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.
#include <stdio.h>              /*printf and scanf option*/
#include <math.h>

void change(double coin_change, int *quarters, int *dimes, int *nickels, int *pennies);          /*function protype*/

int main(void)
{
    int fifties = 0, twenties = 0, tens = 0, fives = 0, dollars = 0, quarters = 0, dimes = 0, nickels = 0, pennies = 0;
    double amt_paid = 0, amt_due = 0, amt_change = 0, coin_change = 0;          /*declared avriables*/

    printf("Enter the amount paid> ");                  /*Prompt user to enter amount paid*/
    scanf("%lf", &amt_paid);

    printf("Enter the amount due> ");                   /*Prompt user to enter amount due*/
    scanf("%lf", &amt_due);

    amt_change = amt_paid - amt_due;                    /*Formula for amount of change to be given*/
    dollars = (amt_change);

    coin_change = (int)((amt_change - (amt_change)) * 100 + 0.5);
    coin_change = coin_change * 100;
    printf("\n%f\n", coin_change);

    change(coin_change, &quarters, &dimes, &nickels, &pennies);

    printf("Change is fifties: %d$, twenties: %d$, tens: %d$, fives: %d$, dollars: %d$, quarters: %d, dimes: %d, nickels: %d,\
           pennies: %d", fifties, twenties, tens, fives, dollars, quarters, dimes, nickels, pennies);  
    return(0);
}

void change(double coin_change, int *quarters, int *dimes, int *nickels, int *pennies)
{
    int q = 1, d = 1, n = 1, p = 1;
    do {
        if(coin_change >= 25){
            *quarters = *quarters + q;
            coin_change = coin_change - 25;
        }
        else if (coin_change >= 10) {
            *dimes = *dimes + d;
            coin_change = coin_change - 10;
        }
        else if (coin_change  >=  5) {
            *nickels = *nickels + n;
            coin_change = coin_change - 5;
        }
        else if (coin_change >= 1) {
            *pennies = *pennies + p;
            coin_change = coin_change - 1;
        }
    } while (coin_change >= 1);
}

I'm sorry I wasn't very clear the first time. What I need is to create what is basically a cash register program. When given the amount due, and the amount paid from the user, i should receive output that tell me how many 50 dollar bills, 20s, 10s, 5s, 1s, quarters, dimes, nickels, and pennies I should be receiving as change. As I am new to programming, the code you see is what is to the best of my knowledge. I do need to improve or even completely change it. What I am really looking to do is pinpoint my mistakes, and fix them. I am hoping to have this code done soon. I feel that I am close, but only just missing it. Maybe I am wrong, but that is what I am coming to you guys for.

share|improve this question
    
Please simplify your program to the simplest thing that demonstrates the error, then give us the input, the expected output, and the actual output. Also read sscce.org –  David Grayson Mar 27 '12 at 1:59
    
What's so bad about printing "the right amount of dollars"? Sounds good. –  David Grayson Mar 27 '12 at 2:00
1  
Every time you format code like this, God kills a kitten. –  Richard J. Ross III Mar 27 '12 at 2:02
    
If this is homework, please tag it as such. –  Adam Liss Mar 27 '12 at 2:03
    
What's this thing for? (int)((amt_change - (amt_change)) * 100 + 0.5) –  sarnold Mar 27 '12 at 2:06

2 Answers 2

I don't want to write the code for you because this smells like homework, but here's the algorithm:

read_from_keyboard(amount_due)
read_from_keyboard(amount_paid)
change = amount_paid - amount_due

for each denomination in (
  fifties, twenties, tens, fives, ones, quarters, dimes, nickels, pennies) {

  while (change >= value of denomination) {
     increment counter for denomination
     subtract value of denomination from change
  }

  print counter + name of denomination  // Ex: "4 twenties"
}

The "trick" is to realize that you can treat whole dollar values and coins in exactly the same way -- part of the art of programming is being able to find a generic solution that you can re-use, rather than handling each situation as a special case.

You may want to convert the change to an integer that represents the value in cents, so you can avoid the rounding errors that floating-point arithmetic creates.

Good luck!

share|improve this answer

A couple of things:

  1. you have many unused variables: fifties, twenties, tens, fives, dollars, etc.
  2. The lines here:

    coin_change = (int)((amt_change - (amt_change)) * 100 + 0.5);
    coin_change = coin_change * 100;

    Are wrong. They should be replaced with something like the following:

    coin_change = (100 * amt_change).

  3. Have you heard of the += / -= operators? They'd turn these lines:

    *quarters = *quarters + q;
    coin_change = coin_change - 25;

    Into this:

    *quarters += q;
    coin_change -= 25;

After I fixed those things, your code worked fine.

share|improve this answer
    
coin_change is the amount of change less than a dollar. Your formula calculates the entire amount of change in cents. Does the code that "worked fine" work when the change is more than $50? Also, have you heard of the ++ operator? ++*quarters –  Adam Liss Mar 27 '12 at 2:19
    
@AdamLiss the formula that he supplied does not take amounts over a quarter into account, and his code uses a variable q, so I kept it as it was. –  Richard J. Ross III Mar 27 '12 at 2:23
    
Well i am definitely doing this wrong. So what I need is to make a code that will give me change even if it is over $50, using 50s, 20s, 10, etc –  jtho117 Mar 27 '12 at 3:32
    
@RichardJ.RossIII How do I use those unused variable? –  jtho117 Mar 27 '12 at 3:34

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.