In the below program overloaded operator new [] is getting called. But if I comment this function then my overloaded operator new is getting called. Shouldn't It called default new [] operator?

#include <iostream>
#include <stdlib.h>
using namespace std; 

void *operator new (size_t os)
{
    cout<<"size : "<<os<<endl;
    void *t;
    t=malloc(os);
    if (t==NULL)
    {}
    return (t);
}

//! Comment This below function
void* operator new[](size_t size){
    void* p;
    cout << "In overloaded new[]" << endl;
    p = malloc(size);
    cout << "size :" << size << endl;
    if(!p){
    }
    return p;
}

void operator delete(void *ss) {free(ss);}

int main ()
{
    int *t=new int[10];
    delete t;
}
up vote 3 down vote accepted

Looking at the reference, we see:

  1. void* operator new ( std::size_t count );
    Called by non-array new-expressions to allocate storage required for a single object. […]

  2. void* operator new[]( std::size_t count );
    Called by the array form of new[]-expressions to allocate all storage required for an array (including possible new-expression overhead). The standard library implementation calls version (1)

Thus, if you overload version (1) but do not overload version (2), your line

int *t = new int[10];

will call the standard library's operator new []. But that, in turn calls operator new(size_t), which you have overloaded.

There is one difference between them. With "new" keyword, it just allocates raw memory. The result is a real live object created in that memory. If you don't call your function, new is getting called regular.

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