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In int (*x)[10]; x is a pointer to an array of 10 ints

So why does this code not compile:

int arr[3] ;

int (*p)[3] =arr;

But this works:

int  arr[3];

int (*p)[3] =&arr;
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2 Answers 2

up vote 10 down vote accepted

arr is an expression that evaluates to an int* (this is the famous 'arrays decay to pointer' feature).

&arr is an expression that evaluates to a int (*)[3].

Array names 'decay' to pointers to the first element of the array in all expressions except when they are operands to the sizeof or & operators. For those two operations, array names retain their 'arrayness' (C99 "Lvalues, arrays, and function designators").

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+1: I would also point out that, although of a different type, both expressions return the same pointer address. – Blagovest Buyukliev Sep 8 '11 at 14:55

It doesn't work for exactly the same reason as:

int i;
int* pi = i; // error: no conversion from int to int*
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