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What is the difference between these two statements:

void (*p) (void *a[],int n)

and

void *(*p[]) (void *a, int n)
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9  
cdecl.org –  Chris Lutz Dec 23 '10 at 9:02
    
Smells like homework ? –  Paul R Dec 23 '10 at 9:04
    
so both are syntactical erroneous? –  Robert Dec 23 '10 at 9:12
    
i dont think so..can you give some reason.. –  algo-geeks Dec 23 '10 at 9:13
    
@Robert, @prp - cdecl is an odd tool, and perhaps I should have offered some more explanation. For cdecl to parse these declarations, you need to type explain in front of it, and remove the names of the arguments (a practice I do with function pointers anyway, but which C should normally parse perfectly fine). cdecl doesn't like them for no good reason I know of, but will give you the right answer if you take them out. –  Chris Lutz Dec 23 '10 at 9:16

3 Answers 3

up vote 7 down vote accepted
$ cdecl
void (*p) (void *a[],int n);
declare p as pointer to function that expects (a as array of pointer to void, n as int) returning void;
void *(*p[]) (void *a, int n);
declare p as array of pointer to function that expects (a as pointer to void, n as int) returning pointer to void;
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Does your cdecl handle parameter names, or did you just edit the I/O to be nicer to read? And if the former, where can I find a copy of this? –  Chris Lutz Dec 23 '10 at 9:20
3  
The former. packages.debian.org/cutils –  ephemient Dec 23 '10 at 9:22

there is beautiful way of comprehending such type of complex declaration in Expert_C_Programming_Deep_C_Secrets_by_Peter_van_der_Linden on page 71.

According to him :

Declarations in c are boustrophedonically, i.e alternating right-to-left with left-to-right. Have a look at this snapshot

How-to-read-c-declaration

The ebook is available on google if you know how to download it.

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void (*p) (void *a[],int n) p is the variable name. Remove p from the above line void ( * )(void *a[],int n) . So p is of this type. This is a pointer of a function. So p is a pointer to the function with that signature. So p is a pointer to a function which return void and takes array of 'void pointers' and int as the parameter.

void *(*p[]) (void *a, int n) [] has more precedence than *. So p is an array. remove p[] the above. So p is an array of void( * )(void *a[],int n)

So here p is an array of pointers to function which return void and takes array of 'void pointers' and int as the parameter.

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Please stop linking to your website in your answers. Your answer should be as succinct as possible, adding a self-promoting link adds nothing to the answer. –  meagar Feb 8 '13 at 16:20

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