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I wrote following program

int main ()
{
char a=0xf;
a=a+1;
printf("%c\n",a);
}

the output of above program is what I am not able to understand.It is giving me some character which I am not able to understand.Is it possible to find out ASCII code of the character that I am getting in my above program so that I understand what is it printing.

EDIT

Based on the replies I read I am adding further to my confusion

if I write a statement as following

char ch='Z';

then what would be stored in ch,

1) The character Z
2) ASCII value of Z
3) Z along with single inverted commas
4) Both (1) and (2)

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5 Answers

up vote 1 down vote accepted

The characters from 0 to 31 are non-printing characters (in your case, you've chosen 0xF, which is 15 in decimal). Many of the obscure ones were designed for teletypes and other ancient equipment. Try a character from 32 to 126 instead. See http://www.asciitable.com for details.

In response to your second question, the character stores the decimal value 90 (as characters are really 1-byte integers). 'Z' is just notation that Z is meant to be taken as a character and not a variable.

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got your msg. –  Registered User Jun 16 '11 at 5:44
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ASCII value for 16(0x0f + 1 = 0x10) is DLE (data link escape) which is non-printable character. Just Print as integer like this.

printf("%d\n",a);
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I want to know how did you come to that statement 16(0x0f+1) –  Registered User Jun 16 '11 at 5:36
    
@Registered User: 0x0f is 15 in decimal and adding one to it is 16 0r 0x10 in hex. 0x means hex –  Prince John Wesley Jun 16 '11 at 5:40
    
thanks for clearing that out. –  Registered User Jun 16 '11 at 5:47
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You can modify your program like that:

int main ()
{
  char a=0xf;
  a=a+1;
  printf("Decimal:%u Hexa:%x Actual Char:|%c|\n",a,a,a);
}

Printf can use different formatting for a character.

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I read your thing I am new comer to C hence trying to understand it if a=0xf then how will a=a+1 work ? –  Registered User Jun 16 '11 at 5:40
    
it will add 1 to a. a current value is 0xf in hexa, meaning 15 in decimal or 01111 in binary form. When adding 1, new value will be (provided there is no overflow, like now) 16=0x10=0b10000. It will try to print the ascii character corresponding to that (you can check an ascii table then) –  Bruce Jun 16 '11 at 5:43
    
@Registered chars are 1-byte integers, you can perform arithmetic on them –  jonsca Jun 16 '11 at 5:44
    
@jonsca and are these 1 byte integer ASCII codes? –  Registered User Jun 16 '11 at 5:48
    
@Registered Yes, they store the ASCII code for the character. Character is usually a signed value, so you can store numbers ranging from -128 to 127 in those 8 bits. If you cast your char to an integer you can see the ASCII value. char a = 'Z'; int i; i = (int)a; –  jonsca Jun 16 '11 at 5:52
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Its printing the character 0x10 (16).

If you want the output, change your print to output the values (in this case, character, hex value, decimal value):

printf("%c - %x - %d\n", a, a, a);

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#include<stdio.h>

int main ()    
{

    char a='z';                 \\\ascii value of z is stored in a i.e 122

    a=a+1;   \\\a now becomes 123

    printf("%c",a);   \\\ 123 corresponds to character '{' 

}
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