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I have a mathematical range [a, b] and I am trying to break the range into 'n' equal parts. The numbers, a and b can be anything but for an example let's assume the range is [0, 1].

Basically what I am trying to do is let's say that if n = 4 and the range is [0, 1] then I want breakpoints for that range to be calculated as [.25, .5, .75] because these divide [0, 1] into 4 equal points. Similarly, if the range is [0, 1] and n = 2, I want the breakpoints to be [.5].

What is the fastest way of computing these breakpoints in java? Is there a built-in function for doing this sort of thing?

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u need to write .. –  Kick Feb 26 at 19:31
1  
Not likely that there's anything built-in like that in Java. Further, you don't specify if you're using an ADT or arrays to solve the problem. Also, "speed" is ever so slightly secondary to actually getting a working solution, so when you're implementing this, don't worry about performance yet. –  Makoto Feb 26 at 19:32
    
If you get some code working, you can post it and ask whether the speed can be improved. But a question like that probably belongs on Code Review instead of StackOverflow. –  ajb Feb 26 at 19:37
    
Thanks... I already have code to do this... I was just curious if there is a faster way of doing this using some built-in function since matlab has one. So I was just curious if Java had something similar or not. Thanks though! –  A Y Feb 26 at 19:41

6 Answers 6

up vote 4 down vote accepted

Say you have numbers [x,y] and you want n parts. Then you could do calculate that difference:

diff = (y-x)/n

Now create a variable d which equals to 0 and loop from 1 to n. As you loop, add diff to d and print d. Some pseudo code:

diff = (y-x)/n;     
d = 0;
for(1 to n)
    d = d + diff
    print(d)

NOTE: Use double.

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If the range is [a,b] and it has to be divided in n partitions, then one approach can be:-

public class Range
{
    public static void main(String[] args)
    {
        double lowLimit = a;
        double highLimit = b;
        double difference = (b-a);
        double partition = difference/n;   // n is the number partitions of the range [a,b]
        System.out.println("The partitions are:");
        for(int i = 1;i<=n; i++)
            {
                    lowlimit += difference;
            System.out.print(lowlimit+"\t");
            }
        System.out.println();
    }
}
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I removed the double from the loop because in Java, work with floating point should be avoided because it might lead some really weird results. –  kusur Feb 27 at 20:30

Not sure if this is what you need (to print breaks, or System break on those breakPoints), anyway, both are over here

double division += (maxRange - minRange)/n;
for(int i=0; i<=n; i++){
    double minRange = 0;
    double maxRange = 1;
    double breaks[i] = division;
    //System.out.println(breaks[i]); ----------------------USE THIS ONE IF PRINTING BREAKPOINT IS NEEDED
    //new java.util.Scanner(System.in).nextLine(); --------THIS LINE STOPS THE PROGRAM UNTIL YOU PRESS A KEY
}
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double dx = ((upper_bound - lower_bound)/n)

This will calculate the space between each point in the range.

If you wanted to place these points in an array, you would do as follows:

double value = lower_bound; 
for (int i = 0; i < n; i++) {
    double value += dx;
    double_array[i] = value;
}

You haven't specified what sort of data structure you are working with, so beyond this simple array implementation I cannot help you without further explanation.

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Here's an approach with while loop:

public class Breakpoint
{
  public Breakpoint()
  {
    double start = 0;
    double end = 1;

    double n = 4;

    double difference = (end - start) / n;
    double value = start;

    while (value < end)
    {
      value += difference;
      System.out.println(value);
    }
  }

  public static void main(String[] args)
  {
    new Breakpoint();
  }
}
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Code just to give you an idea where to start:

int a = 0;
int b = 1;
int n = 4;

double fraction = (b - a) / (double) n;
for (int i = 0; i < n; ++i) {
    System.out.println("Lower bound: " + i * fraction + "; Upper bound: " + (i + 1) * fraction);
}
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This program prints all 0. Doesn't run properly. –  Aman Agnihotri Feb 26 at 19:47

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