2

I have read code like below:

scanf("%s", str);
scanf(" ");

I guess the second line of the code is just to swallow the last \n character when inputting the string of the first line. But I just do not understand how this argument works.

3
  • 1
    It might be a trick to consume all white spaces up to (an including) an end of line in order to be able to use a fgets after a scanf. The downside is that it will eat all empty lines following the current line, which may or not be expected... Oct 1, 2018 at 8:37
  • 1
    scanf("%s", str) is not a sensible thing to do... how big is str? and what happens if (when) scanf() writes past the end of str? Prefer something that is tightly bounded.
    – Attie
    Oct 1, 2018 at 8:47
  • @user3386109 But the target here is to consume the whitespace characters that came AFTER not before the string. So does the second scanf work in this situation?
    – Forester
    Jul 31, 2019 at 2:29

1 Answer 1

4

The scanf(" ") will consume as much whitespace as it can, including a newline left over after a string is consumed with %s. However, the value of str is unaffected by this; scanf("%s", str) will leave out the trailing whitespace, whether or not you subsequently consume that whitespace with scanf(" ").

So, scanf(" ") on its own is kind of pointless. It might make sense if you followed it up with a whitespace-sensitive read, like this:

scanf("%s", str);
scanf(" ");
scanf("%c", c);

But then, you could have just written:

scanf("%s", str);
scanf(" %c", c); // Note the leading space.

And this only matters for %c, %n, %[, and unformatted input functions like fgets(). All other scanf() format specifiers automatically skip leading whitespace.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.