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I've tried looking but I haven't found anything with a definitive answer. I know my problem can't be that hard. Maybe it's just that I'm tired..

Basically, I want to declare a pointer to a 2 dimensional array. I want to do it this way because eventually I will have to resize the array. I have done the following successfully with a 1D array:

int* array;
array = new int[somelength];

I would like to do the following with a 2D array but it won't compile:

int* array;
array = new int[someheight][somewidth];

The compiler gives me an error stating that ‘somewidth’ cannot appear in a constant-expression. I've tried all sorts of combinations of ** and [][] but none of them seem to work. I know this isn't that complicated...Any help is appreciated.

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4 Answers 4

up vote 5 down vote accepted

Read up on pointer syntax, you need an array of arrays. Which is the same thing as a pointer to a pointer.

int width = 5;
int height = 5;
int** arr = new int*[width];
for(int i = 0; i < width; ++i)
   arr[i] = new int[height];
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2  
Did you try this? It doesn't compile (if height and width are both variables) –  Paul Oct 11 '10 at 7:32
    
Yes I have tried this and still get the same error with the compiler. it will say that "‘width’ cannot appear in a constant-expression" –  vince88 Oct 11 '10 at 7:32
    
If I were to access an element of this array would it just be arr[width][height]? –  vince88 Oct 11 '10 at 7:47
    
@user391369 correct. –  cpx Oct 11 '10 at 7:50
    
Awesome. Thanks for the help. –  vince88 Oct 11 '10 at 7:54
const int someheight = 3;
 const int somewidth = 5;

 int (*array)[somewidth] = new int[someheight][somewidth];
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2  
Unlike the other answers here, this one actually answers the question, which was how to declare a pointer to a multidimensional array - not a jagged array. This is an important differentiation for performance-sensitive applications. It works if "somewidth" is a constant, and only the "someheight" changes. If you look at how this 2D array is laid out in memory - it's all together and contiguous, with no more than the single "new" memory allocation done. The answer by Alexander Rafferty is also good if the width is also dynamic. The other answers are slow because they do a ton of mallocs... –  James Johnston Jan 14 at 16:03

A ready to use example from here, after few seconds of googling with phrase "two dimensional dynamic array":

int **dynamicArray = 0;

// memory allocated for elements of rows. 
dynamicArray = new int *[ROWS];

// memory allocated for  elements of each column.  
for( int i = 0 ; i < ROWS ; i++ ) {
    dynamicArray[i] = new int[COLUMNS];
}

// free the allocated memory 
for( int i = 0 ; i < ROWS ; i++ ) {
    delete [] dynamicArray[i];
}
delete [] dynamicArray;
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This is an array of arrays, not really a 2D one. –  Alexander Rafferty Oct 11 '10 at 7:38
3  
@Alexander Rafferty: I see -- what is the difference between "array of arrays" and "2D arrays'? –  Arun Oct 11 '10 at 7:45
1  
@ArunSaha, this is old, but to answer your question and for anyone else that stumbles across this, a 2-D array is contiguous in memory; a dynamic array of dynamic arrays is contiguous in the first dimension, but each array in the second dimension is stored separately –  Stephen Lin Mar 14 '13 at 3:08
    
@Stephen Lin: Appreciate your explanation! Say there is a also int staticArray[ ROWS ][ COLUMNS ];. Also assume that there is a function printArray( int arr[ ROWS ][ COLUMNS ] ) which access and prints all the elements as arr[ i ][ j ]. One could pass either staticArray or dynamicArray to that function and it would work, correct? There is structural difference and your point is valid. However, since there is no behavioral difference, I tend to consider the difference as a implementation detail. –  Arun Mar 14 '13 at 22:49
    
@ArunSaha, no that's the point, you can pass int[N] (array of N integers) as int * (pointer to integer) but you can't pass int[R][C] (array of R of array of C integers) as an int ** (pointer to pointer to integer); there is no implicit conversion and if you cast it to make it work you'll corrupt memory; int [R][C] decays to int (*)[C] (pointer to array of C integers) instead...see this answer –  Stephen Lin Mar 14 '13 at 22:54

I suggest using a far simpler method than an array of arrays:

#define WIDTH 3
#define HEIGHT 4

int* array = new int[WIDTH*HEIGHT];
int x=1, y=2, cell;
cell = array[x+WIDTH*y];

I think this is a better approach than an array of an array, as there is far less allocation. You could even write a helper macro:

#define INDEX(x,y) ((x)+(WIDTH*(y)))

int cell = array[INDEX(2,3)];
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