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#include<stdio.h>
void main() {
 int s[4][2]={
               {1,2},
               {3,4},
               {5,6},
               {7,8}
             };
int (*p)[2]; // what does this statement mean? (A)
int i,j,*pint;

for(i=0;i<=3;i++) {
 p=&s[i];
 pint=(int*)p;  // what does this statement mean? (B)
 printf("\n");
  for(j=0;j<=1;j++) {
    printf("%d",*(pint+j));
  }
}

I cannot understand Statement 'A' and 'B' .How and what has been done? please explain this very clearly.

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Tag homework questions please. –  Lightness Races in Orbit Apr 3 '11 at 14:45

4 Answers 4

up vote 5 down vote accepted

Statement A is a declaration

int (*p)[2];
      ^      p is
int (*p)[2];
     ^       p is a pointer
int (*p)[2];
        ^    p is a pointer to an array
int (*p)[2];
         ^   p is a pointer to an array of 2
int (*p)[2];
^^^          p is a pointer to an array of 2 int

Statement B is an assignment expression with an embedded cast

pint=(int*)p;
           ^  take the value in p (of type "pointer to array of 2 ints")
pint=(int*)p;
     ^^^^^^   take the value in p, convert it to 'pointer to int'
              even if it doesn't make sense to do so
pint=(int*)p;
^^^^^         take the value in p, convert it to 'pointer to int'
              and put the resulting value (whatever that may be) in pint

Casts are bad. Avoid casts as much as possible.
(*) except in very particular circumstances like <ctype.h> or variadic functions or ...

share|improve this answer
    
@ pmg Casts are bad. Don't ever(*) use casts. why? –  saplingPro Apr 3 '11 at 14:57
    
@Meprogrammer: the compiler has a method for converting between values of different types. It's called 'implicit conversion'. When you cast, you effectively tell the compiler to NOT DO its job and leave the conversions to you. Very, very often, the compiler knows much better than the programmer what conversions are appropriate. –  pmg Apr 3 '11 at 15:08
    
@ pmg i thought you stressed on (*) casts –  saplingPro Apr 3 '11 at 15:13
    
No, no. I meant casts in general. They are bad whether they deal with pointers or not. –  pmg Apr 3 '11 at 15:17
    
"Don't ever use casts, except that there are so many situations in which you should use casts that I can't even list them". I don't think this is useful advice. Perhaps, "prefer to avoid casts"? In this case, pint = &((*p)[0]); means "make pint point to the first element of the array pointed to by p", which is what is wanted. –  Steve Jessop Apr 3 '11 at 18:29
int (*p)[2];

This means that p is a pointer to an array of 2 int values.

pint=(int*)p;

This means that pint is assigned the value of p. Since p is a pointer to an array of ints, this means that pint now points to the first int of that array.

Update:

To help you read C or C++ declarations (like statement A above) you can use these two rules:

  1. Start from inside the parentheses, working your way outside
  2. Read from the right going to the left

You can also use the online tool http://www.cdecl.org to help you while learning. Paste something into it and see what comes out.

Second update:

(int*) in the context of statement B is a cast.

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@ Jon what does (int*) do? –  saplingPro Apr 3 '11 at 14:44
    
Oh boy. Let it begin. –  Lightness Races in Orbit Apr 3 '11 at 14:46
    
@Meprogrammer: Check out the updates. –  Jon Apr 3 '11 at 14:49
    
very good tool to help learning.Thankyou –  saplingPro Apr 3 '11 at 15:21

'A' declares a pointer to an array of 2 elements, or in other words, a pointer to int[2].

'B' converts the array pointer into a pointer an int*.

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A: p is a pointer to an array of 2 integers. B: Well, just the line before B, p is now pointed to the beginning of s. And, at B, pint is assigned to point to the same place as p. So it can be use later on (2 lines later).

Hope this help.

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