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Why does printing a null char ('\0', 0) with %s prints the "(null)" string actually?

Like this code:

char null_byte = '\0';
printf("null_byte: %s\n", null_byte);

...printing:

null_byte: (null)

...and it even runs without errors under Valgrind, all I get is the compiler warning warning: format ‘%s’ expects argument of type ‘char *’, but argument 2 has type ‘int’ [-Wformat] (note: I'm using gcc 4.6.3 on 32bit Ubuntu)

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"%s" expects char * or char[...] the OP passes char. –  alk Dec 3 '12 at 10:46
    
I suspect that on 64bit valgrind would proclaim reading invalid bytes, as an 8bytes sized pointer would be grabbed from the stack, whereas only 4 (sizeof(int)) had been passed in. On 32bit sizeof(char*) is equal sizeof(int). –  alk Dec 3 '12 at 10:49
    
@alk: Quite possible, on LP64. The OP passes a char but this is promoted to int. –  MSalters Dec 3 '12 at 10:50
    
So, do you observer this on a 32 or 64bit OS? –  alk Dec 3 '12 at 10:53

5 Answers 5

up vote 4 down vote accepted

It's undefined behavior, but it happens that on your implementation:

  • the int value of 0 that you pass is read by %s as a null pointer
  • the handling of %s by printf has special-case code to identify a null pointer and print (null).

Neither of those is required by the standard. The part that is required[*], is that a char used in varargs is passed as an int.

[*] Well, it's required given that on your implementation all values of char can be represented as int. If you were on some funny implementation where char is unsigned and the same width as int, it would be passed as unsigned int. I think that funny implementation would conform to the standard.

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nice to know that it actually comes from printing a null pointer via %s ...didn't knew about varargs weirdness though, I'll look deeper into it sometime –  NeuronQ Dec 3 '12 at 10:43

Well, for starters, you're doing it wrong. '\0' is a character and should be printed with %c and not %s. I don't know if this is intentional for experimentation purposes.

The actual binary value of \0 is, well, 0. You're trying to cast the value 0 to a char * pointer, which would result in an invalid reference and crash. Your compiler is preventing that with a special treatment of the %s value.

Valgrind won't catch it because it runs on the resulting binary, not the source code (you'd need a static analyzer instead). Since the compiler has already converted that call into a safe "null pointer" text, valgrind won't see anything amiss.

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s/compiler/standard library/ –  Potatoswatter Dec 3 '12 at 10:37
    
@Potatoswatter not really - isn't it undefined behavior to try to dereference a null pointer? The compiler is then free to "intercept" that in any way... –  Mahmoud Al-Qudsi Dec 3 '12 at 10:39
    
ok, that explains a lot, though it's not very helpful what the compiler does for me - it actually prevents me from catching an error with Valgrind. and yes, what I was doing was trying to break a program on purpose and see what kind of error messages Valgrind gives, and here, to my surprise, it didn't find any errors –  NeuronQ Dec 3 '12 at 10:47
    
if I could mark 2 answers I'd choose yours too for the reasoning behind why Valgrind didn't catch this –  NeuronQ Dec 3 '12 at 10:50
    
@MahmoudAl-Qudsi Unless the compiler has an internal implementation of printf, which I doubt, it's just passing the value to the printf function. It's not being cast to (char *) since the compiler doesn't know it's supposed to be a char * (well, it does, so it can print a warning, but it's not allowed to act on that knowledge other than the warning). It's being promoted to an int, since that's what varargs is supposed to do. The compiler hasn't converted anything to any "safe 'null pointer' text". –  Art Dec 3 '12 at 14:21

null_byte contains 0. When you use %s in printf, you are trying to print a string, which is an adress of a char (a char *). What you do in your code, is that you are passing the adress 0 (NULL) as the adress of your string, which is why the output is null. The compiler warned you that you passed the wrong type to the %s modifier. try printf("null_byte: %s\n", &null_byte);

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Your printf statement is trying to print a string and is therefore interprets the value null_bye as a char * that has the value null. Take heed of the warning. Either do this

printf("null_byte: %s\n", &null_byte);

or this

printf("null_byte: %c\n", null_byte);
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Because printf is variadic, the usual argument promotions are performed on null_byte so it gets promoted (cast) to int, value 0.

printf then reads a char * pointer, and the 0 int is interpreted as a null pointer. Your C standard library has a feature that null strings are printed as (null).

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