7

Ok guys, so I'm doing the Project Euler challenges and I can't believe I'm stuck on the first challenge. I really can't see why I'm getting the wrong answer despite my code looking functional:

import java.util.ArrayList;


public class Multithree {

    public static void main(String[] args) {
        // TODO Auto-generated method stub

        ArrayList<Integer> x = new ArrayList<Integer>();
        ArrayList<Integer> y = new ArrayList<Integer>();
        int totalforthree = 0;
        int totalforfive = 0;

        int total =0;

        for(int temp =0; temp < 1000 ; temp++){
            if(temp % 3 == 0){
                x.add(temp);
                totalforthree += temp;
            }
        }

        for(int temp =0; temp < 1000 ; temp++){
            if(temp % 5 == 0){
                y.add(temp);
                totalforfive += temp;
            }
        }

        total = totalforfive + totalforthree;



        System.out.println("The multiples of 3 or 5 up to 1000 are: " +total);

    }

}

I'm getting the answer as 266333 and it says it's wrong...

  • 6
    You're double-counting 15. – SLaks Oct 30 '13 at 19:14
  • 9
    @SLaks And all its multiples – NullUserException Oct 30 '13 at 19:14
  • 2
    Instead of looping twice with one condition each, loop once with two conditions (connected with an "or"). – David Oct 30 '13 at 19:15
  • 2
    "despite my code looking functional" In general functional just means it runs, doesn't mean it does remotely close to what you need it to. – Anthony Grist Oct 30 '13 at 19:16
  • maybe store the values in arrays and check for doubles before finalizing the answer. – char1es Oct 30 '13 at 19:18

11 Answers 11

13

you should use the same for loop for both to aviod double counting numbers that are multiple of both. such as 15,30...

   for(int temp =0; temp < 1000 ; temp++){
        if(temp % 3 == 0){
            x.add(temp);
            totalforthree += temp;
        }else if(temp % 5 == 0){
            y.add(temp);
            totalforfive += temp;
        }
    }
  • 3
    The whole problem could be solved with just int total = 0; for (int i=1; i<1000; ++i) { if (i%3 == 0 || i%5 == 0) { total += i; } };. There's really no need for separate accumulators for five and three, or the ArrayLists. – NullUserException Oct 30 '13 at 19:34
  • 1
    Better alternative in Java 8: stackoverflow.com/a/49472633/7780894 – roundAbout Apr 15 at 15:42
3

If you are using Java 8 you can do it in the following way:

Integer sum = IntStream.range(1, 1000) // create range
                  .filter(i -> i % 3 == 0 || i % 5 == 0) // filter out
                  .sum(); // output: 233168

To count the numbers which are divisible by both 3 and 5 twice you can either write the above line twice or .map() the 2 * i values:

Integer sum = IntStream.range(1, 1000)
                  .filter(i -> i % 3 == 0 || i % 5 == 0)
                  .map(i -> i % 3 == 0 && i % 5 == 0 ? 2 * i : i)
                  .sum(); // output: 266333
2

In a mathematical perspective,
You did not consider about common factors between 3 and 5.
Because there is double counting.


ex; number 15 , 30 , 45 , 60 , 75 , 90 , 105 , 120 , 135 , 150 , 165 , 180 , 195 , 210 , 225 , 240 , 255 , 270 , 285 , 300 , 315 , 330 , 345 , 360 , 375 , 390 , 405 , 420 , 435 , 450 , 465 , 480 , 495 , 510 , 525 , 540 , 555 , 570 , 585 , 600 , 615 , 630 , 645 , 660 , 675 , 690 , 705 , 720 , 735 , 750 , 765 , 780 , 795 , 810 , 825 , 840 , 855 , 870 , 885 , 900 , 915 , 930 , 945 , 960 , 975 , 990 , are common factors.

total of common factors = 33165.
Your answer is 266333
Correct answer is 233168.
Your Answer - Total of common factors
266333-33165=233168.

(this is a code for getting common factors and Total of common factors )

public static void main(String[] args) {

System.out.println("The sum of the Common Factors : " + getCommonFactorSum());

}

private static int getCommonFactorSum() {
int sum = 0;
for (int i = 1; i < 1000; i++) {
    if (i % 3 == 0 && i % 5 == 0) {
        sum += i;
        System.out.println(i);
    }
}
0

Don't you all think instead of using loops to compute the sum of multiples, we can easily compute sum of n terms using a simple formula of Arithmetic Progression to compute sum of n terms.

I evaluated results on both using loop and formula. Loops works simply valuable to short data ranges. But when the data ranges grows more than 1010 program takes more than hours to process the result with loops. But the same evaluates the result in milliseconds when using a simple formula of Arithmetic Progression.

What we really need to do is:
Algorithm :

  1. Compute the sum of multiples of 3 and add to sum.
  2. Compute the sum of multiples of 5 and add to sum.
  3. Compute the sum of multiples of 3*5 = 15 and subtract from sum.

Here is code snippet in java from my blog post CodeForWin - Project Euler 1: Multiples of 3 and 5

n--; //Since we need to compute the sum less than n.
//Check if n is more than or equal to 3 then compute sum of all divisible by
//3 and add to sum.  
if(n>=3) {  
    totalElements = n/3;  
    sum += (totalElements * ( 3 + totalElements*3)) / 2;  
}  

//Check if n is more than or equal to 5 then compute sum of all elements   
//divisible by 5 and add to sum.  
if(n >= 5) {  
    totalElements = n/5;  
    sum += (totalElements * (5 + totalElements * 5)) / 2;  
}  

//Check if n is more than or equal to 15 then compute sum of all elements  
//divisible by 15 and subtract from sum.  
if(n >= 15) {  
    totalElements = n/15;  
    sum -= (totalElements * (15 + totalElements * 15)) / 2;  
}  

System.out.println(sum); 
0

How I solved this is that I took an integer value (initialized to zero) and kept on adding the incremented value of i, if its modulo with 3 or 5 gives me zero.

private static int getSum() {
int sum = 0;
for (int i = 1; i < 1000; i++) {
    if (i % 3 == 0 || i % 5 == 0) {
        sum += i;
    }
}
return sum;
}
0

I did this several ways and several times. The fastest, cleanest and simplest way to complete the required code for Java is this:

public class MultiplesOf3And5 {

public static void main(String[] args){

System.out.println("The sum of the multiples of 3 and 5 is: " + getSum());

}

private static int getSum() {
int sum = 0;
for (int i = 1; i < 1000; i++) {
    if (i % 3 == 0 || i % 5 == 0) {
        sum += i;
    }
}
return sum;
}

If anyone has a suggestion to get it down to fewer lines of code, please let me know your solution. I'm new to programming.

-1

You are counting some numbers twice. What you have to do is add inside one for loop, and use an if-else statement where if you find multiples of 3, you do not count them in 5 as well.

 if(temp % 3 == 0){
     x.add(temp);
     totalforthree += temp;
 } else if(temp % 5 == 0){
     y.add(temp);
     totalforfive += temp;
 }
-1

Logics given above are showing wrong answer, because multiples of 3 & 5 are taken for calculation. There is something being missed in above logic, i.e., 15, 30, 45, 60... are the multiple of 3 and also multiple of 5. then we need to ignore such while adding.

    public static void main(String[] args) {
    int Sum=0, i=0, j=0;
    for(i=0;i<=1000;i++)
        if (i%3==0 && i<=999)
            Sum=Sum+i;
    for(j=0;j<=1000;j++)
        if (j%5==0 && j<1000 && j*5%3!=0)
            Sum=Sum+j;
    System.out.println("The Sum is "+Sum);
}
-1

Okay, so this isn't the best looking code, but it get's the job done.

public class Multiples {

public static void main(String[]args) {
    int firstNumber = 3;
    int secondNumber = 5;
    ArrayList<Integer> numberToCheck = new ArrayList<Integer>();
    ArrayList<Integer> multiples = new ArrayList<Integer>();
    int sumOfMultiples = 0;
    for (int i = 0; i < 1000; i++) {
       numberToCheck.add(i);

       if (numberToCheck.get(i) % firstNumber == 0 || numberToCheck.get(i) % secondNumber == 0) {
           multiples.add(numberToCheck.get(i));
       }

    }

    for (int i=0; i<multiples.size(); i++) {

     sumOfMultiples += multiples.get(i);

    }
    System.out.println(multiples);
    System.out.println("Sum Of Multiples: " + sumOfMultiples);

}

}
-1
public class Solution {
    public static void main(String[] args) {
        /* Enter your code here. Read input from STDIN. Print output to STDOUT. Your class should be named Solution. */
        Scanner sc = new Scanner(System.in);
        int t = sc.nextInt();
        while (t>0){
            int sum = 0;
            int count =0;
            int n = sc.nextInt();
            n--; 
            System.out.println((n/3*(6+(n/3-1)*3))/2 + (n/5*(10+(n/5-1)*5))/2 - (n/15*(30+(n/15-1)*15))/2);
            t--;
    }
}
}
-1

If number is 10 then multiple of 3 is 3,6,9 and multiple of 5 is 5,10 total sum is 33 and program gives same answer:

package com.parag;

/*
 * @author Parag Satav
 */
public class MultipleAddition {

    /**
     * @param args
     */
    public static void main( final String[] args ) {
    // TODO Auto-generated method stub

    ArrayList<Integer> x = new ArrayList<Integer>();
    ArrayList<Integer> y = new ArrayList<Integer>();
    int totalforthree = 0;
    int totalforfive = 0;
    int number = 8;

    int total = 0;

    for ( int temp = 1; temp <= number; temp++ ) {
        if ( temp % 3 == 0 ) {
            x.add( temp );
            totalforthree += temp;
        }

        else if ( temp % 5 == 0 ) {
            y.add( temp );
            totalforfive += temp;
        }
    }

    total = totalforfive + totalforthree;
    System.out.println( "multiples of 3 : " + x );
    System.out.println( "multiples of 5 : " + y );
    System.out.println( "The multiples of 3 or 5 up to " + number + " are: " + total );

}

}
  • Can you explain? – Aaron Hall Jul 27 '14 at 0:26
  • if number is 10 then multiple of 3 is 3,6,9 and multiple of 5 is 5,10 total sum is 33 and program gives same answer you can check it – Parag Satav Jul 27 '14 at 0:35
  • I recommend putting that in the body of your text. – Aaron Hall Jul 27 '14 at 0:44
  • its simple not need to add in code itself... – Parag Satav Jul 27 '14 at 0:49
  • check above code its good one – Parag Satav May 21 at 4:16

protected by Community May 23 '17 at 21:27

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