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I want to initialize an array and then initialize a pointer to that array.

int *pointer;
pointer = new int[4] = {3,4,2,6};
delete[] pointer;
pointer = new int[4] = {2,7,3,8};
delete[] pointer;

How can I do this?

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2  
Is doing this on the heap a requirement? You didn't mention in your question. –  Brian R. Bondy Mar 26 '10 at 20:04
    
Well, I just want a way that I can update the same pointer to new arrays, but the arrays need to be initialized. So I think it has to be done on the heap, but anyway that works will make me happy. –  Alex Mar 26 '10 at 20:14
    
What's the bigger picture here? –  GManNickG Mar 26 '10 at 20:20

5 Answers 5

up vote 2 down vote accepted

Why not use

int array[4] = {3, 4, 2, 6};

Is there a reason you want to allocate memory for the array from heap?

Suggestion after comment:

int arrays[32][4] = {{3, 4, 2, 6}, {3, 4, 1, 2}, ...}
int *pointers[4];
pointers[0] = arrays[0];
pointers[1] = arrays[12];
pointers[2] = arrays[25];
pointers[3] = arrays[13];
...
pointers[0] = arrays[13];
pointers[1] = arrays[11];
pointers[2] = arrays[21];
pointers[3] = arrays[6];
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Well I'm writing a function that will have 32 arrays in it, basically the same 4 arrays but with different members. I wanted to somehow keep it to 4 arrays and re-initialize them at 8 different points in the function. –  Alex Mar 26 '10 at 20:06
    
You could just re-use those four arrays by overwriting them with the new numbers needed. –  sbi Mar 26 '10 at 20:13
    
What do you mean by "overwriting them"? –  Alex Mar 26 '10 at 20:15
    
The suggestion after comment would work, but won't that use a lot of memory the entire duration of the function? I was hoping to spread it out so the memory foot print would be lower. It's the best solution so far though. –  Alex Mar 26 '10 at 20:17
1  
Well in almost any situation, reserving 32 * 4 * 4 bytes from stack is totally acceptable. –  Tuomas Pelkonen Mar 26 '10 at 20:29
int *pointer = new int[4]{3,4,2,6};

EDIT: As pointed out in the comments, this is C++0x syntax. To do this in earlier versions, write a function that takes a stack array + size, allocates a new array on the heap, loops through the stack array populating the heap array, and then returning a pointer to the heap array.

int* foo( const int size, int *array )
{
   int *newArray = new int[size];
   for( int index = 0; index < size; ++index )
   {
      newArray[index] = array[index];
   }

   return newArray;
}

The call would look like this:

int a[] = { 1, 2, 3, 4 };
int *ptr = foo( 4, a );

It takes two lines, but it at least is easier than initializing line by line.

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5  
This is C++0x syntax. –  Johannes Schaub - litb Mar 26 '10 at 20:09
    
This doesn't seem to work for me on the g++ compiler. –  Alex Mar 26 '10 at 20:12
    
Yeah, my bad. I thought this would work pre-C++0x. –  Jordan Parmer Mar 26 '10 at 20:14
//initialize the array
int array[] = {3,4,2,6};
// initialize a pointer to that array
int *pointer = array;
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The problem with this approach is that *pointer can ONLY be used in this scope because it points to a stack variable that will be removed from the stack once scope exits. –  Jordan Parmer Mar 26 '10 at 20:13
    
Making sure your pointer points to valid data before using using it is kind of obvious, isn't it? One can definitely have pointer point to any of 'the same 4 arrays but with different members' (as Alex needs). –  Eugen Constantin Dinca Mar 26 '10 at 20:56

As others have pointed out, you can initialize non heap arrays, e.g.:

 static const int ar1[4] = { ... };
 static const int ar2[4] = { ... };

Then initialize your dynamically allocated array from the static data:

void func()
{
    int *pointer = new int[4];
    ...
    memcpy(pointer, ar1, sizeof(ar1));
    ...
    memcpy(pointer, ar2, sizeof(ar2));
    ...
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You can do something like this with a standard container and boost::assign.


std::vector vect = list_of(3)(4)(2)(6);

...

vect = list_of(2)(7)(3)(8);
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