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I have accepted a character as an input from the user. I want to print the ASCII value of that character as an output. How can I do that without using any pre-defined function (if it exists) for the same?

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Possible duplicate of Printing chars and their ASCII-code in C – miken32 Feb 20 at 0:47

Instead of printf("%c", my_char), use %d to print the numeric (ASCII) value.

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+1 that was fast. – karlphillip Aug 11 '10 at 16:27
8  
@Karl: Rumor has it that everyone with a rep score over 10k has been abducted and replaced by an AI. Except Jon Skeet, who was an AI all along. – Steven Sudit Aug 11 '10 at 16:30
    
Thank you for the solution. I tried using this method. It is not giving me any error but it's displaying the value 10 for any character inputed. So I'm trying to figure out the problem. – Khushboo Aug 11 '10 at 16:38
    
fast but wrong? to my understanding the ascii value of a character is an unsigned entity. So %u would have been better, I think. So I prefer Matt's answer, 4 min more, but well invested ;-) – Jens Gustedt Aug 11 '10 at 16:45
2  
@user417316: I think you're reading the newline from the end of a line... – R.. Aug 11 '10 at 17:28

Also consider printf("%hhu", c); to precisely specify conversion to unsigned char and printing of its decimal value.

Update0

So I've actually tested this on my C compiler to see what's going on, the results are interesting:

char c = '\xff';
printf("%c\n", c);
printf("%u\n", c);
printf("%d\n", c);
printf("%hhu\n", c);

This is what is printed:

� (printed as ASCII)
4294967295 (sign extended to unsigned int)
-1 (sign extended to int)
255 (handled correctly)

Thanks caf for pointing out that the types may be promoted in unexpected ways (which they evidently are for the %d and %u cases). Furthermore it appears the %hhu case is casting back to a char unsigned, probably trimming the sign extensions off.

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You need to cast c to (unsigned char), otherwise it may be promoted to int (which doesn't match %u). – caf Aug 12 '10 at 0:08
    
@caf: I don't follow, isn't it going to cast during conversion? – Matt Joiner Aug 15 '10 at 11:43
2  
It's a technicality, but the %u specifier (even when used with hh) requires a (promoted) unsigned int argument, otherwise the behaviour is explicitly undefined. char may be promoted to int rather than unsigned int (since it may or may not be signed), so an explicit cast to unsigned char is necessary to ensure it is promoted to unsigned int. – caf Aug 15 '10 at 13:11

This demo shows the basic idea:

#include <stdio.h>

int main()
{
    char a = 0;
    scanf("%c",&a);

    printf("\nASCII of %c is %i\n", a, a); 

    return 0;
}
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1  
thank you for the code ! – Khushboo Aug 11 '10 at 16:59

The code printf("%c = %d\n", n, n); displays the character and its ASCII.

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This will generate a list of all ASCII characters and print it's numerical value.

#include <stdio.h>
#define N 127

int main()
{
    int n;
    int c;

    for (n=32; n<=N; n++) {
        printf("%c = %d\n", n, n);
    }

    return 0;
} 
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 #include "stdio.h"
 #include "conio.h"
 //this R.M.VIVEK coding for no.of ascii values display and particular are print

void main()
{
    int rmv,vivek;
    clrscr();

    for(rmv=0;rmv<=256;rmv++)
    {
        if(printf("%d = %c",rmv,rmv))
    }

    printf("Do you like particular ascii value\n enter the 0 to 256 number");
    scanf("%d",&vivek);
    printf("\nthe rm vivek ascii value is=%d",vivek);
    getch();
}
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