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I just read an excellent post, Portable Fixed-Width Integers in C, everything makes perfect sense till the almost the end, I am wondering what does the following paragraph means:

Of course, if you don't have a C99-compliant compiler yet you'll still have to write your own set of typedefs, using compiler-specific knowledge of the char, short, and long primitive widths. I recommend putting these typedefs in a header file of your own design and adding the anonymous union declaration shown in Listing 2 to a linked source module to check their sizes; that is, to gently "remind" whomever might someday have the task of porting your code.

static union
{
    char   int8_t_incorrect[sizeof(  int8_t) == 1];
    char  uint8_t_incorrect[sizeof( uint8_t) == 1];
    char  int16_t_incorrect[sizeof( int16_t) == 2];
    char uint16_t_incorrect[sizeof(uint16_t) == 2];
    char  int32_t_incorrect[sizeof( int32_t) == 4];
    char uint32_t_incorrect[sizeof(uint32_t) == 4];
};

Listing 2. This anonymous union allows a compiler to detect and report typedef errors

I experimented a small program:

typedef unsigned char  int8_t;
typedef unsigned short int16_t;

union u {
    char int8_incorrect[sizeof(int8_t)==1];
    char int16_incorrect[sizeof(int16_t)==2];
};


int main() {
    return 0;
}

There is no issue going through compiler. I changed int8_t into the following:

typedef unsigned int  int8_t;

There is no issue either.

Basically I missed the point why this example code can detect error.

Could you clarify what I missed?

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Did you compile with full error reporting on? – larsmans Feb 26 '12 at 22:00
    
Btw., assuming that e.g. sizeof(int16_t) == 2 is not portable. On some embedded systems, sizeof(int16_t) == 1. – larsmans Feb 26 '12 at 22:04
    
I think it needs to be tweaked so the sizes turn to a number less than zero. Perhaps something more like: [1 - 2 * (sizeof(xxx)==yyy)] – David Schwartz Feb 26 '12 at 22:08
up vote 1 down vote accepted

If you compile with gcc add -std=c89 -pedantic or -std=c99 pedantic to your gcc compile options to get the warning with this typedef and the union type:

typedef unsigned int  int8_t;

For this typedef:

typedef unsigned char int8_t;

it is normal you don't get any warning, as the trick is to check the size of type, not wether it is a signed or unsigned type.

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That is it. After using -std=89 and -pedantic, I get the warning: warning: ISO C forbids zero-size array 'int8_incorrect' – my_question Feb 27 '12 at 2:06

My understanding is that arrays of length 0 are disallowed by the C standard. If you write sizeof(int8_t) == 1 as the array length, and sizeof(int8_t) is not 1, the comparison will evaluate to 0, and you will have an illegal array size.

However, the following link shows that GCC does allow zero-length arrays:

http://gcc.gnu.org/onlinedocs/gcc/Zero-Length.html

...so if you are using GCC, that might be the reason you didn't get an error.

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