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How do I explain the following behavior?

#include<iostream>

using namespace std;

int main(){

       unsigned char a = 8;

       cerr << "a: " << (int)a << '\n';

       unsigned char b = (~a) >> 6;

       cerr << "b: " << (int)b << '\n';

       unsigned char c = (~a);
       c = c >> 6;

       cerr << "c: " << (int)c << '\n';

       return 0;
}

Output:

a: 8
b: 255
c: 3

After further testing it seems that (~a) becomes an int rather than unsigned char. This is why the 1's get shifted in.

What's going on?

EDIT: My compiler is just standard gcc 4.1.2

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3 Answers 3

up vote 21 down vote accepted

All arithmetic and bitwise operators in C always widen their arguments to at least int if they were originally shorter integral types. That's just how the language is defined. The language specification calls this the "integral promotion".

(The underlying reason for this is to make it easier to implement C on architectures where the hardware does not support efficient operations on shorter quantities than a full machine word. Of course, it's also partly just because it has always worked that way and cannot be changed without breaking a lot of existing code that depends on this behavior).

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2  
The word "promotion" should be mentioned in the answer. –  unkulunkulu Aug 28 '11 at 5:50
    
Is there a C standard reference for this? I'd be very interested in the entire section about this. –  Eli Iser Aug 28 '11 at 5:51
    
C++03 §5.3.1/9: "The operand of ~ shall have integral or enumeration type; the result is the one’s complement of its operand. Integral promotions are performed. The type of the result is the type of the promoted operand." –  Adam Rosenfield Aug 28 '11 at 5:53
2  
And C99 §6.5.3.3/4: "The result of the ~ operator is the bitwise complement of its (promoted) operand (that is, each bit in the result is set if and only if the corresponding bit in the converted operand is not set). The integer promotions are performed on the operand, and the result has the promoted type. If the promoted type is an unsigned type, the expression ~E is equivalent to the maximum value representable in that type minus E." –  Adam Rosenfield Aug 28 '11 at 5:55
    
See also C99 §6.3 Conversions: Several operators convert operand values from one type to another automatically. This subclause specifies the result required from such an implicit conversion, as well as those that result from a cast operation (an explicit conversion). The relevant part of the section covers 4 pages of the standard. –  Jonathan Leffler Aug 28 '11 at 7:43

~a = 0xFFFFFFF7, so b = (~a) >> 6 results in b = 0xFF; In case of c we have c = (~a); resulting in c = 0xF7, therefore c>>6 will be 3. Henning Makholm explains integer promotion nicely above. This article is also useful.

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a = 8

~a = -9 (int)

~a >> 6 = -1 (int)

(unsigned char)-1 = 255
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