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I created a method to swap the cars from the owners.

bool owner::changeCar(owner& other, car& mCar){
  if(this == &other) return false;
  car* m = &this.mCar;
  this->mCar =&mCar;
  other.mCar = m;
  return true;
}

But I receive the error

Request for member ‘mCar’ in ‘this’, which is of non-class type ‘owner* const’

on the line car* m = &this.mCar;.

Someone know what I'm doing wrong. The class owner have a private car.

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3 Answers

up vote 1 down vote accepted

You did it correctly in the line below; this is a pointer, hence you need -> to access its member mCar. Furthermore, mCar is apparently already a pointer (at least you use it as one) so the & before it is redundant.

car* m = this->mCar;
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Thanks, solved.. i completely forgot that.. LOL. –  demonofnight Mar 23 '12 at 12:01
    
Just to add, in this case i need to remove the & before the this.. the mCar is already a pointer.. so .. Thanks a lot –  demonofnight Mar 23 '12 at 12:02
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The reason your code does not compile is that this is a pointer, not a reference; therefore, you need to use -> operator instead of the . operator.

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Whereas using the standard library when possible is a good idea, in this case it won't work, as he wants to achieve something completely different. I wonder who up-voted it, though (but Ok, the first paragraph is of course absolutely correct)? –  Christian Rau Mar 23 '12 at 12:07
    
@ChristianRau Why wouldn't it? The OP says that he is trying to swap the cars from the owners, so a call to std::swap should do the trick, no? –  dasblinkenlight Mar 23 '12 at 12:12
    
He wants to swap them using a third party, doing just owner.mCar = this->mCar; this->mCar = &mCar;. I'm not sure std::swap or your other alternative achieves that (at least not alone). –  Christian Rau Mar 23 '12 at 12:16
    
@ChristianRau OP's code looks very much like a "classic" swap, he's just missing other. in the second line of the swap; it should be this->mCar =&other.mCar; It does not make much sense without it. –  dasblinkenlight Mar 23 '12 at 12:26
    
And the additional mCar parameter is there for the sake of confusion? I guess he just used the tradional triangle-swap-idiom and put in a third parameter, without realizing that he doesn't need a triangle-swap in this case. –  Christian Rau Mar 23 '12 at 12:36
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In one line you write this.mCar and in the next this->mCar. Looks wrong, doesn't it? In this case the second version is correct, since this is a pointer to owner and not an object or reference of type owner.

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