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I have overloadded operator new[] like this

void * human::operator new[] (unsigned long int count){
      cout << " calling new for array with size  = " << count <<  endl  ;
      void * temp = malloc(count) ;  
      return temp ; 
}

and now calling

human * h = new human[14] ;

say sizeof(human) = 16 , but count it prints is 232 which is 14*16 + sizeof( int * ) = 224+8 .

Why is this extra space being allocated ? And where does it fall in memory ? Because when I print *h OR h[0] I get same results , so its not in beginning of memory chunk. Is it correct at all OR I am missing some thing here ?

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1  
Good question. Yet the nitpicker inside me needs to point out that you don't check for malloc() returning a null pointer. –  sharptooth Oct 25 '10 at 7:27
    
@sharptooth : u r right but that was intentional coz I wanted to focus on real question and not add too many ifs :) Ideally one needs to check for temp !=0 else throw some exception (bad_alloc kinda ) –  Manu Oct 25 '10 at 8:00
    
Extra bytes are for storing the number of bytes allocated. But where it stores is implementation dependent. –  bjskishore123 Oct 25 '10 at 8:31
    
This is clearly an abuse of operator overloading. foo[i] should mean "look up element number i in foo", not "allocate i bytes of memory". –  fredoverflow Oct 25 '10 at 9:54
    
@fredOverflow : why that's an abuse ? how else would you create array of objects on heap ? –  Manu Oct 26 '10 at 9:55

2 Answers 2

The extra space allocated is used to store the size of the array for internal usage (in practice so that delete[] knows how much to delete).

It is stored at the beginning of the memory range, immediately before &h. To see this, just look at the value of temp inside your operator new[]. The value will differ from that in &h.

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It is to store the number of objects allocated so that when you invoke delete[] proper number of objects are deleted. See this FAQ for more details.

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