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I am writing a program for overloading new and delete in Arrays in c++.Here is the code

 #include <iostream>
#include <cstdlib>
#include <new>
using namespace std;

class loc {
  int longitude, latitude;
public:
  loc() {longitude = latitude = 0;}
  loc(int lg, int lt) {
    longitude = lg;
    latitude = lt;
  }

  void show() {
    cout << longitude << " ";
    cout << latitude << "\n";
  }

  void *operator new(size_t size);
  void operator delete(void *p);

  void *operator new[](size_t size);
  void operator delete[](void *p);
};

// new overloaded relative to loc.
void *loc::operator new(size_t size)
{
void *p;

  cout << "In overloaded new.\n";
  p =  malloc(size);
  if(!p) {
    bad_alloc ba;
    throw ba;
  }
  return p;
}

// delete overloaded relative to loc.
void loc::operator delete(void *p)
{
  cout << "In overloaded delete.\n";
  free(p);
}

// new overloaded for loc arrays.
void *loc::operator new[](size_t size)
{
  void *p;

  cout << "Using overload new[].\n";
  p =  malloc(size);
  if(!p) {
    bad_alloc ba;
    throw ba;
  }
  return p;
}

// delete overloaded for loc arrays
void loc::operator delete[](void *p)
{
  cout << "Freeing array using overloaded delete[]\n";
  free(p);
}

int main()
{
  loc *p1, *p2;
  int i;

  try {
    p1 = new loc (10, 20); // allocate an object
  } catch (bad_alloc xa) {
    cout << "Allocation error for p1.\n";
    return 1;;
  }

  try {
    p2 = new loc [10]; // allocate an array
  } catch (bad_alloc xa) {
    cout << "Allocation error for p2.\n";
    return 1;;
  }

  p1->show();

  for(i=0; i<10; i++)
    p2[i].show();

  delete p1; // free an object
  delete [] p2; // free an array

  return 0;
}

In the line p2[i].show(); in the main.Why we are we using ".". instead of "->" .Is the answer is that it became array?is it true. can we make pointer say p3 to the pointer p2? like declaring

loc *p1,*p2,**p3;
p3=&p2;

but then how we will display the result through p3.should we display like p3[i]->show() When I tired the program hanged.

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3 Answers 3

up vote 1 down vote accepted

Not exactly. An array is a sequence of identically typed objects stored one after the other. A pointer in an "address of an object".

The coincidence you observe is the consequence of two fact:

  • An array decays into a "pointer to the first element" when given to functions, and ...
  • The pseudo T& operator[](T* p, int i) is implemented intrinsically by the compiler as return *(p+i);

As a consequence wherever you store a sequence of identical objects, and you have a starting address, the [] operator will lead you to the i-th object. And since the starting address of an array is the address of the first element and is obtained by the implicit array to pointer conversion, you observe a substantial coincidence of the two expression.

But the coincidence stops just there.

About pointing to a pointer, make sure you fully understand the concept: by the way you asked it is not clear if:

  • you want another pointer to point to the same array (just assign the array address to another pointer or the first pointer to another one
  • you want a pointer to point to the pointer that points to the array: this is a double indirection. You need a "pointer to pointer" and assign it to it the address of the first pointer (not of the array)

Jut to be more clear:

int a[5] = { 10,11,12,13,14 }; //5 integer named "a"
int* p = a; // p points to a[0], hence *p and p[0] gives 10, p[1] give 11
int* q = p+1; // q points to one after p (hence to 11), *q and q[0] are 11, q[1] 12 ...
int** d = &p; // d points to p, hence **d is 10 (*d)[1] 11 etc.

The hang you observed is due to the fact d[3] is not the integer 13, but the third int* after p (what d points to). But being p just a single variable, there is not such object, hence the result is undefined. (You had been lucky it hanged: in the worst case you get a random result that can be even look correct, thus hiding the error!).

In your specific case, p3[i]->show takes the value incidentally stored in the memory i pointers after p2 (what p3 points to) treat it as a pointer to loc and try to execute the show method of the supposed loc object at that random address, most likely not belonging to your program memory space, so that show fails to access the longitude local variable.

The result -substantially- all depends on the random data present in p3[i].

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But when we write (*p3)[i].show() then we are doing casting .How is different from p3[i].show()?Means it donot access p3+i? –  Freedom911 Aug 24 '13 at 7:48
1  
(*p3)[i] is not casting. Casting is when between the () there is a type name, not an expression. the () here are just to force precedence to * before to []. Note also that p3+i is not p3[i]. p3[i] is *(p3+i) –  Emilio Garavaglia Aug 24 '13 at 7:53
1  
In case this may help you, (*p3)[i] can also viewed as p3[0][i], where p3[0] is actually p2. But p3[1] (or whatever other number) is undefined being p2 a single variable. –  Emilio Garavaglia Aug 24 '13 at 8:10

should we display like p3[i]->show()?

No. In this line you're trying to access p3 + i memory address. This causes Undefined Behavior. You should use

(*p3)[i].show()

You should use p3[i]->show() in case if p3[i] holds pointer.

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I didn't understand the part that p3[i] holds the pointer. –  Freedom911 Aug 24 '13 at 7:09
1  
Say, you have a class Foo with some_method. You declare an array of pointers to Foo: Foo* arr[10];. Then, if you want to call some_method you should use arr[i]->some_method();. –  soon Aug 24 '13 at 7:11

Why we are we using ".". instead of "->" ? Is the answer is that it became array?

Because p2[i] is actually an instance of loc instead of a pointer to loc; "loc *p2" p2 is a pointer to loc, not an array, and it won't become an array.

can we make pointer say p3 to the pointer p2?

Yes, It is legal. But make p2 is initialized first (instead of being a dangling pointer) in your real world project.

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