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Does name of a 2D array give its base address in C like in 1D array? And how can i store the base address of a 2d array in a pointer variable?

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It decays to a pointer to the first element:

int a[5][7];

decays to

int (*pa)[7] = a;

In practice, the value stored in pa will be the same as that of a pointer to the first int element of a, but the correct way to get a pointer to the first element of a is to use

int *p_elm = &(a[0][0]);

or equivalently

int *p_elm = &(pa[0][0]);

However, note that a pointer to the first element can't (strictly) be treated as a pointer to the beginning of a N*M array; see e.g. http://www.lysator.liu.se/c/c-faq/c-2.html#2-11

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A 2D array is essentially a 1D array, where each element itself is an array.

The name of the array is equivalent to &arrayName[0].

Assigning a pointer to this address is same as always, something like:

int myArray[5][5];
int (*arrayptr)[5] = myArray;

This says arrayptr is a pointer to an array of 5 integers. Since myArray is an address to the first element, which is an int[5], our declaration is fine.

When you dereference this pointer however, you're going to get the first element, which is an array. Therefore you can do something like:

(*arrayptr)[3]; // parens necessary for precedence issues

to access the 3rd element in the array nested inside the first element of the "outer array". It is the equivalent of

myArray[0][3];

What's happening is you're dereferencing arrayptr which will yield a 1D array (of size 5 in this case).. then you're asking for the 4th element of this 1D array.

Now, if what you're looking for is the top-left "corner" of the matrix, you will want:

int *topleft = &(myArray[0][0]);
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Yes and you the store the address as:

int *p = &a[0][0];
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Use the address of operator to point to the offset of base.

char base[2][2];
int *basepointer = &base;
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