Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Here is the program:

#include "stdio.h"

int main()
{
    int minx, x, y, z;

    printf("Enter four ints: ");
    scanf( "%i %i %i %i", &minx, &x, &y, &z);

    printf("You wrote: %d %d %d %d", minx, x, y, z);
}

Say if I enter like the following: 1 2 3 4 (then press enter). The scanf() runs and reads the input buffer = 1 (space) 2 (space) 3 (space) 4 (space)(\n) it reads until (\n) and \n will remain in the buffer.

If I enter like the following: 1 (then press enter) 2 (then press enter) 3 (then press enter) 4 (then press enter). The scanf() runs and reads the input buffer = 1(\n)2(\n)3(\n)4(\n)(\n).

In those 2 cases, the scanf() skips the newline, whitespace and tries to read an int.

But if I enter 1 (then press enter)(then press enter)... the scanf() then never runs if I keep hitting enter.

My question is: what triggers scanf()? Will it only run after it knows all the correct %d are placed in the buffer then run if the user press enter?

share|improve this question
1  
The stdio.h include should be <stdio.h> –  Corbin Apr 10 '12 at 3:48

2 Answers 2

Because scanf() ignores white space, and white space includes newlines.

The scanf() processes the four numbers the same way each time: by skipping white space, then reading a candidate sequence that looks like a number (so signs and digits), and stops reading at the first character that can't be part of the candidate sequence; it then converts the candidate sequence (behaviour on overflow etc undefined). If you typed a space after the 4 (rather than just a newline), both the space and the newline will still be waiting to be read next. If there's no space, then the newline will be waiting to be read.

If you typed a non-numeric character (punctuation or letter), then scanf() would return with an error (or fewer than 4 numbers converted — unless the letter is after the fourth number).

When you type a single number followed by an arbitrary number of newlines, you're simply giving scanf() white space to skip over. It won't stop until it gets EOF (zero bytes read) or a read error (or a conversion error, such as a letter or punctuation character instead of a digit).

share|improve this answer
    
Thank for your time. Ignore? then why newlines will trigger scanf if all the %d are entered? –  qwr qwr Apr 10 '12 at 3:34
    
@qwrqwr: that's not scanf, but the kernel tty driver which is line oriented (it won't send the data to your program until you press enter or ^D) –  Per Johansson Apr 10 '12 at 19:01

that is the expected behaviour of scanf From the c99 standard:

A conversion specification is executed in the following steps: - Input white-space characters (as specified by the isspace function) are skipped, unless the specification includes a '[', 'c', or 'n' specifier.

it tokenises on the seperator characters (space tab newline etc ..) the last newline is part of the tokenisation .. otherwise how would it know when your integer finishes? :D

I think this solves your question? i am not sure . Hope this helps

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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