Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Possible Duplicate:
In C arrays why is this true? a[5] == 5[a]

  1. If p is a pointer (say int * p), then what does [p] means ? Also what does 4[p] means ? (i.e. multiplying a scalar with [p] )

  2. Suppose xyz is some data type defined by in the program. Then what does the

    void (*xyz)(void);
    

    statement mean?

share|improve this question

marked as duplicate by Jens Gustedt, Alexey Frunze, P.T., SztupY, Frank Shearar Jan 20 '13 at 16:55

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
please don't ask several questions at once and provide a proper question title. Your first question is answered in the FAQ: stackoverflow.com/questions/381542/… –  Jens Gustedt Jan 20 '13 at 12:49
add comment

4 Answers

  1. 4[p] means the same as p[4]. See e.g. http://c-faq.com/aryptr/joke.html.

  2. If xyz is already a data type, then that's an error. If not, then it's the definition of a function pointer called xyz. Assuming that you meant "void" not "coid", then cdecl.org tells us:

    declare xyz as pointer to function (void) returning void

share|improve this answer
1  
Strictly speaking, (2) asks for the meaning of the statement. I.e. something like "it's a declaration statement"... –  Kerrek SB Jan 20 '13 at 12:36
    
Also, if xyz is a data type, then the 2nd declaration statement is a syntax error. –  user529758 Jan 20 '13 at 12:38
add comment

if p is defined as int *p then

[p] is wrong! cause an error: expected expression before ‘[’ token.

Where as 0[p] is correct!

And 0[p] is same as p[0] , similarly p[4] is 4[p].

compiler convert p[4] into *(p + 4) that as *(4 + p) => 4[p]

Additionally, suppose if you have an array say int a[10], you can access elements of array either as a[i] or i[a]

following example will be useful, I think:

int main(){
    int a[5] = {1,2,3,4,5};
    int* p;  // similar declaration of p (you asked)
    p = a;
    int i= 0; 
    for(i=0; i < 5; i++){
        printf("a[i] =  %d  and i[a] = %d \n",a[i],i[a]);
    }
    printf(" using p \n"); // access using pointer.  
    for(i=0; i < 5; i++){
        printf("p[i] =  %d  and i[p] = %d \n",p[i],i[p]);
    }
}    

compile and execution:

:~$ ./a.out 
a[i] =  1  and i[a] = 1 
a[i] =  2  and i[a] = 2 
a[i] =  3  and i[a] = 3 
a[i] =  4  and i[a] = 4 
a[i] =  5  and i[a] = 5 
 using p 
p[i] =  1  and i[p] = 1 
p[i] =  2  and i[p] = 2 
p[i] =  3  and i[p] = 3 
p[i] =  4  and i[p] = 4 
p[i] =  5  and i[p] = 5 

[ANSWER-2 ]

A declaration void (*xyz)(void); creates xyz a pointer to function that returns void and arguments are void. (xyz is not a data-type but a pointer variable) e.g.

void function(void){
 // definition 
}

void (*xyz)(void);   

then xyz can be assigned address of function:

xyz = function;   

And using xyz() you can call function(), A example for void (*xyz)(void):

#include<stdio.h>
void function(void){
    printf("\n An Example\n");
} 
int main(){
    void (*xyz)(void);   
    xyz = function;    
    xyz();
}

Now compile and execute it:

:~$ gcc  x.c
:~$ ./a.out 

 An Example
:~$ 
share|improve this answer
add comment

what does [p] mean?

Nothing in itself.

Also what does 4[p] mean?

Due to pointer arithmetic, 4[p] means *(4 + p), which is, given that addition is commutative, equivalent to *(p + 4), which in turn can be written as p[4], i. e. it's the 5th element of an array pointed to by p.

If xyz is a data type, then what does void (*xyz)(void); statement mean?

It's a syntax error then.

If xyz is not a data type, then it declares xyz to be a function pointer taking and returning void (i. e. "nothing").

share|improve this answer
add comment

1) 4[p] means the same as p[4] both of which essentially mean *(p+4) which means the 5th element from the start of the array p.

2) xyz is the type of a pointer to a function that takes a no arguements and returns nothing.

typedef void (*xyz)(void);    

void func();

xyz f= func;

It could also be the function pointer itself if used in the below fashions

//imagine the above typedef is omitted.

void (*xyz)(void) = func;

void (*xyz)(void);  // uninitialized pointer.
share|improve this answer
add comment

Not the answer you're looking for? Browse other questions tagged or ask your own question.