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.

In this program even though i'm giving n as a char input still the control is not coming out of the loop what may be the problem ?

#include<stdio.h>
    main()
    {        
  int num,p=0,q=0,r=0;
    char check='y';

   while(check!='n')
     {
   printf("do you want to enter a number y or n");
    scanf("%c",&check);
    getchar();
    printf("enter a number");
     scanf("%d",&num);


    if(num>0)
      p++;
       else if(num<0)
      q++;
     else 
     r++;


    }
     printf("positive=%d\t negative=%d\t zero=%d\t",p,q,r);
        }
share|improve this question
    
Any you are sure you enter a small case 'n'? –  Joachim Pileborg Jan 30 '13 at 16:40
    
What is this getchar call for? Did you place an output for check somewhere in the loop to check what the value of check really is? –  junix Jan 30 '13 at 16:40
add comment

3 Answers 3

up vote 0 down vote accepted
while(check!='n')
{
    printf("do you want to enter a number y or n");
    scanf("%c",&check);
    getchar();
    printf("enter a number");
    scanf("%d",&num);

The scanf("%d", &num); leaves the newline in the input buffer, thus in the next iteration of the loop, that is stored in check. After that, the getchar() consumes the 'n' or 'y' you entered. Then the scanf("%d", &num); skips the newline left in the buffer, scans the entered number, and leaves the newline in the buffer. You need to remove the newline between scanning in the number and querying whether you want a next iteration.

Above that, it would be better to exit the loop immediately after the user entered an 'n', so

while(check!='n')
{
    printf("do you want to enter a number y or n");
    scanf("%c",&check);
    if (check == 'n') {
        break;
    }
    printf("enter a number");
    scanf("%d",&num);
    getchar();  // consume newline

would be better. That would still be open to bad things should the user input not match expectations, so if you want a robust programme, you need to check the return value of scanf to know whether the conversion was successful, and completely empty the input buffer before and after scanning in the number.

share|improve this answer
add comment

The issue is that the loop isn't exiting until the while condition is re-evaluated at the top of the loop. I'd suggest reworking your loop to something like this.

// we've purposely changed this to an infinite loop because
// we hop out on condition later
while(1)
{
    printf("do you want to enter a number y or n");
    scanf("%c",&check);
    getchar();

    // here's the code that will jump out of the loop early if the user
    // entered 'n'
    if('n' == check)
        break;

    // user didn't enter 'n'...they must want to enter a number
    printf("enter a number");
    scanf("%d",&num);

    if(num>0)
        p++;
    else if(num<0)
        q++;
    else 
        r++;
}
share|improve this answer
add comment

You are not checking the character input. Here is what it should be:

printf("do you want to enter a number y or n");
scanf("%c",&check);
/* This is what you need to add */
if (check == 'y') {
  getchar();
  printf("enter a number");
  scanf("%d",&num);
}
share|improve this answer
add comment

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.