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I've seen a very strange code snippet and i am not quite sure if i understood it right:

#include <stdio.h>

int main(char *argc, char **argv)
{
   char a[50];
   *(char *) (a + 2) = 'b'; // <== THE LINE WHICH CONFUSES ME

   printf("value: %c\n", a[2]);
   return 1;
}

Is it right that we go 2 buckets further cast the 'b' into a pointer to the b and then dereference it?

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You already have some good answers. Just remember that with the C language you can enjoy the advantages of safe coding and pointer arithmetic - just choose which one you want :) –  Daniel Daranas Jan 24 '12 at 15:14
1  
The argc argument really should be int. There are computers out there where int and char* have different representations rendering your program behaviour very undefined. Also you don't use argc or argv for anything, so the simplest thing to do is to not declare them at all: int main(void) { /* ... */}. And one more also is that the return value of 1 can be interpreted differently by different Operating Systems. Prefer return 0; or return EXIT_SUCCESS; or return EXIT_FAILURE;. –  pmg Jan 24 '12 at 15:16
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5 Answers

That's exactly equivalent of

*(a + 2) = 'b';

The cast is unnecessary.

All it does is add two to the array-which-decays-to-a-pointer a, dereference the resulting pointer, and assign the character 'b' to that memory location.

When a is a pointer, the code a[x] is exactly equivalent of *(a + x). So in your case, *(a + 2) = 'b' is exactly the same as a[2] = 'b'.

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*(char *) (a + 2)

is equivalent to

a[2]

By definition, a[2] is *(a + 2). The value of a + 2 is already of type char * so a cast of a + 2 to char *, as is (char *) (a + 2), is a no operation.

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Although casts between pointer types in C (and C-style casts between pointer types in C++?) are always no-ops :) –  Seth Carnegie Jan 24 '12 at 15:16
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 *(char *) (a + 2) = 'b'; // <== THE LINE WHICH CONFUSES ME

This line literally means the very same as

a[2] = 'b'

The first cast (char*) is redundant, since a is already of type char. And indexing in fact translates to addition and dereferenciation, i.e.

a[n] === *(a + n)

A little known fact about C: You could write as well

n[a]

and get the same result.

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You aren't casting the 'b'.

You cast (a+2) to char* (Which does nothing, since it's already char*), deference it, and put there 'b'.

And yes, it is right that we go 2 buckets further.

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No, you treat a as a pointer, increment it by two, then cast it to (char*) (useless cast, it already is char*), dereference it and then store 'b' into that.

It is exactly the same as this:

a[2] = 'b';
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