I have an application that prompt to user an character from user:
char letter;
printf("Letter:\n");
scanf("%s", &letter);
printf("ASCII code = %d\n", letter);
The problem is the accent that the user can write. if input is Á the code above given ASCII code = -61 then I thought, if I turn it in an positive number, I get 61 that is A in ASCII. printf("ASCII code = %d val = %c\n", letter, abs(letter));
but it does not works as expected, it given ASCII code = -61 val =
instead of A why?
%s is the format specifier for a C-string, and a character is only big enough to hold an empty C-string. Use %c, which is the format specifier for a single character.
Á has character code 193 in ASCII.
The range of a char is -128 to 127. The range of unsigned char is 0 to 255.
The problem with your code is that you're working with a signed char instead of an unsigned char. When you output the signed char, it will sign extend letter to an integer and output it. If you use the unsigned variant you'll get the correct output.
Related
I have the following code.
int ant = 10;
char converter = ant;
printf("This is where the char prints: %c", converter);
Why does the console only print out when this is run:
This is where the char prints:
Why does this happen? And is it possible to still use the %c and print out the value?
I understand that changing the %c to a %d will allow me to see the result but i wanna know why.
You are printing out the character encoded by the number 10: the format specifier %c is used to output the characters, rather than their numerical values.
In ASCII (most likely the encoding used), that's \n; the linefeed character. Your terminal is probably able to deal with that, and you'll see an extra line in your output.
If you want to print the numeric value of converter, then use simply %d as the format specifier (the char types are converted implicitly to int types at the calling site).
what happens if I read an integer like 20,30,10000...9999 into variable a ? it only prints the first digit in the number that I've read...why is that ?
for example if I read 123, on the screen it prints 1. Isn't it supposed to convert the integer 123 into it's equivalent ASCII character representation ?
#include <stdio.h>
int main() {
char a;
scanf("%c", &a);
printf("%c", a);
return 0;
}
This is an exam question from C language.
No, it reads the character, which is represented by the machine as a small integer, into the variable.
If you enter 100 (the number 100, three keypresses and thus three characters), it will only store the first character of that, i.e. the leading 1.
If you wanted to convert a number to an actual integer, you should use %d and an int variable of course.
Printing with %c will print back a single character, by interpreting the small integer value as a character (rather than as an integer). So for an input of 100 you will see 1 printed back out, i.e. the character that represents the decimal digit one.
If you want to print out the numeric representation of the character you read in, scan with %c but print with %d, and cast the char to (int) in the printf() call.
The problem is that %c parse a char for console input. From a number like 123 it take only the first letter and dispose the rest. The way to parse a int value is using %d on the scanf function.
No, it will read only the first character into the char variable. How can a char variable store more than one character at an instant? It can't.
So if you want the ASCII value, input as an integer instead.
int a;
scanf("%d", &a); // suppose input is 65
printf("%c", a); // prints 'A'
printf("%d", a); // prints 65
Whereas
char a;
scanf("%c", &a); // suppose input is 65
printf("%c", a); // prints '6'
printf("%d", a); // prints 54 which is the ASCII value of '6'
Practice.c
#include <stdio.h>
main()
{
char a;
printf("\nEnter Anything = ");
scanf("%c",&a); <Line 1>
printf("\n%d",a);
printf("\n%c",a);
}
Output 1 : Enter Character = 5
53
5
Output 2 : Enter Character = a
97
a
This program gets executed exactly by the book.
New.c
#include <stdio.h>
main()
{
char a;
printf("\nEnter Character = ");
scanf("%d",&a); <Line 1>
printf("\n%d",a);
printf("\n%c",a);
}
Output 1 : Enter Character = 5
5
♣
Output 2 : Enter Character = a
0
This is the same program as Practice.c with minor change in it. It is not a question but I mistakenly typed %d instead of %c in the line denoted by Line 1 of the program. This mistake of mine produced 2 very different outputs. What is the exact reason behind it?
Below ASCII 32, all are non-printable characters. In second code you are reading an int and then trying to print the equivalent character which is non-printable.
For the second input a, scanf doesn't read this character and leave it in the buffer because it expects an integer not a character. The variable a is uninitialized and you are now accessing an uninitialized variable. This invokes undefined behavior.
The character data type is having size 1 byte, whereas integer is usually 4 bytes. Here you have tried to read into a character variable an integer. There is not enough storage to handle this properly. The result depends on whether your architecture supports little endian or big endian notation.
When you use %c the input is taken as character and stored its ASCII value.
When you use %d the input is taken as integer.
When you print with %c, it tries to print ASCII char at given value.
When you print with %d, it tries to print the number.
What really happened in your NEW program is
scanf("%d",&a);
Format specifier while reading is given as an integer %d ,so the compiler assumes the input value as integer even though it is stored in char variable, so the value of variable will be
a = 0x05 which is an integer 5
printf("\n%d",a);
printing variable a as integer prints 5 on output
printf("\n%c",a);
I think you know that while reading a digit as a character(using %c) it's ASCII value is stored (for eg: scanf("%c",&a)); and you enter a as 5, the value stored in the variable a is a=0x35 in hex ,or 53 as integer representation
printing variable as character-> since 0x05 is not character or digit in ASCII value it prints the special character on the output
for about ASCII table refer : http://www.asciitable.com/
I need to take a keyboard input letter, and save that letter's decimal value as an integer.
How can I do that with scanf ?
I just figured out myself.
if I want to store the decimal value of 'z'
I can just do int value='z'-'a'+ 97
This is what I wanted to know.
This code reads a char from keyboard (stdin) using scanf(), stores it in byte-sized variable c of type char, and then prints its ASCII decimal value as an int to stdout :
char c;
scanf("%c", &c);
printf("%d", c);
If you want to output the ASCII value, simply printf() with the %d format string.
char ch = 'a';
printf("%d", a); // should be 97
I want to type in a number that is 10 digits long, then put the digits into an array. But for some reason, I get this random 2-digit numbers that seem to have nothing to do with my input (??).
char number[10]; //number containing 10 digits
scanf("%s",number); //store digits of number
printf("%d\n",number[0]); //print the 1st digit in the number
printf("%d\n",number[1]); //print the 2nd digit in the number
Here is what I got:
Input:
1234567890
Output:
49
50
Actually, 49 should be 1, and 50 should be 2.
You are getting ASCII value of characters 1 and 2. Use %c specifier to print the digits.
printf("%c\n",number[0]);
Warning! Your code may invoke undefined behaviour!
But we'll talk about it later. Let us address your actual question first.
Here is a step by step explanation of what is going on. The first thing you need to know is that every character literal in C is actually an integer for the compiler.
Try this code.
#include <stdio.h>
int main()
{
printf("%d\n", sizeof '1');
return 0;
}
The output is:
4
This shows that the character literal '1' is represented as 4 byte integer by the compiler. Now, let us see what this 4 byte integer for '1' is using the next code here.
#include <stdio.h>
int main()
{
int a = '1';
printf("a when intepreted as int : %d\n", a);
printf("a when intepreted as char: %c\n", a);
return 0;
}
Compile it and run it. You'll see this output.
a when intepreted as int : 49
a when intepreted as char: 1
What do we learn?
The character '1' is represented as the integer 49 on my system. This is so for your system too. That's because in my system as well as yours, the compiler is using ASCII codes for the integers where '1' is 49, '2' is 50, 'A' is 65, 'B' is 66, and so on. Note that the mapping of the characters to these codes could be different for another system. You should never rely on these integer codes to identify the characters.
So when I try to print this value as integer (using %d as the format specifier), well what gets printed is the integer value of '1' which is 49. However, if we print this value as a character (using %c as the format specifier), what gets printed is the character whose integer code is 49. In other words, 1 gets printed.
Now try this code.
#include <stdio.h>
int main()
{
char s[] = "ABC123";
int i;
printf("char %%d %%c\n");
printf("---- -- --\n");
for (i = 0; i < 6; i++) {
printf("s[%d] %d %c\n", i, s[i], s[i]);
}
return 0;
}
Now you should see this output.
char %d %c
---- -- --
s[0] 65 A
s[1] 66 B
s[2] 67 C
s[3] 49 1
s[4] 50 2
s[5] 51 3
Does it make sense now? You need to use the %c format specifier when you want to print the character. You should use %d only when you want to see the integer code that represents that character.
Finally, let us come back to your code. This is how you fix it.
#include <stdio.h>
int main()
{
char number[10];
scanf("%9[^\n]", number);
printf("%c\n", number[0]);
printf("%c\n", number[1]);
return 0;
}
There are two things to note.
I have used %c as the format specifier to print the character representation of the digits read.
I have altered the format specifier for scanf to accept at most 9 characters only where the characters are not newline characters. This is to make sure that a user cannot crash your program by inputting a string that is far longer than 9 characters. Why 9 instead of 10?. Because we need to leave one cell of the array empty for the null-terminator. A longer input would overwrite memory locations beyond the allocated 10 bytes for the number array. Such buffer overruns lead to code that invoke undefined behaviour which could either cause a crash or kill your cat.
printf("%c\n",number[0]); //print the 1st digit in the number
printf("%c\n",number[1]);
should do the job for you, what you see are ascii values.
your number array is an array of char, and so every element of it is a char.
when you type:
printf("%d\n",number[0]);
you printing the chars as integers, and so you get the ASCII code for each char.
change your statement to printf("%c\n",number[0]); to print chars as chars not as ints
Warning! Your code invokes undefined behaviour!
char number[10]; // Can only store 9 digits and nul character
scanf("%s",number); // Inputting 1234567890 (11 chars) will overflow the array!
Use fgets instead:
#define MAX_LEN 10
char number[MAX_LEN];
if(fgets(number, MAX_LEN, stdin)) {
// all went ok
}
Once you have fixed this, you can fix the printing problem. You are printing the character code (number), and not the actual character. Use different type specifier:
printf("%c\n",number[0]);