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I am confused about how to create a dynamic defined array:

 int *array = new int[n];

I have no idea what this is doing. I can tell it's creating a pointer named array that's pointing to a new object/array int? Would someone care to explain?

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This is NOT the way to do it - the way to do it is to use a std::vector. –  nbt Apr 25 '11 at 8:22
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@unapersson: If a C++ programmer doesn't know what int *array = new int[n]; does, then in my opinion, its wrong advice to tell him to use std::vector. Let him know the basics first. –  Nawaz Apr 25 '11 at 8:46
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@unapersson: People like Andrew Koenig can disagree with me, but I've a question for People like Andrew Koenig : did they learn basic first, or did they start using std::vector without even knowing what new is, and how is it used? –  Nawaz Apr 25 '11 at 9:48
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@unapersson: No. I'm suggesting learning C++ basic first, before going into templates. –  Nawaz Apr 25 '11 at 9:53
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@unapersson: Even before those basics, raw arrays are basics. –  Nawaz Apr 25 '11 at 10:04

6 Answers 6

up vote 8 down vote accepted

new allocates an amount of memory needed to store the object/array that you request. In this case n numbers of int.

The pointer will then store the address to this block of memory.

But be careful, this allocated block of memory will not be freed until you tell it so by writing

delete [] array;
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int *array = new int[n];

It declares a pointer to a dynamic array of type int and size n.

A little more detailed answer: new allocates memory of size equal to sizeof(int) * n bytes and return the memory which is stored by the variable array. Also, since the memory is dynamically allocated using new, you've to deallocate it manually by writing (when you don't need anymore, of course):

delete []array;

Otherwise, your program will leak memory of at least sizeof(int) * n bytes (possibly more, depending on the allocation strategy used by the implementation).

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No, it doesn't initialise the memory with zero. And array is actually a pointer to an int, not to an array. And the memory leak will be at least the size you mentioned, but it could easily be greater. –  nbt Apr 25 '11 at 8:25
    
@unapersson: It does : ideone.com/izDXY –  Nawaz Apr 25 '11 at 8:27
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@Nawaz The reference for the C++ Language is the C++ Standard, not some bit of code that you have written that by chance happens to support your assertion. –  nbt Apr 25 '11 at 8:29
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s5.3.4/15 states "if no initialization is performed, the object has indeterminate value". Section 8.5, which specifies the default init rules, states for an array without explicit init, each element is default-init'ed. The default-init for an int (with no constructor obviously) is "no initialisation is performed". So int arrays are indeterminate. So I don't think your argument is correct, @Nawaz. –  paxdiablo Apr 25 '11 at 8:45
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@unapersson, while it may well allocate more memory than that, you cannot use any of the extra without invoking undefined behaviour. Hence, as far as you're concerned, you should assume you only have exactly what you asked for. The only time you'll run into problems is if you do a lot of small allocations so that the wastage is high. –  paxdiablo Apr 25 '11 at 9:59

The statement basically does the following:

  1. Creates a integer array of 'n' elements
  2. Allocates the memory in HEAP memory of the process as you are using new operator to create the pointer
  3. Returns a valid address (if the memory allocation for the required size if available at the point of execution of this statement)
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It allocates space on the heap equal to an integer array of size N, and returns a pointer to it, which is assigned to int* type pointer called "array"

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It allocates that much space according to the value of n and pointer will point to the array i.e the 1st element of array

int *array = new int[n];
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In C/C++, pointers and arrays are (almost) equivalent. int *a; a[0] will return (*a)

and a[1] will return (*(a + 1))

But array can't change the pointer it points to while pointer can.

new int[n] will allocate some spaces for the "array"

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