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Why scanf doesn't work when I type "Enter" in the code below?

#include <stdlib.h>
#include <stdio.h>
#include <string.h>

int main(int argc, char**argv)
{
 char *msg = malloc(100*sizeof(char));
 do{
        scanf("%s",msg);
        printf("%s\n",msg);
 } while(strcmp(msg,"")!=0);
}
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Well, what do you see in the msg array after scanf? –  LostBoy Nov 5 '13 at 16:48
1  
scanf skips the white space looking for your string. Enter ( newlines ) are whitespace. –  Charlie Burns Nov 5 '13 at 16:49
    
Charlie, there is a way to scanf DO NOT skips whitespace? –  vs06 Nov 5 '13 at 16:53
    
@vs06, there are two options in the answers below. –  Charlie Burns Nov 5 '13 at 16:57

3 Answers 3

up vote 1 down vote accepted

Because of scanf() wait char-string, separated by whitespaces, enters, etc. So, it just ignores ENTERs, and waiting for "real non-empty string". If you want to get empty string too, you need to use

fgets(msg, 100, stdin);
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The "%s" in scanf("%s",... skips over leading whitespace (including "Enter" or \n) and so patiently waits for some non-whitespace text.

Best to take in a \n, use fgets() as suggested by @maxihatop

fgets(msg, 100, stdin);

If you need to use scanf()

int result = scanf("%99[^\n]%*c", msg);
if (result != 1) handle_IOError_or_EOF();

This will scan in 0 to 99 non-\n chars and then append a \0. It will then continue to scan 1 more char (presumably the \n) but not save it due to the *.

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Scanf looks through the input buffer for the specified format, which is string in this case. This has the effect of skipping your whitespaces. If you put a space between wording, it skips the space looking for the next string, similarly it will skip tabs, newlines etc. See what happens if you put a %c instead. It will pick up the newline because it is searching for a char now, and '\n' constitutes as a valid char.

If you want the same effect while getting whitespace, change it to a %c and remove the newline escape character at the print statement.

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