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.

This is the code for an upcoming university practical I have:

import java.util.Random;

public class Practical4_Assessed 
{

public static void main(String[] args) 
{

    Random numberGenerator = new Random ();
    int[] arrayOfGenerator = new int[100];
    int[] countOfArray     = new int[10];
    int count;

    for (int countOfGenerator = 0; countOfGenerator < 100; countOfGenerator++)
    {
        count = numberGenerator.nextInt(10);
        countOfArray[count]++;
        arrayOfGenerator[countOfGenerator] = count + 1;
    }

    int countOfNumbersOnLine = 0;
    for (int countOfOutput = 0; countOfOutput < 100; countOfOutput++)
    {
        if (countOfNumbersOnLine == 10)
        {
            System.out.println("");
            countOfNumbersOnLine = 0;
            countOfOutput--;
        }
        else
        {
            if (arrayOfGenerator[countOfOutput] == 10)
            {
                System.out.print(arrayOfGenerator[countOfOutput] + "  ");
                countOfNumbersOnLine++;
            }
            else
            {
                System.out.print(arrayOfGenerator[countOfOutput] + "   ");
                countOfNumbersOnLine++;
            }
        }
    }

    System.out.println("");
    System.out.println("");

    String occurrencesReport = "";
    String graph = "";

    for (int countOfNumbers = 0; countOfNumbers < countOfArray.length; countOfNumbers++)
    {
        occurrencesReport += "The number " + (countOfNumbers + 1) + 
            " occurs " + countOfArray[countOfNumbers] + " times.";

        if (countOfNumbers != 9)
            graph += (countOfNumbers + 1) + "   ";
        else
            graph += (countOfNumbers + 1) + "  ";

        for (int a = 0; a < countOfArray[countOfNumbers]; a++)
        {
            graph += "*";
        }
        occurrencesReport += "\n";
        graph += "\n";
    }

    System.out.println(occurrencesReport);
    System.out.println(graph);

    int max = 0;
    int test = 0;
    for (int counter = 0; counter < countOfArray.length; counter++)
    {
        if (countOfArray[counter] >= max)
        {
            max = countOfArray[counter];
            test = counter + 1;
        }
    }

    System.out.println("The number that appears the most is " + test + ".");

}
}

The program creates an array that will store 100 integers (all of which are between 1 and 10), which are generated by a random number generator, and then print out ten numbers of this array per line. It then scans these integers, counts up how often each number appears and store the results in a second array. Following this, it outputs a horizontal bar chart of asterisks showing how often each number appears before finally outputting the number that appears the most often.

I thought I had the code totally and completely done, but I've just realised that if multiple numbers occur the same amount of times, the last part of my code can't handle this, e.g. if the numbers 3 and 5 both appears 12 times, the code can only produce one of them.

Does anyone have a way around this?

Thanks, Andrew

share|improve this question
    
Compute the max number of occurrences (your max variable), then do a second pass on the array, and print every number that has a number of occurrences equal to max. –  JB Nizet Oct 28 '12 at 18:25
    
By a second pass on the array, do you mean use another for loop? Sorry, I am a total beginner! –  Andrew Martin Oct 28 '12 at 18:34
    
Yes, that's what I mean. –  JB Nizet Oct 28 '12 at 18:42

3 Answers 3

up vote 0 down vote accepted

There are a couple of ways to address this, which range from quick to complex. The easiest way is to brute force it like such:

int max = 0;
//int test = 0;
for (int counter = 0; counter < countOfArray.length; counter++)
{
    if (countOfArray[counter] >= max)
    {
        max = countOfArray[counter];
        //test = counter + 1;
    }
}

System.out.print("The number that appears the most is");
boolean first = true;
for(int i = 0; i < countOfArray.length; i++)
{
    if(countOfArray[i] == max)
    {
        if(first)
            first = false;
        else
            System.out.print(",");
        System.out.print(" " + (i+1) );
    }
}
System.out.println(".");

Here's the output:

6   2   6   5   6   8   9   3   5   8   
9   8   10  10  4   5   8   9   8   5   
1   7   8   5   6   7   10  4   5   4   
2   7   9   2   3   3   1   2   10  3   
5   2   10  1   1   6   3   3   8   10  
2   6   10  2   5   1   4   10  8   7   
7   8   7   3   7   8   3   4   5   5   
7   8   9   8   6   6   8   1   10  3   
2   5   4   6   9   9   10  10  1   10  
9   4   10  9   7   3   4   3   2   4   

The number 1 occurs 7 times.
The number 2 occurs 9 times.
The number 3 occurs 11 times.
The number 4 occurs 9 times.
The number 5 occurs 11 times.
The number 6 occurs 9 times.
The number 7 occurs 9 times.
The number 8 occurs 13 times.
The number 9 occurs 9 times.
The number 10 occurs 13 times.

1   *******
2   *********
3   ***********
4   *********
5   ***********
6   *********
7   *********
8   *************
9   *********
10  *************

The number that appears the most is 8, 10.

There are much cleaner ways to go about it, but hopefully that gives you a decent start!

share|improve this answer
    
This is excellent, thank you. –  Andrew Martin Oct 28 '12 at 18:40
    
@AndrewMartin I strive for excellence :) If you start using the Array types in java.util, they have member functions such as .indexOf(...) that make working with them much easier. –  Logan Nichols Oct 28 '12 at 18:44

I am assuming this is not some kinda homework, so i am providing you another approach than this.

- Use Collection like ArrayList instead of Array.

- Use method like Collections.frequency(Object o) to know the number of time the value got occurred in that Collection.

share|improve this answer
    
It's a practical, so it is a kinda homework - I've never actually used ArrayList before. –  Andrew Martin Oct 28 '12 at 18:28

Instead of just doing

System.out.println("The number that appears the most is " + test + ".");

Again loop through countOfArray, do the print for each element that has the same value as max.

share|improve this answer

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.