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The title says it all. I'm using GCC 4.7.1 (bundled with CodeBlocks) and I faced a strange issue. Consider this:

int main() {
    unsigned char a = 0, b = 0, c = 0;
    scanf("%hhu", &a);
    printf("a = %hhu, b = %hhu, c = %hhu\n", a, b, c);
    scanf("%hhu", &b);
    printf("a = %hhu, b = %hhu, c = %hhu\n", a, b, c);
    scanf("%hhu", &c);
    printf("a = %hhu, b = %hhu, c = %hhu\n", a, b, c);
    return 0;
}

For inputs 1, 2 and 3, this outputs

a = 1, b = 0, c = 0
a = 0, b = 2, c = 0
a = 0, b = 0, c = 3

If I, however, declare a, b and c as global variables, it works as expected. Why is this happenning?

Thank you in advance

Other details:

I'm running Windows 8 64 bits. I also tried with -std=c99 and the problem persists.

Further research

Testing this code

void printArray(unsigned char *a, int n) {
    while(n--)
        printf("%hhu ", *(a++));
    printf("\n");
}

int main() {
    unsigned char array[8];
    memset(array, 255, 8);
    printArray(array, 8);
    scanf("%hhu", array);
    printArray(array, 8);
    return 0;
}

shows that scanf is interpreting "%hhu" as "%u". It is directly ignoring the "hh". The output of the code with input 1 is:

255 255 255 255 255 255 255 255
1 0 0 0 255 255 255 255
share|improve this question
    
Is printing a char with a specifier for unsigned char UB? –  user1944441 Apr 5 '13 at 3:11
    
@Armin char is unsigned by default, isn't it? –  Daniel Castro Apr 5 '13 at 3:15
1  
No, it depends on platform. I can't reproduce your results. –  user1944441 Apr 5 '13 at 3:18
    
@Armin What other details would be useful? I'm using Windows.. I have not touched the default arguments for GCC in CodeBlocks. BTW, explicitly declaring the variables as unsigned char is not solving my problem :S –  Daniel Castro Apr 5 '13 at 3:21
1  
Although the subject is similar to the proposed duplicate, the discussion here is better than the discussion in the duplicate — in particular, the answer here highlights that the MSVC runtime is C89 and not C99 so using a C99 notation doesn't work reliably. –  Jonathan Leffler Apr 5 '13 at 23:05

1 Answer 1

up vote 5 down vote accepted

The important detail is that you're using Windows, and presumably an outdated or non-conforming C environment (compiler and standard library). MSVCRT only supports C89 (and even then, not entirely correctly); in particular, there was no "hh" modifier in C89, and it's probably interpreting "hh" the same as "h" (i.e. short).

share|improve this answer
    
He was pretty clear about using gcc in his question. –  Randy Howard Apr 5 '13 at 3:25
    
Changing all %hhu to %hu did print exactly as OP posted. –  user1944441 Apr 5 '13 at 3:25
4  
This is more an issue of the standard library than the compiler. If OP's gcc is using MSVCRT (which will be the case if it's "mingw") then this is definitely the issue. If you want to do modern C on Windows, the only viable option at present is Cygwin. –  R.. Apr 5 '13 at 3:26
    
I think the CodeBlocks package uses MinGW. I have no problem in switchng or updating my environment, I'm just curious about this behavior. Should I suppose it's a bug? –  Daniel Castro Apr 5 '13 at 3:30
2  
@DanielCastro: It's just that the Microsoft C standard library that provides your scanf() only supports C89, which doesn't include the hh modifier. –  caf Apr 5 '13 at 3:35

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