Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

i have what i hope is a quick question about some code i am building out.. basically i want to compare the variables amongst two instances of a class (goldfish) to see if one is inside the territory of another. they both have territory clases which in turn use a point clase made up of an x and y data-point.

now i was curious to know why the below doesnt work please:

(this bit of code compares two points: a & b, each with two points, a north-east (ne) and south-west (sw) and their x and y plots) if ((a->x_ne <= b->x_ne && a->y_ne <= b-> ne) && (a->x_sw => b->x_sw && a->y_sw => b-> sw)) { return true; } else return false;

I can think of a work around (for instance, by having a get location method), and using a function in the main body to compare, but im curious to know --as a budding c++ programmer -- why the above, or a similar implementation doesnt appear to work.

and also, what would be the CLEANEST and most elegant way to accomplish the above? have a friend function perhaps?

many thanks

edit: added some comments to (hopefully make the variables clearer)

// class point {
// public: 
//   float x;
//   float y;

//   point(float x_in, float y_in) { //the 2 arg constructor 
//     x = x_in;
//     y = y_in;
//   }
// };

// class territory {

// private:
//   point ne, sw;

// public:
//   territory(float x_ne, float y_ne, float x_sw, float y_sw) 
//     : ne(x_ne, y_ne), sw(x_sw,y_sw) {
//   }  


// bool contain_check(territory a, territory b) {
//   //checks if a is contained in b (in THAT order!) 

//     if ((a->x_ne <= b->x_ne && a->y_ne <= b-> ne) && 
//       (a->x_sw => b->x_sw && a->y_sw => b-> sw)) {
//     return true; 
//   } else return false;

^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^

// };


// class goldfish {
// protected:
//   float size;
//   point pos;
//   territory terr;

// public:

//   goldfish(float x, float y) : pos(x,y), terr(x-1,y-1,x+1,y+1)  { //constructor
//     size = 2.3;
// }

//   void retreat() { //what happens in the case of loss in attack
//     /*
//     if(goldfish.size[1] - goldfish.size[2] <= 1 && goldfish.size[1] - goldfish.size[2] > 0) {
//       size = size - 0.2;
//     } 
//     */

//   }
//   void triumph() {
//   }

//   void attack() {

//   }
//   // void goldfish() 
// };
share|improve this question
1  
Descriptive variable names are nice :). We are no longer limited in characters, I stopped reading when I saw a->x_ne – Ed S. Nov 3 '09 at 18:51
    
Why is everything commented out? – GManNickG Nov 3 '09 at 18:53
    
Post your compiler errors, it'll help a lot. – Jonas Nov 3 '09 at 18:59
up vote 1 down vote accepted

What do you mean by "doesnt work"? I does not compile?

If contain_check is written as shown in your post, a problem is that you are using the arrow operator on non-pointers. Use dot instead:

    if ((a.x_ne <= b.x_ne && a.y_ne <= b.ne) //etc.
share|improve this answer
    
ah, so -> ONLY in cases where we are dealing with pointers? because of the de-referencing it does i suppose? – fishtank Nov 3 '09 at 19:00
    
Also, a and b have no members named x_ne or y_ne. – Bill Carey Nov 3 '09 at 19:03
    
@fishtank: More formally, only on types for which operator-> is defined. It is automatically defined for pointers, but it also could be custom-defined on any class. This is useful when writing so-called "smart" pointer classes. – Éric Malenfant Nov 3 '09 at 19:14

On first glance: There isn't a => operator. It's called >=

share|improve this answer

Assuming that your territories are rectangles and your are detecting overlap by comparing the corners of the two classes (ne and nw) you are only checking the northwest and northeast corners which have a region of a line. As @Éric Malenfant mentioned, you have structures as the class members which are accessed by the '.' operator. Those members are ne and sw so to reference them would be: "a.ne.x"

So starting with this:

if ((a->x_ne <= b->x_ne && a->y_ne <= b-> ne) && 
    (a->x_nw => b->x_nw && a->y_nw => b-> nw)) {
    return true; 
   } else return false;

Change it to:

return (   (a.ne.x <= b.ne.x && a.ne.y <= b.ne.y) 
        && (a.sw.x >= b.sw.x && a.sw.y >= b.sw.y));
share|improve this answer
    
oops, sorry a typo there :) – fishtank Nov 3 '09 at 18:57

I noticed two possible problems right off (note: not a C++ expert):

You use => for "greater than or equal to", where it should be >=.

Also, I think b->ne should be b->y_ne.

share|improve this answer
bool contain_check(territory a, territory b)

You're passing in two territory objects, not pointers to territory objects. Consequently, you'll want to use the . operator to access members instead of the -> operator. Something like:

a.ne

Additionally, you've declared the ne and sw members private, which means that they won't be accessible to unrelated functions. They would need to be public for the contain_check() function to access them.

share|improve this answer
    
g++ the error i get is base operand of ‘->’ has non-pointer type ‘territory’ which led me to think there is something wrong with using the -> in this case? – fishtank Nov 3 '09 at 18:58

sorry, i was clearly (very) confused. thanks guys! below works:

if ((a.ne.x <= b.ne.x && a.ne.y <= b.ne.y) && 
      (a.sw.x >= b.sw.x && a.sw.y >= b.sw.y)) {
    return true; 
  } else return false;
  }
share|improve this answer
1  
Drop the if-statement, it's redundant. – GManNickG Nov 3 '09 at 19:28

the method bool territory::contain_check(const territory &a, const territory &b); should be declared as static. it makes sense. or, better, write it as standalone function, because it has nothing to do with the class territory; it checks some kind of relation between two instances, right?

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.