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How do I print a char and its equivalent ASCII value in C?

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8 Answers 8

up vote 13 down vote accepted

This prints out all ASCII values

int main()
{
    int i;
    i=0;
    do
    {
        printf("%d %c \n",i,i);
        i++;
    }
    while(i<=255);
    return 0;
}

and this prints out the ASCII value for a given character:

int main()
{
    int e;
    char ch;
    clrscr();
    printf("\n Enter a character : ");
    scanf("%c",ch);
    e=ch;
    printf("\n The ASCII value of the character is : %d",e);
    getch();
    return 0;
}
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2  
Your do-loop never terminates; you need to add an i++. Better yet, use a for-loop, because it's clearer. –  David R Tribble Sep 24 '09 at 16:10
1  
Your code prints the decimal value created by converting the char to an int. This may be the ascii code on some systems, but then again it may not. –  Pete Kirkham Sep 24 '09 at 16:24
2  
Ugh! Where's the indentation? ...my eyes, my eyes... O_o –  Gary Willoughby Sep 24 '09 at 17:20
1  
oh man, give me a break! This isn't production code. It's meant more like pseudocode, but @loadmaster's point is a good one! dont know how I forgot that! –  ennuikiller Sep 24 '09 at 17:40
1  
Pretty sure ASCII stops at 127 –  sreya Sep 23 '13 at 23:49

Try this:

char c = 'a'; // or whatever your character is
printf("%c %d", c, c);

The %c is the format string for a single character, and %d for a digit/integer. By casting the char to an integer, you'll get the ascii value.

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You don't need to cast to int, since the standard type promotions will promote c into an int automatically. –  David R Tribble Sep 24 '09 at 16:18
    
Whoops - thanks for the catch. Was probably just trying to be too explicit :) –  MBillock Sep 24 '09 at 17:10

void main() {

printf("%d",'a'); //We can replace a with our choice of character to get its ASCII value//

getch();

}

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try to explain your answers in stead of just giving the, –  ArtB Jan 20 '13 at 6:51
    
this doesn't work lol –  ucefkh Mar 26 '13 at 17:33

To print all the ascii values from 0 to 255 using while loop.

#include<stdio.h>
main( )
{
  int a;
  a=0;
  while(a<=255)
  {
    printf("%d = %c\\n",a,a);
    a++;
  }
  getch();
}
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This reads a line of text from standard input and prints out the characters in the line and their ASCII codes:

#include <stdio.h>

void printChars(void)
{
    char    line[80+1];
    int     i;

    // Read a text line
    if (fgets(line, 80, stdin) == NULL)
        return;

    // Print the line chars
    for (i = 0;  line[i] != '\n';  i++)
    {
        int     ch;

        ch = line[i];
        printf("'%c' %3d 0x%02X\n", ch, ch, ch);
    }
}
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#include"stdio.h"

#include"conio.h"//R.M.VIVEK coding for ascii display values

void main()
{

    int rmv;

    for(rmv=0;rmv<=256;rmv++)
        if(printf("%c",rmv))
            getch();
}
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Chars within single quote ('XXXXXX'), when printed as decimal should output its ASCII value.

int main(){

    printf("D\n");
    printf("The ASCII of D is %d\n",'D');

    return 0;

}

Output:

% ./a.out
>> D
>> The ASCII of D is 68
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This should work in any C system, not only those which are ASCII or UTF-8 based:

printf ( " Q is decimal 81 in ASCII\n" );

You did ask for a char; the other 96 of them are left as an exercise for the reader.

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