-3

What is the use of a * after new int in this code? Why can't we write 2d array without * after new int?

int *p1=new int[3];
int *p2=new int[3];

int **pData= new int*[2];
0
0

The use of the * after new int is, as you said, for the 2d array.

Without the *, it is simply a 1d array.

There is a similar question which could be useful: link

1
  • int* is a type, and new int*[2] allocates memory for an array of 2 of those. That's all. It is not a 2-dimensional array. It's the subsequent code that uses it to create a 2-d array. Jun 14 at 14:15
0

new int*[2] says to allocate storage for an array of 2 int*. There's nothing special here: int* is the name of the type being created. The code uses that array of int* to create a 2-dimensional array, but that's in the rest of the code; new int*[2] on its own is simply an array of pointers.

But, yes, you can create a 2-dimensional array directly, without that intervening layer of pointers:

int (*p)[3] = new int[2][3];

This defines p to be a pointer to an array of 3 int. And, because the new expression gives the dimension for that array, you've got a 2-dimensional array. It acts just the way you'd hope for:

p[1][2] = 7;
std::cout << p[1][2] << '\n';
-1

* is a pointer, check this answer out for an explanation of using pointers in C++

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.