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I want to use malloc as it's memory assignment happens in O(1) rather than O(n) with the following code:

MyQuickInitArray(int size)
{
    A = new T[size];
}

When A is of type:

T* A

I thought initializing an array of pointers will take O(1) because pointers are primitives but i doubled checked and the code above actually goes size times to the constructor of T. If this problem can be avoided by either malloc or something that i'm missing than it would be great.

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1  
With malloc you then have not initialised your objects, is that really what you want? –  tune2fs Jan 27 '13 at 12:28
    
@tune2fs yes exactly –  Tom Jan 27 '13 at 12:29
    
And very often ::operator new is built above malloc –  Basile Starynkevitch Jan 27 '13 at 12:29
4  
You are not allocating an array of pointers, you are allocating an array of objects of type T –  sashoalm Jan 27 '13 at 12:29
    
Why do you NOT want to run the constructor for your objects? What type is T? –  Mats Petersson Jan 27 '13 at 12:33

4 Answers 4

up vote 1 down vote accepted

I thought initializing an array of pointers will take O(1)

You are not allocating an array of pointers, you are allocating an array of objects of type T with your code:

T *A = new T[size];

to allocate an array of pointers you need

typedef T *T_Ptr;
T_Ptr *A = new T_Ptr[size];

I'm using a typedef so that the syntax is cleaner.

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isnt this object an array of pointers of type T? : T* A –  Tom Jan 27 '13 at 12:33
    
@Tom No. It's an array of objects of type T. See my edit. I've added the code that will allocate an array of pointers. –  sashoalm Jan 27 '13 at 12:34

As you correctly point out, new T[n] calls the constructors, whereas malloc() doesn't.

  • If you don't want to call the constructors (why?), then clearly new[] isn't right for you.
  • If, however, you do want to have the constructors called, then there is no way to get around the o(n) complexity.

If what you're looking for is an array of pointers to T, the correct syntax is as follows:

T** A = new T*[size];

This will not call T's constructor.

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If you have allocated space for your objects you can properly initialize them using C++'s "placement new" operator; in this case new is not allocating memory however it will call the constructor. http://www.cplusplus.com/forum/general/55150/ has an example, but generally you do not want to do this, you want to allocate your objects in a non-time-critical portion of your program instead.

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Again, this is O(n) for the number of objects created, since each object has to be "constructed". –  Mats Petersson Jan 27 '13 at 12:33
    
@MatsPetersson of course the construction will be O(n), that can't be avoided. However allocation is not fast, and depending on what the constructor does, a single allocation could potentially take significantly more time than a (basic) constructor. This means that if done properly, performing a single allocation could reduce the actual time of this problem significantly, even though O(1)+O(n) still == O(n). –  mah Jan 28 '13 at 12:06
    
However, the allocation in new [] is done as one allocation - usually by calling malloc or some common subfunction that both standard operator new and malloc use to "get" memory. The overhead we talk about in this subject is the construction overhead, not the calling of new vs. malloc (which is still O(1) no matter how you turn it [at least in reference to how many new/malloc calls do we get, there may be characteristics of "malloc" or "new" that depend on, for example, how many free blocks there are in the system, so technically speaking, malloc/new isn't always O(1) - for another time].. –  Mats Petersson Jan 28 '13 at 12:17

What about overloading the new

void* class_name::operator new(size_t size)
{
      cout<<"Allocating memory for object \n";
      void *p;
      p=malloc(size);
      if(p==NULL)
      cout<<"Memory allocation error\n\a";
      else
      return p;
      }

For array

void* class_name::operator new[](size_t size)
{
      cout<<"Allocating array of size "<<size<<endl;
      void *p;
      p=malloc (size);
      if(p==NULL)
      {
                 cout<<"Memory allocation error \n";
                 }
      return p;
      }

How it is used :

Class_name *objptr1,*objptr2;
objptr1=new class_name(10);
objptr2=new class_name[10];
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I think the purpose is to avoid calling the constructor - which is nod done by calling operator new on the class. –  Mats Petersson Jan 27 '13 at 12:32
    
@MatsPetersson sorry not getting you, you mean don't want to call any function at all ? –  Arpit Jan 27 '13 at 12:34
    
My understanding - and some others' - is that O(n) comes from calling the constructor, not allocating the memory itself [I'm fairly sure that the memory allocation is actually O(1), as it is allocated as one block - otherwise you wouldn't be sure to have a contiguous block of memory!]. –  Mats Petersson Jan 27 '13 at 12:36
    
The title of this Question is misleading. –  Arpit Jan 27 '13 at 12:38

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