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I am looking for a way to generate a random integer from 0-x, where x is defined at runtime by the human user. However, half of those numbers must be greater than zero and less than or equal to 5 (0,5] and the other half must be in the set of [6,x].

I know that the following code will generate a number from 0-x. The main problem is ensuring that half of them will be in the set of (0,5]

    Math.random() * x;

I'm not looking for someone to do this for me, just looking for some hints. Thank you!

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2  
Just generate two sets, and shuffle the end result. If you're storing the result in a list, you can use Collections.shuffle() –  Gijs Overvliet Oct 18 '12 at 14:43
    
Do you have a number specifying the size of the entire generated set, being that you want half of it to be in (0,5], and the oher half in the [6,x]? –  Less Oct 18 '12 at 14:49
    
no, I have no such set size since this is supposed to be used for a grocery line simulator. The "customers" arrive randomly between t=0 and t= simulation length. I have the customer arrival worked out, but this portion is to determine how many items are in their cart since half of them are shopping for at most 5 items, the rest are shopping for at least 6 items and at most x items. –  audiFanatic Oct 18 '12 at 15:02
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3 Answers 3

up vote 3 down vote accepted

You could first flip a coin and based on that generate upper or lower number:

final Random rnd = new Random();
while (true)
  System.out.println(rnd.nextBoolean()? rnd.nextInt(6) : 6 + rnd.nextInt(x-5));

Or, using the unwieldy Math.random() (bound to have trouble at the edges of the range):

while (true)
  System.out.println(Math.floor(
     math.random() < 0.5 ? (Math.random() * 6) : (6 + (x-5) * Math.random())
  ));

Consider this as a hint only :)

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I'm not sure, but I think he wants exactly half, not probabilistically half. –  Brian Oct 18 '12 at 14:45
    
Very elegant, and nice! –  ppeterka Oct 18 '12 at 14:45
    
@brian Usually in this context it is meant statistically half, but let's hear it from OP. –  Marko Topolnik Oct 18 '12 at 14:46
    
Can you explain what the ? and the : mean? –  YiweiG Oct 18 '12 at 14:56
1  
Yes, I can. It is the conditional operator, also known as the ternary operator. –  Marko Topolnik Oct 18 '12 at 14:57
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I'd do this:

 double halfX= x / 2.0;
double random = Math.random() * x; 
if( random< halfX ) {
    random = random*5.0/(halfX);
} else {
    random = (random/halfX - 1) * (x-5.0) + 5.0 ;
}

I think it is good now. This is less understandable and readable, but has only one call to random for each invocation. Apart from the fact MarkoTopolnic pointed out: the user needed an integer... I'd have to calculate what rounding would do to the distribution.

This is absolutely not easy... My head aches, so the best I can come up with:

double halfX= x / 2.0 + 1.0;
double random = Math.random() * (x+2.0); 
int randomInt;
if( random< halfX ) {
    randomInt = (int) (random*6.0/(halfX)); //truncating, means equal distribution from 0-5
} else {
    randomInt = (int) ((random/halfX - 1.0) * (x-5.0) + 6.0) ; //notice x-5.0, this range before truncation is actually from 6.0 to x+1.0, after truncating it gets to [6;x], as this is integer
}

The second part I'm not sure though... A few hours of sleep would get it right... I hope the intentions and logic is clear though...

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1  
Yes, tricky stuff this Math.random()... But we can leave at least something to OP to complete his homework :) –  Marko Topolnik Oct 18 '12 at 15:05
    
@MarkoTopolnik I enjoyed this, and seen some fantastic ways one can code :) –  ppeterka Oct 18 '12 at 15:07
    
I'm glad you share my taste for concise, FP-style code :) –  Marko Topolnik Oct 18 '12 at 15:11
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In case anyone is curious, here's the solution I came up with based on Marko's solution.

I had the following class defined for another part of this program.

public class BooleanSource
{
private double probability;

BooleanSource(double p) throws IllegalArgumentException
{
    if(p < 0.0)
        throw new IllegalArgumentException("Probability too small");
    if(p > 1.0)
        throw new IllegalArgumentException("Probability too large");
    probability = p;
}

public boolean occurs()
{
    return (Math.random() < probability);
}
}

With that, I did the following

    private static void setNumItems(Customer c, int maxItems)
{
            BooleanSource numProb = new BooleanSource(0.5);
            int numItems;

            if(numProb.occurs())
            {
                double num = (Math.random()*4)+1;
                numItems = (int) Math.round(num);
            }
            else
            {
                double num = 5 + (maxItems-5)*Math.random();
                numItems = (int) Math.round(num);
            }

            c.setNumItems(numItems);
}
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