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Why is an unsigned char automatically promoted to an int when calling a function? In the example below there is an f(int) and a f(char) function. It seemed more logical that the compiler would coerce an unsigned char argument to a char and call f(char) since they have the same number of bits. It is calling f(int) instead, even when that means promoting the argument to a type with more bits. Any pointers to where the rule is defined? Standard or compiler/platform specific?

#include <iostream>

void f( int key )
{
    std::cout << __PRETTY_FUNCTION__ << std::endl;
}

void f( char key )
{
    std::cout << __PRETTY_FUNCTION__ << std::endl;
}

int main( int argc, char* argv[] )
{
    int a = 'a';
    char b = 'b';
    unsigned char c = 'c';

    f(a);
    f(b);
    f(c);

    return 0;
}

Produces this output:

void f(int)
void f(char)
void f(int)
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8  
All the possible values of an unsigned char can be represented by an int. They can't all be represented by a signed char. –  Carl Norum Feb 7 '13 at 7:30
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4 Answers 4

Because unsigned char cannot be represented by char. For example, if they're both 8 bits, and your unsigned char contains the value 255, that overflows the signed char - and signed integer overflow invokes undefined behavior. Anyway, printable characters are generally expected to be stored in char and not unsigned char (and C strings are of type char[] and not unsigned char[], etc.)

So the promotion to int is necessary to represent values greater than 1 << (CHAR_BIT - 1).

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2  
But note M3taSpl0it's answer below: whether char is signed or unsigned is implementation determined so, in theory, this code will vary in behaviour by compiler. –  Jack Aidley Feb 7 '13 at 11:59
    
@JackAidley Yes, it will, but in this particular example (and in most implementations) it is signed. –  user529758 Feb 7 '13 at 12:02
    
Indeed, but it is still worth noting in general –  Jack Aidley Feb 7 '13 at 12:06
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I believe the correct derivation from the Standard is based on the paragraph below, which is found section 13.3.3 Best viable functions, i.e. it's part of the (very complicated) rules for function overload resolution.

(§13.3.3.2/4) Standard conversion sequences are ordered by their ranks: an Exact Match is a better conversion than a Promotion, which is a better conversion than a Conversion. Two conversion sequences with the same rank are indistinguishable unless one of the following rules applies: [...]

Converting unsigned char to int is classified as promotion (defined in §4.5; when reading the below, note that (unsigned) char is an integer type):

§4.5 Integral promotions
[...]

(§4.5/2) A prvalue of an integer type other than bool, char16_t, char32_t, or wchar_t whose integer conversion rank (4.13) is less than the rank of int can be converted to a prvalue of type int if int can represent all the values of the source type; otherwise, the source prvalue can be converted to a prvalue of type unsigned int.

Whereas converting unsigned char to char is not classified as promotion because their ranks are identical:

(§4.13/1) [...] The rank of char shall equal the rank of signed char and unsigned char. [...]

It is classified as integral conversion (§4.7) instead, and, as described above, promotion is preferred over conversion during overload resolution.

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In C++ standard , char isn't defined to be unsigned or signed (though size is 1 byte) , so it's implementation defined. So in your implementation I believe it's signed char that's why it got promoted.

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Excellent point –  Jack Aidley Feb 7 '13 at 12:00
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int and char are just different in range in C and C++, if char it ranges from 0 to 255 and if int, it has its range like 65535 (range of int will vary with OS). So compiler just treat it as int.

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3  
char (signed) actually ranges from -128 to 127 and it is not the same as unsigned char, which ranges from 0 to 255. –  KBart Feb 7 '13 at 7:44
    
So while passing as argument, compiler distinguish between signed and unsigned? –  Pranit P Kothari Feb 7 '13 at 7:59
1  
see here for an example. It is based on ARM, but many platforms should face the same problems. Generally it is not good idea to mix them. –  KBart Feb 7 '13 at 8:11
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