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I recently came across this question, where the OP was having issues printing the hexadecimal value of a variable. I believe the problem can be summed by the following code:

#include <stdio.h>

int main() {
    char signedChar = 0xf0;

    printf("Signed\n”);
    printf(“Raw: %02X\n”, signedChar);
    printf(“Masked: %02X\n”, signedChar &0xff);
    printf(“Cast: %02X\n", (unsigned char)signedChar);

    return 0;
}

This gives the following output:

Signed
Raw: FFFFFFF0
Masked: F0
Cast: F0

The format string used for each of the prints is %02X, which I’ve always interpreted as ‘print the supplied int as a hexadecimal value with at least two digits’.

The first case passes the signedCharacter as a parameter and prints out the wrong value (because the other three bytes of the int have all of their bits set).

The second case gets around this problem, by applying a bit mask (0xFF) against the value to remove all but the least significant byte, where the char is stored. Should this work? Surely: signedChar == signedChar & 0xFF?

The third case gets around the problem by casting the character to an unsigned char (which seems to clear the top three bytes?).

For each of the three cases above, can anybody tell me if the behavior defined? How/Where?

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1  
Integer types smaller than int get promoted to int when passed to printf. –  Paul R May 20 '11 at 8:17
    
Since the underlaying bit representation of numbers is not defined in the C standard, the exact output is unspecified. –  codymanix May 20 '11 at 8:19
    
@Paul R: So in the second case, will the promotion always take place before the bitmask is applied? Or can it occur after in which the mask would have no effect? –  forsvarir May 20 '11 at 8:21
1  
The signedness of char is implementation-defined, by the way. If you want a signed character, use signed char. –  unwind May 20 '11 at 8:25
    
@unwind: really? I've always assumed that variables were signed by default unless you specified otherwise. Is it the same for integers? –  forsvarir May 20 '11 at 8:30

1 Answer 1

up vote 9 down vote accepted

I don't think this behavior is completely defined by c standard. After all it depends on binary representation of signed values. I will just describe how it's likely to work.

printf(“Raw: %02X\n”, signedChar);

(char)0xf0 which can be written as (char)-16 is converted to (int)-16 its hex representation is 0xfffffff0.

printf(“Masked: %02X\n”, signedChar &0xff);

0xff is of type int so before calculating &, signedChar is converted to (int)-16. ((int)-16) & ((int)0xff) == (int)0x000000f0.

printf(“Cast: %02X\n", (unsigned char)signedChar);

(unsigned char)0xf0 which can be written as (unsigned char)240 is converted to (unsigned int)240 as hex it's 0x000000f0

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(unsigned char)240 gets converted to (int)240 as per 6.3.1.1:2 in the C99 standard: “If an int can represent all values of the original type, the value is converted to an int” –  Pascal Cuoq Jul 26 '13 at 9:09
    
And which way is better/faster if I only want to print 2 symbols? Masked or cast? –  uni Feb 14 '14 at 10:47

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