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While I was defining the working of an overloaded new operator declared in a class, I came across following confusion....

  1. HERE ,the return type of the function is 'void',yet I have to introduce a return statement.....otherwise my program crashes....why so?
  2. What is meant by "void *p"

    void *myclass::operator new(size_t size)
    {
    void *p;
    p=malloc(size);
    cout<<"IN overloaded new";
    if(!p)
    {
      bad_alloc ba;
      throw ba;
     }  
    return p;
    }
    

    to the point clarifications are appreciated.

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3 Answers 3

The return type of the function is not void, its a void* (void pointer). A void pointer is a generic pointer which can point to anything, but it cannot be dereferenced - you have to cast it to another type prior to dereferencing it.

If you don't return the void *, then you're not returning the pointer to the memory you allocated, and the users code will fail.

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2  
The user code will fail if you are lucky. –  Mankarse Dec 9 '11 at 17:56
    
Very true :) dontcha just love undefined behaviour? –  w00te Dec 9 '11 at 19:43

void* is an untyped pointer. It's a pointer that can point to anything. Note that the return type of this function is not void but void*. It's supposed to return a pointer to the memory that was allocated.

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Simple demonstration of overloaded new

void* operator new(size_t num)
{
 return malloc(num);
 }

The return type of the overloaded new must be void*. It is expected to return a pointer to the beginning of the block of memory allocated.ie Here it is returning void * and not void(which means doesnt return anything) .

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