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.

I need to write a program that requests two floating-point numbers and prints the value of their difference divided by their product, and to have the program loop through pairs of input values until the user enters nonnumeric input. I need to use scanf to take the input.

So, as I know that scanf return a value 0 or 1 for true/false so I though testing it to accomplish the last part of the question, but I'm trying to figure out how to make sure the loop goes back to ask for input.

My code is:

int main()    
{        
    double num1, num2, different, product, answer;

    printf("please enter 2 floatig point numbers:\n");
    printf("number one is?\n");
    while (scanf("%lf", &num1) ==1)
    {
        printf("number two is?\n");
        while (scanf("%lf", &num2) ==1)
        {       
            if (num1 > num2)
            {
                different = num1 - num2;
            }

            if (num2 > num1)        
            {
                different = num2 - num1;
            }

            if (num1 == num2)        
            {
                different = 0;
            }

            product = num1*num2;
            answer = different/product;
            printf("%lf", answer);
        }
        printf("you're out!");
    }
    printf("you're out!");
}  

Example input:

first num 4.5
second num 3.5

output:

please enter 2 floatig point numbers:
number one is?
4.5
number two is?
3.5
0.063492

I'm getting the right answer and the program keeps running but I'm looking for a solution to go back for the input request.

share|improve this question
    
What about my out? –  Shahbaz Jan 24 '13 at 12:44
    
@Gilles thanks for the edite! –  Nir Jan 24 '13 at 12:59
add comment

3 Answers

up vote 1 down vote accepted

You should first note that whatever made your scanf fail the first time, will probably make it fail the second time. So a loop such as this:

while (scanf("%lf", &a) != 1);

could become an infinite loop.

Also, when reading two or more values at the same time, it would be hard to track what is read and what is not. Therefore, I advise reading the values one by one, in a form like this:

void clear_line()
{
    char c;
    while (scanf("%c", &c) == 1)
        if (c == '\n')
            return;
}

double read_value(const char *message)
{
    double d;

    while (1)
    {
        printf("%s", message);
        if (scanf("%lf", &d) == 1)
            return d;
        if (feof(stdin))
        {
            printf("Unexpected end of file\n");
            return 0;
        }
        printf("Invalid input\n");
        clear_line();
    }
}

...
num1 = read_value("Enter first number: ");
num2 = read_value("Enter second number: ");
if (feof(stdin))
    /* handle error */

What this basically does is try reading the value until the user produces a correct one. In case of incorrect input, one line of input is consumed and thrown away so the left over of whatever the user has input would not affect the next scanf and create a chain of errors.

share|improve this answer
    
thanks allot! i didnt get to pointer yet, and this exercise is not using functions, but its good to know it :) –  Nir Jan 24 '13 at 12:57
add comment

Its just simply a pattern to define the number of input are you wanting. the simpler version of your code is

  while( scanf("%d %d", &a,&b) == 2 )
  //

here scanf return the 2 as a return value.

so you are checking while(2 == 2), make the number of input are you wanting

while( scanf("%lf %lf", &num1,&numb2) == 2 )
{
    if (num1 > num2)
    {
        different = num1 - num2;
    }

    if (num2 > num1)
    {
        different = num2 - num1;
    }

    if (num1 == num2)
    {
        different = 0;
    }
    product = num1*num2;
}
share|improve this answer
    
thanks man! really helpful. But this code is not going to add the text before asking the number from the user (printf("number one is?\n")) right? its only going to let you add more numbers @Nikson Kanti Paul –  Nir Jan 24 '13 at 13:02
    
you can tell user to input two number at a time :P, no you can't say one by one in this style. i think you got the point what is your question ? –  Nikson Kanti Paul Jan 24 '13 at 13:05
    
Yes got it thanks. It's just that I want to add the text that asks him to write two new numbers each time..@Nikson Kanti Paul –  Nir Jan 24 '13 at 13:08
    
my solution: while( printf("please enter 2 floatig point numbers:\n")&& scanf("%lf %lf", &num1,&num2) == 2 ) worked...but im not sure about the style..:/ @Nikson Kanti Paul –  Nir Jan 24 '13 at 13:44
    
printf return the length of the string as return value. so your printf condition part is greater then 0, while( 41 && 2==2) that is your condition now. you can check simply int len = printf(....) –  Nikson Kanti Paul Jan 24 '13 at 17:22
add comment

You can simply do it like:

while(1)
{
     printf("number one is?\n");
     if(scanf("%lf", &num1) != 1)
     {
       break;
     }
     printf("number teo is?\n");
     if(scanf("%lf", &num2) != 1)
     {
       break;
     }

    if (num1 > num2)
    {
        different = num1 - num2;
    }

    if (num2 > num1)

    {
        different = num2 - num1;
    }

    if (num1 == num2)

    {
        different = 0;
    }

    product = num1*num2;

    answer = different/product;

    printf("%lf", answer);

    }
}
share|improve this answer
    
I think you mean scanf(...) < 1 then break. The code also doesn't make sense as there are 2 scanf for num2 –  nhahtdh Jan 24 '13 at 12:46
    
@nhahtdh: thanks for the comment. I fixed the issue. –  Midhun MP Jan 24 '13 at 12:50
    
No, but it still doesn't make sense by trying to read double into num2 twice. –  nhahtdh Jan 24 '13 at 12:51
    
@nhahtdh: already edited that answer –  Midhun MP Jan 24 '13 at 12:52
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.