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#include <stdio.h>

int main()
{
    int a;
    char msg[10];
    scanf("%d",&a);
    printf("%d\n",a);
    scanf("%[^\n]s",msg);
    printf("%s\n",msg);
    return 0;
}

The program is accepting the integer value and printing it, but the second scanf() call is not accepting anything. Why is this?

What effect does ^\n on scanf statement in the context.

share|improve this question
    
%[^\n] is a "thing" in itself, you don't need to use the s after it. The s is probably being considered literal, by the way, and that will affect your scan. –  Spidey Dec 11 '12 at 20:18

3 Answers 3

If the console looks something like this:

123
abc

Then stdin will have the contents: 123\nabc\n

After a scanf call with a "%d" format string, stdin will now be: \nabc\n. Note that the \n hasn't been consumed.

The specifier %[^\n] (the s shouldn't be there, that'll just be treated as an extra character to consume immediately after) means read every character until a \n, so since there are no characters before the \n at the start of the string nothing will be stored into the buffer, and stdin will remain as: \nabc\n.


To fix this, change the first scanf format string to "%d\n", so that after a number is read the \n will be consumed. Since %[^\n] also won't consume the \n, you might want to also change that format string to "%[^\n]\n".

share|improve this answer
scanf("%[^\n]s", msg);

This is probably not what you want, you don't need the s after the scanset. Doing this you tell scanf to look for a s character.

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Just change the first scanf to:

scanf("%d\n",&a);

Otherwise the second scanf just sees the \n and reads 0 items (and thus leaves your msg unchanged.

With your original code, and some added diagnostics:

#include <stdio.h>
#include <string.h>
int main() {
  int a;
  int itemsScanned;
  char msg[10]; strcpy (msg, "unchanged");
  itemsScanned=scanf("%d",&a);
  printf("itemsScanned=%d a=%d\n",itemsScanned, a);
  itemsScanned=scanf("%[^\n]s",msg);
  printf("itemsScanned=%d msg=%s\n",itemsScanned, msg);
  return 0;
}

The output (when entered 3<\nl) is:

> ./a.out
3
itemsScanned=1 a=3
itemsScanned=0 msg=unchanged

with the additional \n in the first scanf, and entering 5\nlHugo\nl:

./a.out
5
Hugo
itemsScanned=1 a=5
itemsScanned=1 msg=Hugo
share|improve this answer
    
i want to know why this is happening –  dgms Dec 11 '12 at 20:14
    
Because your first scanf leaves the \n in the "buffer". Then the next scanf applies your format-string and just finds the \n, so it can't read anything. –  pbhd Dec 11 '12 at 20:27

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