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What is the difference between

 char cur_byte=*((char *)(buf+i));

and

char *b=(char *)(buf);
char cur_byte=*(b+i);

Assume: buf is a pointer to void// void *buf; and i is used as an iterator in a for loop I found this code(the first line) in a c source code which generates rabin fingerprints and because VC2010 express reported it as an error I had to replace it with the second two lines. And I am not sure if it can do the intended purpose. Plus I would be grateful if anyone can give me a hint where to get a working C++ source code for content defined chunking and fingerprint generating.

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wouldn't the first line give run time exception? –  Ankit Nov 18 '11 at 8:54
    
VC2010 says it is an error –  John Nov 18 '11 at 8:57

2 Answers 2

up vote 5 down vote accepted

In your first statement you add an integer (i is an integer type, right?) to a void*, casting to char* afterwards. Pointer arithmetic with void pointers is not defined by the C standard, because the compiler has no way to know of how much it should increment the pointer. Some compilers, however, define sizeof(void) == 1. In this case, your two snippets are equivalent, which explains why this code may have worked with another compiler (thanks Steve Jessop for pointing this).

What you meant in your first snippet was probably char cur_byte=*(((char *) buf) + i);, the character pointed by the address located i characters after buf.

In the following schema, where i==4, cur_byte would be assigned the value r.

Memory: |a| |w|o|r|d
         ^       ^
        buf     buf+i

In your second statement:

char *b=(char *)(buf);
char cur_byte=*(b+i);

you first assign buf to b, and then assign the content of b + i to cur_byte. b has type char* so adding i will give the address i characters after b.

Memory: |a| |w|o|r|d|
         ^       ^
        buf         
         b      b+i

In the end these two statements are equivalent (except for the assignment of b).

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but can u tell me why the first option is an error in VC2010 –  John Nov 18 '11 at 9:09
    
I just edited my post to reflect your edit. –  Antoine Nov 18 '11 at 9:12
2  
"Pointer arithmetic with void pointers is not defined by the C standard" - but GCC allows it as an extension in non-pedantic modes, which is probably why the error-provoking code was written in the first place. GCC's extension in effect says that for the purposes of pointer arithmetic only, sizeof(void) == 1. So all of these code snippets are equivalent in GCC. –  Steve Jessop Nov 18 '11 at 9:45
    
@SteveJessop Good point, I've added that to my answer. –  Antoine Nov 18 '11 at 9:53

The difference is in the expressions (buf + i) versus (b + i).

b is of type char* so (b + i) will point to b + sizeof(char) * i.

buf could be of a different type so (buf + i) will point to buf + sizeof(BUFS_TYPE) * i.

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Exactly (+1). And now after the type of buf has been given by John, you should extend your answer. –  undur_gongor Nov 18 '11 at 9:53

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