5

I have following code snippet in understanding the working of pointer to character array of specific length, with the following sample code.

#include <stdio.h>
int main(){

    char sports[5][15] = {

            "cricket",
            "football",
            "hockey",
            "basketball"
    };

    char (*sptr)[15] = sports;

    if ( sptr+1 == sptr[1]){

        printf("oh no! what is this");
    }

    return 0;
}

How sptr+1 and sptr[1] can be equal?As the first one means to increment the address,which is stored in sptr by one and the second one means to get the value at address stored in sptr + 1.

6
  • I can't get GCC (nor Clang) not to warn about the type mismatch (a compiler conforming to any C standard has to warn and even gcc -traditional does). Which compiler did you use? – mafso Feb 21 '15 at 15:38
  • @mafso i am using code blocks – OldSchool Feb 21 '15 at 15:51
  • That's an IDE, not a compiler. Gcc, Clang, MSVC are compilers, for example. – mafso Feb 21 '15 at 15:58
  • Its GNU Gcc , default one – OldSchool Feb 21 '15 at 16:17
  • So you got a warning (or even an error with e.g. -pedantic-errors or -Werror). Why didn't you post it? Did you understand the warning? Searched for the warning? Technically, the code shown here is simply invalid and may even not compile. (Though the question and the answers given still apply for e.g. if ((char *)(sptr+1) == (char *)sptr[1]), which is valid code with well-defined semantics.) – mafso Feb 21 '15 at 17:12
7

sptr is a pointer to array of 15 chars. After initializing it with sports, sptr is pointing to first element of sports array which is "cricket".

sptr + 1 is pointer to second element of sports which is "football" and sptr[1] is equivalent to *(sptr + 1) which is pointer to first element of "football", i.e,

sptr + 1 ==> &sports[1] 
sptr[1]  ==> &sports[1][0]   

Since pointer to an array and pointer to its first element are both equal in value, sptr+1 == sptr[1] gives true value.

Note that the although sptr+1 and sptr[1] have same address value their types are different. sptr+1 is of type char (*)[15] and sptr[1] is of type char *.

8
  • but how *(sptr + 1) is a pointer it should be the value of second element of string football that is f? – OldSchool Feb 21 '15 at 12:26
  • It is explained in detailed in the linked answer with this answer. Read that answer and if you find any difficulty then I am here. – haccks Feb 21 '15 at 12:30
  • i understand it better now, but please explain me about the third exception of how array are not decayed into pointer when we have string literals. – OldSchool Feb 21 '15 at 12:55
  • @Rouftantical; Is that "exception" written there? – haccks Feb 21 '15 at 13:02
  • i mean to say "except" – OldSchool Feb 21 '15 at 13:04
1

While dereferencing the pointer compiler will do like this,

a[i] ==  *(a+i);

You can verify that using the printf statement.

printf("%p\n",sptr[1]);
printf("%p\n",sptr+1);

Refer this link.

2
  • yes man look that's my question sptr[1] means *(sptr+1) then how it is equal to (sptr+1)? – OldSchool Feb 21 '15 at 12:23
  • 1
    Well you edited your question but it seems that you are also confused with that comparison. The above comparison is not equal to 'c' == 'c'. That's a pointer comparison. – haccks Feb 21 '15 at 12:33

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