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How do I fill an 80-character buffer with characters as they are being entered or until the carriage return key is pressed, or the buffer is full, whichever occurs first.

I've looked into a lot of different ways, but enter has to be pressed then the input char* gets cut off at 80..

Thanks.

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3  
look into curses, or ioctl – Dave Apr 4 '12 at 4:24
    
will do thanks. – user884685 Apr 4 '12 at 4:26
    
How can I find the header files for ioctl – user884685 Apr 4 '12 at 4:46
1  
See stackoverflow.com/questions/4023895/… for a robust solution for user input. – paxdiablo Apr 4 '12 at 4:48
    
paxdiablo has the right idea. The solution he referenced uses fgets() which seems to do what you want. – Sean Apr 4 '12 at 4:59

If you really want the characters "as they are entered", you cannot use C io. You have to do it the unix way. (or windows way)

#include <stdio.h>
#include <unistd.h>
#include <termios.h>
int main() {
  char r[81];
  int i;
  struct termios old,new;
  char c;
  tcgetattr(0,&old);
  new = old;
  new.c_lflag&=~ICANON;
  tcsetattr(0,TCSANOW,&new);
  i = 0;
  while (read(0,&c,1) && c!='\n' && i < 80) r[i++] = c;
  r[i] = 0;
  tcsetattr(0,TCSANOW,&old);
  printf("Entered <%s>\n",r);
  return 0;
}
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Thanks, I'll see how this works.. – user884685 Apr 8 '12 at 23:57
#include<stdio.h>
...
int count=0;
char buffer[81];
int ch=getchar();
while(count<80&&ch!='\n'&&ch!='\r'&&ch!=EOF){
    buffer[count]=ch;
    count=count+1;
    ch=getchar();
}
buffer[count]='\0';

Once you have buffer as a string, make sure you digest the rest of the line of input to get the input stream ready for its next use.

This can be done by the following code (taken from the scanf section of this document):

scanf("%*[^\n]");   /* Skip to the End of the Line */
scanf("%*1[\n]");   /* Skip One Newline */
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getchar() returns an int, you goose. Otherwise EOF won't work :-) – paxdiablo Apr 4 '12 at 4:39
    
char-typed variables in C are int-s, but I might as well make the code correct :) – Ariel Apr 4 '12 at 4:41
    
chars are not ints, they may be integral types but that's irrelevant. The reason getchar returns an int is because you have to be able to return every single char plus an eof indicator. – paxdiablo Apr 4 '12 at 4:43
    
I don't think you need the scanf() stuff. If you've read until the end of the line or until EOF then you don't have any more characters in the input stream, do you? – Sean Apr 4 '12 at 4:48
    
Code fixed. Not bad for it being the first C code I've written in about a year and a half. – Ariel Apr 4 '12 at 4:48
#include <stdio>
...
char buf[80];
int i;
for (i = 0; i < sizeof(buf) - 1; i++)
{
    int c = getchar();
    if ( (c == '\n') || (c == EOF) )
    {
        buf[i] = '\0';
        break;
    }
    buf[i] = c;
}
buf[sizeof(buf] - 1] = '\0';
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1  
You have a bit of a problem at the end. Let's say the first key you press is ENTER, you will break from the loop and put the null terminator at position 1 rather than 0. In other words, there'll be a rubbish character in your string. – paxdiablo Apr 4 '12 at 4:46
    
Good point! This should work a little better. – Sean Apr 4 '12 at 4:52

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