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Today I was writing a little Memory Profiler for my code and for the first time overloaded operator new. In doing so, I figured the syntax is void* operator new(size_t sz). This is indeed very similar to malloc where you have void* malloc(size_t sz).

This got me into thinking since when you use malloc, you need to explicitly cast the pointer back to your data type whereas for new you don't need to do this. How does the compiler figure out the correct data type for new and why do you have to make it return void *? Isn't T* operator new(size_t sz) more intuitive?

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In C you don't have to cast the return value of malloc(). In fact casting is, at best, redundant and may hide an error the compiler would have caught in the absence of the cast. –  pmg Mar 22 '12 at 23:38
    
@pmg, chill out, the question shouldn't have really been tagged with C –  Shahbaz Mar 22 '12 at 23:42
    
remember to free the data allocated by new –  Thomas Eding Mar 22 '12 at 23:43
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The cast is, at best, redundant and may hide an error the C compiler would have caught ... do T *ptr = malloc(42 * sizeof *ptr); to assign to ptr a memory address capable of holding 42 objects of type T. And remember to #include <stdlib.h>. –  pmg Mar 22 '12 at 23:57
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In C, don't cast the return value of malloc(). It is, at best, redundant and may hide an error ... –  pmg Mar 23 '12 at 0:01

4 Answers 4

up vote 4 down vote accepted

C++ separates memory allocation and object construction. The allocation function (i.e. operator new()) returns a void * to some memory, and the new operator constructs an object in that memory. If you will, the new operator "converts" memory into an object, and a placement-new expression is a bit like a "cast":

void * addr = ::operator new(sizeof(Foo));    // memory

Foo * p = ::new (addr) Foo(1, true, 'a');     // object (note: no cast!)

p->~Foo();                                    // it's almost over

::operator delete(addr);                      // now it's over!

The default, non-placement form of new performs allocation and construction in one go. It's morally equivalent to the first half of this example. But still, allocation and construction remain two distinct concepts.

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Can you please explain the difference between " operator new() " and the " new operator ". Are these two different things? Also, what does second line, Foo * p = ::new (addr) Foo(1, true, 'a');, mean? –  GradGuy Mar 22 '12 at 23:44
    
Yes, they're different. The first is a function. The second is a language construct that forms a "new expression". The value of a new expression is a pointer to a freshly constructed object. The first line of the example calls the allocation function; the second involves a new expression (in placement form). It is only when you write a default new expression that the allocation function gets called automatically, and the allocation function is the only thing you're allowed to replace (or overload per class). –  Kerrek SB Mar 22 '12 at 23:45
    
Thanks. I was not aware of that :) –  GradGuy Mar 22 '12 at 23:48

operator new is a user-overridable run-time support function for the new operator, which just provides the service of allocating a suitably aligned and sized block of memory. This function is not the new operator itself; you are not rewriting the new operator itself when you override this function, but only replacing the allocation service. The new operator can be thought of as a syntactic sugar which compiles into a call to its helper, operator new, to get the memory, plus constructor calls to initialize it, if required.

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There is a difference between operator new and the new operator. The latter creates objects of a given type, the former just allocates memory. The new operator calls operator new for the type being created, or, if no version is defined for the required type, uses the global operator new. You can't return a T* from the operator new function as that would be pointing to an object that hasn't been created yet. The object is only created once the constructor has run (and any housekeeping such as vtable creation ,RTTI information, etc).

Don't forget that you can override operator new for any class and change it's behviour - it does not need to actually allocate any memory, it just has to return a pointer to some memory. That memory could be from a pre-allocated chunk for example.

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The operator new function does not return a T* since the returned value does not point to a T but just to arbitrary junk. It's not until the constructor is called that you have a pointer to a class instance.

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I'd like to add that the operator new function does in fact call that constructor, registers the destructor for when it comes time to delete, and that all of it can be overloaded if you want to do your own memory management (i.e. for garbage collection) –  std''OrgnlDave Mar 23 '12 at 0:38

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