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.

My assignment is to use two different kinds of loops (For, While, do While). The task is to ask the user to enter a number between 1 and 10 and then the program will count from 0 to the users number. Also, the program must be able to display an error message and ask the user to enter a number again if the user enters a number outside of 1 through 10. The part of the code with the error message and the prompt to enter a number again is working just fine. However, when I enter a number within the range, it either does nothing or counts from 0 to their number an infinite amount of times and won't stop looping the count. Please help!

#include <stdio.h>

int main(void)

{
    //Variables
    int num;
    int zero;

    //Explains to the user what the program will do
    printf("This program will count from 0 to a number you pick.\n\n");

    //Asks the user to input a value
    printf("Please enter a number (between 1 and 10): \n");
    scanf("%d", &num);


    //If the correct range was selected by the user
    while ( num >= 1 && num <= 10 )
    {
            for ( zero = 0; zero <= num; zero++ )
            {
                    printf("%d...", zero);

            }
    }

    //If a value outside of the accepted range is entered
    while ( num < 1 || num > 10)
    {
            printf("I'm sorry, that is incorrect.\n");
            printf("Please enter a number (between 1 and 10): \n");
            scanf("%d", &num);
    }


    printf("\n\n\n");

    return 0;


}
share|improve this question
2  
You need to show your program. –  lurker Oct 10 '13 at 0:07
1  
Welcome to StackOverflow. We can't help you with code we can't see, based on some vague description of the problem. Please visit SSCCE, and then come back here and edit your question and provide an SSCCE of your relevant code (not a big code dump), a clear description of the problem, and ask a specific question based on that code, and perhaps we can help you figure things out. –  Ken White Oct 10 '13 at 0:08
    
Provide some sample code. It doesn't need to work, but show effort. You will need to declare a couple of variables, print a prompt, accept input, convert it to a number, and loop on that number. take a stab at it. –  ChuckCottrill Oct 10 '13 at 0:27

3 Answers 3

up vote 1 down vote accepted
 while ( num >= 1 && num <= 10 )
    {
            for ( zero = 0; zero <= num; zero++ )
            {
                    printf("%d...", zero);

            }
    }

will run forever if num is between 1 and 10, since num is not changed inside the loop - once you're in, you're in for good.

If you enter a "bad" value then you'll skip this and go into your second while loop. However once you get out of that while loop by entering a "good" value, all that's left to execute is

printf("\n\n\n");

return 0;

You need to get rid of the first while loop and move the second one above the for loop:

#include <stdio.h>

int main(void)

{
    //Variables
    int num;
    int zero;

    //Explains to the user what the program will do
    printf("This program will count from 0 to a number you pick.\n\n");

    //Asks the user to input a value
    printf("Please enter a number (between 1 and 10): \n");
    scanf("%d", &num);

    //If a value outside of the accepted range is entered
    while ( num < 1 || num > 10)
    {
            printf("I'm sorry, that is incorrect.\n");
            printf("Please enter a number (between 1 and 10): \n");
            scanf("%d", &num);
    }

   for ( zero = 0; zero <= num; zero++ )
   {
            printf("%d...", zero);

   }

    printf("\n\n\n");

    return 0;
}
share|improve this answer

Change two of your while loops to if guards,

    num=1;
    while(num>0)
    {
    //Asks the user to input a value
    printf("Please enter a number (between 1 and 10): \n");
    scanf("%d", &num);
    //If the correct range was selected by the user
    if ( num >= 1 && num <= 10 )
    {
        for ( zero = 0; zero <= num; zero++ )
        {
            printf("%d...", zero);
        }
    }
    //If a value outside of the accepted range is entered
    if ( num < 1 || num > 10)
    {
            printf("I'm sorry, that is incorrect.\n");
            printf("Please enter a number (between 1 and 10): \n");
            //scanf("%d", &num);
    }
        while(0); while(0); while(0); while(0); //gratuitous loops
        do ; while(0); for(;0;);
    }
share|improve this answer
    
Yes that would work but my instructor is requiring two different types of loops. So where would I put my other one if I replace the 'while' loops with 'if' statements? –  Sara Tine Oct 10 '13 at 0:43
    
Note the while(num>0) outer loop, and the for(...) inner loop. Done. –  ChuckCottrill Oct 10 '13 at 0:45
    
The while loops you had were breaking things. If you want to add extraneous while loops, add this anywhere: while(0); –  ChuckCottrill Oct 10 '13 at 0:46
    
I added a few extra while loops to make management happy ;-) –  ChuckCottrill Oct 10 '13 at 0:48
1  
Thank you! Thank you! –  Sara Tine Oct 10 '13 at 0:53

Really Simple!

You may use a break inside the while loop:

#include <stdio.h>

int main(void)

{
//Variables
int num;
int zero;

//Explains to the user what the program will do
printf("This program will count from 0 to a number you pick.\n\n");

//Asks the user to input a value
printf("Please enter a number (between 1 and 10): \n");
scanf("%d", &num);


//If the correct range was selected by the user
while ( num >= 1 && num <= 10 )
{
        for ( zero = 0; zero <= num; zero++ )
        {
                printf("%d...", zero);

        }
        break; // !!! Here !!!
}

//If a value outside of the accepted range is entered
while ( num < 1 || num > 10)
{
        printf("I'm sorry, that is incorrect.\n");
        printf("Please enter a number (between 1 and 10): \n");
        scanf("%d", &num);
}


printf("\n\n\n");

return 0;


}
share|improve this answer
    
Couldn't you use an if-statement instead of while + break? –  Dennis Meng Nov 30 '13 at 9:13

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.