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I decided to just try and get the small example of only going to 10 like the example shown.

If we list all the natural numbers below 10 that are multiples of 3 or 5, we get 3, 5, 6 >and 9. The sum of these multiples is 23.

Find the sum of all the multiples of 3 or 5 below 1000.

public class project1 {

    public static void main(String[] args) {
        int three=0;
        int tot3=0;
        int five=0;
        int tot5=0;
        int total;

        while (tot3<10) {
            three+=3;
            tot3=tot3+three;
        };
        while (tot5<10) {
            five+=5;
            tot5=tot5+five;
        };

        total=tot3+tot5;

        System.out.println("Three's: " + tot3);
        System.out.println("Five's: " + tot5);
        System.out.println("Combined: " + total);
    }

}

My output is as show:

Three's: 18
Five's: 15
Combined: 33

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Because your code does nothing like what the question asks it to do. Here's a hint: You're going to need a for loop and to use the modulo operator (%). –  Ken White Apr 10 '13 at 2:03
2  
Just a note, you can do this with pencil and paper. 3+6+9+...+999 is 3*333*334/2. 5+10+15+...+1000 is 5*200*201/2. 15+30+45+...+990 is 15*66*67/2. The answer is the sum of 3s plus the sum of 5s minus the sum of 15s. –  Joe Frambach Apr 10 '13 at 2:13

6 Answers 6

up vote 0 down vote accepted
public class project1 {

    public static void main(String[] args) {
        int number = 0;
        int total = 0;

        while (number < 10) {
            System.out.println(number);

            if ((number % 3) == 0) {
                System.out.println(number + " is a multiple of 3");
                total = total + number; 
            }
            else if ((number % 5) == 0) {
                System.out.println(number + " is a multiple of 5");
                total = total+number;   
            }
            number++;
        }
        System.out.println("total = "+ total);
    }
}

Looking at how slow I was, I did roughly the same thing as everyone else but swapped to a modulus function. The modulus function gives you the remainder(int) of dividing the first number by the second number, and can be compared to another integer. Here I have used it to check if the current number is directly divisible by 3 or 5, and add it to the total if the value is true.

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Uh this is double-counting the numbers divisible by 15. Looks like OP just accepted whatever answer handed them full code on a platter. –  Joe Frambach Apr 10 '13 at 2:22
    
Use else if on the 2nd if-statement. (: –  Lone nebula Apr 10 '13 at 2:23
    
And you are totally correct, let me fix that. –  user2264205 Apr 10 '13 at 2:24
    
Blows my mind that of all the answers, this was the accepted one. –  Joe Frambach Apr 10 '13 at 3:14
    
I think that is because I was both first and did the code for them. Looking back even I don't think I really helped. –  user2264205 Apr 10 '13 at 22:30

Numbers that are both multiples of 3 and 5 (like 15 for instance), are counted twice - once in each loop.

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while (tot3<10) {
        three+=3;
        tot3=tot3+three;
};

I think you mean

while (tot3<10) {
        three += tot3; // Add this multiple of 3 to the total.
        tot3+=3;       // increment the "next multiple"
    }

(same for 5)

Lone nebula also makes a good point - you'd need to add logic to the "5" loop to check it's not already counted in the 3 loop. The mod (%) operator can help there.

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First,

while (tot3<10) {
    three+=3;
    tot3=tot3+three;
};
while (tot5<10) {
    five+=5;
    tot5=tot5+five;
};

This should be

while (three<10) {
    three+=3;
    tot3=tot3+three;
};
while (five<10) {
    five+=5;
    tot5=tot5+five;
};

Because you're concerned about when you start counting numbers above 10, not when your TOTAL of those numbers is above 10.

Secondly, your solution will count numbers that are a multiple of three and of five twice. For example, 15 will be added twice. Learn about the modulo operator, %, to come up with a solution to this (for example, not adding five to the tot5 count if five % 3 == 0)

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I would recommend looking into using the modular operator to solve this problem. In java % will allow you to perform modular arithmetic. For example any multiple of 3 such as 9 % 3 = 0 while 9 % 2 = 1. It can be thought of as what remains after you divide the first number by the second. All multiples of a number modded by that number will return zero.

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Keep track of your variables through the loop and you'll see the problem: for tot3

  • =3
  • =9
  • =18
  • =30

You're keeping track of the sum, instead of tracking the multiples. This problem is partially solved in by

while(three<10)

Again, keeping track of the variable through the loop you'll see that this is wrong- it stops at 12, not 9 as you want it. Change it to

While(three<9) //ie the last divisible number before the limit, or that limit if its divisible (in the case of 5)

All said, an infinitely more elegant solution would involve modulus and a nice little if statement. I hope this helps!

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