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For 1D array, I can use array name as a pointer and add offset to it to access each element of the array. Is there something similar for 2D arrays?

I defined a 2D array as follows

int arr[2][3] = {{1,2,3}, {4,5,6}};

int** arrPtr = arr;

but I got compiler error for the second line. Shouldn't 2D array have type int**?

I came across another thread here:

C++ Accessing Values at pointer of 2D Array

and saw this:

2dArray = new int*[size];

Could someone please tell me what int*[size] means? (size is an int, I presume).

Thanks a lot.

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while an array can decay to a pointer, array of array cannot decay to double pointer. Prefer using std::array and std::vector over C array – yngum Jun 8 '13 at 14:16
2d array and pointer to pointer have totally different memory layout. 2d array allocate continuous memory while pointer to pointer can point to noncontinuous memory, so they are not exchangable – Zang MingJie Jun 8 '13 at 14:18
Thanks, it's just sometimes I have to use arrays due to constraints.. – user2465355 Jun 8 '13 at 14:44

2 Answers 2

up vote 1 down vote accepted

A multidimensional array defined as yours is is only a single pointer, because the data is encoded in sequence. Therefore, you can do the following:

int arr[2][3]={{1,2,3},{4,5,6}};
int* arrPtr = (int*)arr;

In general, the pointer to the element at arr[a][b] can be accessed by arrPtr + a*bSize + b where bSize is the size of the first array dimension (in this case three).

Your second question relates to dynamic memory allocation - allocating memory at runtime, instead of defining a fixed amount when the program starts. I recommend reviewing dynamic memory allocation on before working with dynamically allocated 2D arrays.

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Thanks! I just realized the syntax of int*[size] isn't an int multiplied by [size], but an array of pointers.. – user2465355 Jun 8 '13 at 14:41

int* array[10] means an array of 10 pointers to integer.

You can access a 2D array with a simple pointer to its first entry and do some maths exploiting the spacial location principle.

int array[2][2] = {{1,2}, {3, 4}};
int* p = &array[0][0];
for(int i=0; i<2*2; i++)
   printf("%d ", *(p++));

If you have a matrix:

 1 2
 3 4

in memory it is encoded as 1 2 3 4 sequentially ;)

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Great, that's what I'm looking for, thanks! :) – user2465355 Jun 8 '13 at 14:43
@user2465355: here on SO the best thanks is to accept one's answer clicking on the tick here above :P but I'm glad to have been useful – Rob013 Jun 8 '13 at 16:56

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