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What is the type of &a in the following code?

char a[100];
myfunc(&a)

Is this even valid code? gcc -Wall complains about missing prototype but will otherwise generate code as if myfunc(a) was written.

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1 Answer

up vote 15 down vote accepted

The type of &a in that code is char (*)[100], which means "pointer to array of 100 chars".

To correctly prototype myfunc to take that argument, you would do it like so:

void myfunc(char (*pa)[100]);

or the completely equivalent:

void myfunc(char pa[][100]);

Addendum:

In answer to the additional question in the comments:

  1. Yes, you would use (*pa)[0] or pa[0][0] within myfunc to access the first element of the array.

  2. No, &a (and thus pa) contain the address of the array. They do not contain the address-of-an-address. It should be obvious that the address of an array and the address of its first element are the same - the only difference is the type. Thus (void *)&a == (void *)a is true, and (void *)pa == (void *)pa[0] is also true, even if this seems a little unintuitive.

Consider these two declarations:

char (*pa)[100];
char **ppc;

Now, even though pa[0][0] and ppc[0][0] are both of type char, the types of pa and ppc are not equivalent. In the first case, the intermediate expression pa[0] has type char [100], which then evaluates to a pointer to the first element in that array, of type char *. In the second case, the intermediate expression ppc[0] is already a char *.

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So in myfunc one would have to use (*pa)[0] or pa[0][0] to access the first element of the array? That means pa has the address of a memory location where the address of a[0] is stored. –  nimrodm Nov 30 '09 at 9:33
    
I'll update my answer to answer that. –  caf Nov 30 '09 at 9:36
    
+1 for the addendum. –  int3 Nov 30 '09 at 10:24
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