The unary - operator needs to create a brand new Vector value, not change the thing it is applied to, so your code may want to look something like this:

class Vector {
   ...
   Vector operator-() const {
      Vector v;
      v.x = -x;
      v.y = -y;
      return v;
   }
};
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1  
+1 : the only right solution -_- –  Kornel Kisielewicz Jan 28 '10 at 14:52
    
it's wrong: it should be v.x = -x; v.y = -y; –  sergiom Jan 28 '10 at 14:57
2  
@Kornel Kisielewicz: Calling it "the only right solution" is misleading. Unary - can be overloaded by a standalone function as well, which would closely mirror the OP's implementation of oppositeVector. –  AndreyT Nov 29 '12 at 19:00

It's

Vector2f operator-(const Vector2f& in) {
   return Vector2f(-in.x,-in.y);
}

Can be within the class, or outside. My sample is in namespace scope.

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+1 for catching that you need to return a new Vector2f instance, not a reference to the current object. –  MikeSep Jan 28 '10 at 14:53
    
This is the implementation of a binary operator-. Unary has no parameter as @anon said. –  Mr Shunz Jan 27 '11 at 16:12
2  
Nope, it is an unary operator. It takes a Vector2f as parameter since it is defined in namespace- rather than class scope. My response is correct. –  Alexander Gessler Jan 27 '11 at 18:25
2  
See also 13.5.1 - 'A prefix unary operator shall be implemented by a non-static member function (9.3) with no parameters or a non-member function with one parameter'. –  Alexander Gessler Jan 27 '11 at 18:29
2  
@shunz it's an unary operator. note it is namespace scope not class scope. –  xis Feb 9 '12 at 21:08
Vector2f operator-(const Vector2f &_vector)
{
   Vector2f result;
   result.setX(-_vector.getX());
   result.setY(-_vector.getY());

   return result;
}

And you could also want overload other related operators as well:

class Vector2f
{
public:
   // ...
   Vector2f& operator-=(const Vector2f& other);
};

// binary minus
Vector2f operator-(const Vector2f& lhs, const Vector2f& rhs)
{
    Vector2f result = lhs;
    return result -= rhs;
}

And don't forget to put these operators in same namespace with Vector2f.

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how can this work if there is no left-hand side expression? –  Alex Brown Jan 28 '10 at 14:51
    
That's wrong. Why is _vector needed if you're at class scope? Why are you returning a copy of this, but modify the object itself? –  Alexander Gessler Jan 28 '10 at 14:52
    
@Alex: The "unary minus" operator? –  Cwan Jan 28 '10 at 14:53
    
@Alexander Gessler: you are right, shame on me. Edited. –  Alexander Poluektov Jan 28 '10 at 14:57

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