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My default char type is "unsigned char" as set in the gcc option (-funsigned-char gcc). So arguably I can use "char" when I need "unsigned char" in the code. But i am getting warning for conversion between (char*) and (unsigned char* or signed char*):

"error: pointer targets in passing argument 1 of 'test2' differ in signedness" .

How can I avoid warning when I pass unsigned char* variable to char* (knowing that my syetem has default unsigned char as set by compiler option)?

static void test2(char* a)      //char is unsigned by deafult as set by -funsigned-char gcc option
{
}

void    test1(void)
{
        // This passes, but if i change it to unsigned char (or 'signed char') it fails   
        // I dont want it to fail for "unsigned char c" since default char is unsigned.
        char    c = 65; 
        test2(&c);
}
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Missed a point, I dont need a cast in source code, since I have to edit a huge code base at many places. –  Lunar Mushrooms Nov 15 '12 at 15:30
    
Your example code compiles without any warnings, with or without -funsigned-char using gcc (Debian 4.4.5-8) 4.4.5. –  alk Nov 15 '12 at 15:31
    
Yes , it compiles with older compiler version, but when I used with new version gcc compiler, unsigned char c = 65 will give error at test2(&c) –  Lunar Mushrooms Nov 15 '12 at 15:33
1  
The switch makes char unsigned, it doesn't make it unsigned char! The types char, signed char, and unsigned char are still different types. –  Bo Persson Nov 15 '12 at 19:11
    
@BoPersson Thanks –  Lunar Mushrooms Nov 16 '12 at 12:41

4 Answers 4

up vote 2 down vote accepted

The switches -funsigned-char and -fsigned-char do not refer to char *.

You might use -Wno-pointer-signto switch off the warning you receive.

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Use a cast:

char c = 65;   // weird magic :-(

test2((unsigned char *)(&c));

All char types are layout compatible, and casting their pointers does not constitute type punning or violate aliasing rules, so you can do this freely.

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I dont need a cast in source code, since I have to edit a huge code base at many places (my code was compiling with old compiler , but new version started to give me warnings). –  Lunar Mushrooms Nov 15 '12 at 15:32

Finally I got an answer :

-Wpointer-sign is implied by -Wall and by -pedantic . To avoid warning use -Wno-pointer-sign

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The proper solution is to pass the correct type of variable to the function, i.e. if the function expects plain char, then declare a plain char and take its address, and so on.

The C standard says that "char", "signed char", and "unsigned char" are different types. "char" must have the same behaviour as either "signed char", or "unsigned char", as determined by compiler switches, but you can't use them interchangeably. You should be writing code that works exactly the same regardless of whether you use -funsigned-char or not.

The suggestion by another poster to use a cast is not good. All that does is suppress the warning, it would be clearer to explicitly disable the warning (e.g. with a pragma, or turn the warning off globally in your makefile).

The cast doesn't fix the problem with the code, it just stops the compiler pointing it out. This is a slightly academic point, but on a non 2's complement system, signed chars may have trap representations (they are layout compatible for values 0 <= x <= CHAR_MAX but not other values). So the code could crash.

Based on the details you've given, in practical terms your best solution is probably just to disable the warning and live with the fact that the code is non-portable in this respect.

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