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I am trying to learn C and now I am learning chars. I have read some where that char can be signed and unsigned. This part I get but when I use an unsigned char(which I thought could held value 0-255)

printf("%c", 400); 

or even

printf("%c\n", (unsigned char)400);

it prints out an É

Why is this?

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Somebody allready posted his answere which was partial right! It prints out 144 because 400 % 256 is 144 which is an É. So thank you whoever you was! –  MouNtant Dec 30 '12 at 14:06
    
You should also learn how to inspect your program in a debugger. It would show you exactly what (unsigned char)400 does. (In this case you are also making the assumption that printf does what you want it to, running in a debugger would avoid that trap as well.) –  DCoder Dec 30 '12 at 14:15

2 Answers 2

up vote 1 down vote accepted
unsigned char c = 400;
printf("%d",c);

Guess what, you will get 144 printed. That's because an overflow occurred in c.

An unsigned char takes exactly 8 bits of memory (on almost every platform), so that it's a variable in the range of 00000000(0) ~ 11111111(255). Whenever you try to assign a number which is more than 8 bits in binary to an unsigned char, the left superfluous bits will overflow and lost.

In your case, you tried to assign 400 to an unsigned char:

400 = 110010000 which has 9 bits, so the highest 1 will lost, then you got 10010000 actually assigned to the char, which is 144 in decimal.

When you print it as %d, you will get 144; When you print it as %c, you will get É which is the 144th character in the Extended ASCII Codes (in your case).

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This is no answer? –  MouNtant Dec 30 '12 at 14:42
    
@MouNtant Please see my update. –  Skyler Dec 30 '12 at 14:47
    
Oh i get it nice –  MouNtant Dec 30 '12 at 15:35
    
@MouNtant OK. I am glad to be of help:-) –  Skyler Dec 30 '12 at 15:39
1  
"unsigned char takes exactly 8 bits" no, though that's true on almost every platform, even in the OP's one. Also I think it's worth mentioning that the result is implementation defined. –  effeffe Dec 30 '12 at 16:41

According to the C99 Standard, when c format specifier is provided to printf with no l length modifier,

the int argument is converted to an unsigned char, and the resulting character is written.

This means that 400 is converted to an unsigned char, which is 400 % 256, or 144. Then, the character that corresponds to 144 is written out. This is a UNICODE control sequence, so that É character that you see is system-dependent.

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2  
@Skyler It depends. On a system with a latin1 locale, it will (almost certainly, it could be that the implementation uses a different execution character set) print the letter É. On my box with a UTF-8 locale, it prints a control character. –  Daniel Fischer Dec 30 '12 at 17:08
    
@DanielFischer Thanks for noticing. I will modify. –  Skyler Dec 30 '12 at 17:21

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