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I was just looking at this question:

How to assign a multi-dimensional array to a temporary variable?

The solution ended up using the lines:

int a[3][2] = {{1, 2}, {11, 12}, {21, 22}};
...
int (*b)[2] = a;

to "assign a statically allocated, multi-dimensional array to a temporary variable."

I'm a little confused about the syntax of the line:

int (*b)[2] = a;

In this instance, are the parentheses required to get the right effect, and if so, why? Is there a way to get the same result without using them?

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1 Answer 1

up vote 6 down vote accepted

This:

int (*b)[2]

declares b as a pointer to an array of two ints. This is not the same as:

int *b[2]

which declares b as an array of two pointers-to-int.

You need the first form in order to correctly perform pointer arithmetic.

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Thank you! For some reason I can never keep that straight in my mind. –  John Humphreys - w00te Nov 21 '11 at 15:52
2  
@woote: cdecl.org is worth bookmarking. –  Oliver Charlesworth Nov 21 '11 at 16:02
    
Yeah, I was just checking that out from the other question actually - it's a pretty cool tool. –  John Humphreys - w00te Nov 21 '11 at 16:27

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