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#include<stdio.h>
int main(void) {
int arr[3]={1,2,3};
return 0;
}

Now what will *(&arr) give me and why? I want a detailed explanation. Don't just tell me how * and & cancel out :P

I want to know how the compiler interprets this expression to give the desired result.

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2 Answers 2

up vote 6 down vote accepted

&arr creates a pointer to the array - it's of type int (*)[3], and points at the array arr.

*&arr dereferences that pointer - it's the array itself. Now, what happens now depends on what you do with it. If you use *&arr as the subject of either the sizeof or & operators, then it gives the size or address of the array respectively:

printf("%zu\n", sizeof *&arr);    /* Prints 3 * sizeof(int) */

However, if you use it in any other context, then it is evaluated as a pointer to its first element:

int *x = *&arr;
printf("%d\n", *x);    /* Prints 1 */

In other words: *&arr behaves exactly like arr, as you would expect.

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well, if i say printf(" %d ",*&arr); it just gives me the &arr[0], the address of the first element. Also when you say it creates a pointer, is it created physically? –  n0nChun Sep 5 '10 at 10:10
2  
It "creates it" in the same way that evaluating 2 + 3 "creates" the int value 5. –  caf Sep 5 '10 at 10:16

Since arr is a statically-allocated array, not a pointer variable - the expression &arr is equivalent to arr. Hence *(&arr) is actually *arr.

The thing would be different if arr was a pointer.

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arr is not equivalent to &arr. –  mhshams Sep 5 '10 at 10:10
    
This is not true. *(&arr) is the same as arr, which is manifestly not the same as *arr. –  caf Sep 5 '10 at 10:17

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