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I need to find combination for the data which are given in following manner,

jobs  #ofIntervals
----  -------------
4     1
1     2
3     2
0     3
2     3

have to make a combination set of the given jobs based on the the #ofIntervals. The output possible combinations will affect the position of jobs. If there is more than one jobs with same #ofIntervals then only change on those jobs position will make new job set. The possible outcome of the given input should like this,

combination-1: 4 1 3 0 2    // same as input

combination-2: 4 3 1 0 2    // here as job 3 and 1 have 2 #ofIntervals they make a new combination 

combination-3: 4 1 3 2 0    // here as job 2 and 0 have 3 #ofIntervals they make a new combination

combination-4: 4 3 1 2 0

Can anyone please help me to write a code or suggest an algorithm for that.

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closed as not a real question by Andremoniy, rgettman, Iswanto San, Jean, Jon Lin Apr 6 '13 at 0:26

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

8  
What have you attempted? –  Reimeus Apr 5 '13 at 12:07
    
I have tried using tree, but was unable to finish the code –  fean Apr 5 '13 at 12:11

2 Answers 2

up vote 0 down vote accepted

I like the answer that mbeckish wrote but here is the code that I wrote to actually do the work:

import java.util.ArrayList;
import java.util.List;

public class Test
{
    public static void main(String[] args)
    {
        List<JobsInterval> jobsIntervalList = new ArrayList<JobsInterval>();

        jobsIntervalList.add(new JobsInterval(4, 1));
        jobsIntervalList.add(new JobsInterval(1, 2));
        jobsIntervalList.add(new JobsInterval(3, 2));
        jobsIntervalList.add(new JobsInterval(0, 3));
        jobsIntervalList.add(new JobsInterval(2, 3));

        printPossibleCombinations(jobsIntervalList);
    }

    public static void printPossibleCombinations(List<JobsInterval> list)
    {
        //Assumes the list is already in interval order.
        int currentInterval = -1;
        List<List<JobsInterval>> outerList = new ArrayList<List<JobsInterval>>(list.size());
        List<JobsInterval> innerList = null;

        //Loop through the list and group them into separate lists by interval.
        for (JobsInterval ji : list)
        {
            if (ji.interval != currentInterval)
            {
                if (null != innerList)
                    outerList.add(innerList);

                currentInterval = ji.interval;
                innerList = new ArrayList<JobsInterval>(list.size());
            }

            innerList.add(ji);
        }

        if (null != innerList)
            outerList.add(innerList);

        print(0, outerList, null);
    }

    public static void permute(StringBuilder value, List<JobsInterval> list, List<String> permutations)
    {
        //Check to see if this is the last recursive call
        if (0 == list.size())
        {
            permutations.add(value.toString());
        }
        else
        {
            List<JobsInterval> subList;

            for (int i = 0; i < list.size(); i++)
            {
                subList = new ArrayList<>(list);
                subList.remove(i);
                permute(new StringBuilder(null == value ? "" : value).append(list.get(i).jobs), subList, permutations);
            }
        }
    }

    public static void print(int index, List<List<JobsInterval>> list, StringBuilder value)
    {
        //Check to see if this is the last recursive call
        if (list.size() == index)
            System.out.println(value.toString());
        else
        {
            List<JobsInterval> intervalGroup = list.get(index);
            List<String> permutations = new ArrayList<String>();

            permute(null, intervalGroup, permutations);

            for (String permutation : permutations)
                print(index+1, list, new StringBuilder(null == value ? "" : value).append(permutation));
        }
    }

    private static class JobsInterval
    {
        public int jobs;
        public int interval;

        public JobsInterval(int j, int i)
        {
            jobs = j;
            interval = i;
        }

        public String toString()
        {
            return new StringBuilder().append('{').append(jobs).append(", ").append(interval).append('}').toString();
        }
    }
}
share|improve this answer
    
it works great, thanks –  fean Apr 5 '13 at 13:57
    
Good code, but -1 for just giving code and not hints/non-complete answrr –  Doorknob 冰 Apr 5 '13 at 14:22
1  
@Doorknob The reason I didn't write more is because I agreed with mbeckish's answer. I could have reiternated what mbeckish wrote but I felt that would be copying an already existing answer. That is why I wrote my reference to that answer and upvoted it. –  BPaasch Apr 5 '13 at 14:37
  1. Separate your jobs into separate sets, where each member of a set has the same "#of intervals" value.
  2. For each set, generate a collection that holds all permutations of that set.
  3. Generate a collection that holds the cartesian product of the collections from step 2.

This final collection is your solution.

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