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We are migrating a 32 bit application from rhel 5.3 to 6.4

We are getting an warning "Cast from pointer to integer of different size " on new system's memset.

Do (char)NULL, '\0' and 0 all mean the same thing in C's memset?

The following code is giving the warning in new environment.

#define NULLC  (char)NULL
#define MAX_LEN  11 
…
memset(process_name, NULLC, MAX_LEN + 1);
strncpy(process_name, "oreo", MAX_LEN);
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migrated from unix.stackexchange.com Jul 15 '13 at 22:15

This question came from our site for users of Linux, FreeBSD and other Un*x-like operating systems.

    
Post the line(s) of code that are causing trouble. Karlson has provided a correct answer, but it might not help you because you didn't post the relevant code. – Gilles Jul 15 '13 at 21:50
    
The following code is giving the warning in new environment. #define NULLC (char)NULL #define MAX_LEN 11 memset(process_name, NULLC, MAX_LEN + 1); strncpy(process_name, "oreo", MAX_LEN); – stany Jul 15 '13 at 22:04
1  
Any reason to define NULLC as (char)NULL? – Karlson Jul 15 '13 at 22:22
2  
Be careful with strncpy(); it very likely doesn't do what you think it does. – Keith Thompson Jul 15 '13 at 22:24
up vote 6 down vote accepted

The do not all mean the same thing, though they're likely to yield the same result.

(char)NULL converts the value of NULL, which is an implementation-defined null pointer constant, to char. The type of NULL may be int, or void*, or some other integer type. If it's of an integer type, the conversion is well defined and yields 0. If it's void*, you're converting a null pointer value to char, which has an implementation-defined result (which is likely, but not guaranteed, to be 0).

The macro NULL is intended to refer to a null pointer value, not a null character, which is a very different thing.

Your macro NULLC is not particularly useful. If you want to refer to a null character, just use the literal constant '\0'. (And NULLC is IMHO too easily confused with NULL.)

The other two constants, '\0' and 0, have exactly the same type (int) and value (zero).

(It's admittedly counterintutive that '\0' has type int rather than char. It's that way for historical reasons, and it rarely matters. In C++, character constants are of type char, but you asked about C.)

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+1 for being more explanatory :) – rohit shrivastava Jul 16 '13 at 2:42

They all have the same value 0 but they don't mean the same thing.

(char)NULL  - You are casting the value of NULL pointer to character with value 0
'\0'        - End of string character with value 0 (NUL)
0           - 32 bit integer with value 0.

You are getting a warning because somewhere in your code you're likely using something like:

short somevar = NULL;

or something similar.

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3  
The standard does NOT guarantee that "NULL" is represented as 0, though essentially all modern systems do. So '\0' and 0 are the same thing (the type of a character literal is actually int), but NULL might be different. – Lee Daniel Crocker Jul 15 '13 at 22:20

0 and '\0' are both the integer 0 (the type of a character literal is int, not char), so they are exactly equivalent. The second argument to memset is an int, from which only the low-order 8 bits will be used.

NULL is a different beast. It is a pointer type that is guaranteed by the standard to be different from any pointer to a real object. The standard does NOT say that this is done by giving it the value 0, though it must compare equal to zero. Also, it may be of different width than int, so passing it as the second argument to memset() might not compile.

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Basically correct, but imprecisely worded. "Integer" is a more general term than int. your first sentence seems to conflate them. The low-order CHAR_BIT bits of the second argument to memset are used; more precisely, the int value is converted to unsigned char. NULL is not a "pointer type"; it's a macro that expands to an implementation-defined *null pointer constant". The relative widths of a pointer and int are irrelevant to whether a call to memset will compile or not; that's determined by the types of the arguments, not their sizes. – Keith Thompson Jul 15 '13 at 22:33
    
The type of NULL is implementation-defined (either void* or some integer type), but it's always legal to cast it to char -- though it doesn't make sense to do so. – Keith Thompson Jul 15 '13 at 22:33
    
No, NULL is not always 0. (void*)0 must evaluate to NULL, and comparing a pointer with 0 must do the same thing as comparing it to NULL, but NULL does not have to be actually internally represented as 0, and some systems actually do exist that use a different one. Keith, NULL might be a long, and calling memset with a long second argument (without casting it) can error out, can it not? – Lee Daniel Crocker Jul 15 '13 at 22:43
    
An argument of any numeric type will be implicitly converted to int. (As long as the declaration is visible; if it isn't, the call is invalid anyway in C99 and higher.) You might get a warning in some cases, but a conforming compiler cannot reject the program for that reason. Calling memset with a second argument of NULL is a constraint violation (and may "error out") if NULL is of type void*. – Keith Thompson Jul 15 '13 at 22:48
    
"No, NULL is not always 0." -- Who said it was? "(void*)0 must evaluate to NULL" -- More precisely, both (void*)0 and NULL must evaluate to a null pointer value. – Keith Thompson Jul 15 '13 at 22:49

In defining NULLC, you are casting NULL from a native pointer (64-bits, probably defined as (void*)0) to char (8-bits). If you wanted to declare NULLC, you should just do

#define NULLC 0

and do away with NULL and the (char). The formal argument to memset is int, not char.

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0 = zero of int datatype
'\0' = (char)0  //null char
NULL = (void*)0 //null pointer

See how they are interlinked to each other. Gcc often gives warnings for all the typecast that are implicitly done by the compiler.

You are using

#define NULLC (char)NULL
.....
memset(process_name, NULLC, MAX_LEN + 1);

equivalent to:

memset(process_name, (char)NULL, MAX_LEN + 1);

equivalent to:

memset(process_name, '\0', MAX_LEN + 1);

You are passing char data (ie; '\0' ) as second parameter where "unsigned int" data is accepted. So compiler is converting it to unsigned int implicilty and thus giving typecast warning. You can simply ignore it or change it as:

memset(process_name, 0, MAX_LEN + 1);
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