Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

In this case, the MAX is only 5, so I could check the duplicates one by one, but how could I do this in a simpler way? For example, what if the MAX has a value of 20? Thanks.

int MAX = 5;

for (i = 1 , i <= MAX; i++)
{
        drawNum[1] = (int)(Math.random()*MAX)+1;

        while (drawNum[2] == drawNum[1])
        {
             drawNum[2] = (int)(Math.random()*MAX)+1;
        }
        while ((drawNum[3] == drawNum[1]) || (drawNum[3] == drawNum[2]) )
        {
             drawNum[3] = (int)(Math.random()*MAX)+1;
        }
        while ((drawNum[4] == drawNum[1]) || (drawNum[4] == drawNum[2]) || (drawNum[4] == drawNum[3]) )
        {
             drawNum[4] = (int)(Math.random()*MAX)+1;
        }
        while ((drawNum[5] == drawNum[1]) ||
               (drawNum[5] == drawNum[2]) ||
               (drawNum[5] == drawNum[3]) ||
               (drawNum[5] == drawNum[4]) )
        {
             drawNum[5] = (int)(Math.random()*MAX)+1;
        }

}
share|improve this question
3  
Many (pseudo) random number generators don't repeat for their full "cycle". The problem is, of course, that their full "cycle" is billions or trillions of values, and the values they produce can be any one of those billions or trillions of values. You could in theory produce a random number generator that had a "cycle" of 5 or 10 or whatever, but it's probably more trouble than it's worth. – Hot Licks Oct 27 '11 at 11:41
1  
Also a random number generator which doesn't repeat is even "less" random: if MAX=5 and you read 3 numbers, you can guess the next with 50% probability, if you read 4 numbers, you know the next for 100% sure! – icza Aug 26 '14 at 13:26
    
Answered on a duplicate question here – Alex Jul 29 '15 at 13:31
    
See also Generating Unique Random Numbers in Java – Andreas Jan 27 at 18:37

15 Answers 15

up vote 102 down vote accepted

The simplest way would be to create a list of the possible numbers (1..20 or whatever) and then shuffle them with Collections.shuffle. Then just take however many elements you want. This is great if your range is equal to the number of elements you need in the end (e.g. for shuffling a deck of cards).

That doesn't work so well if you want (say) 10 random elements in the range 1..10,000 - you'd end up doing a lot of work unnecessarily. At that point, it's probably better to keep a set of values you've generated so far, and just keep generating numbers in a loop until the next one isn't already present:

Random rng = new Random(); // Ideally just create one instance globally
// Note: use LinkedHashSet to maintain insertion order
Set<Integer> generated = new LinkedHashSet<Integer>();
while (generated.size() < numbersNeeded)
{
    Integer next = rng.nextInt(max) + 1;
    // As we're adding to a set, this will automatically do a containment check
    generated.add(next);
}

Be careful with the set choice though - I've very deliberately used LinkedHashSet as it maintains insertion order, which we care about here.

Yet another option is to always make progress, by reducing the range each time and compensating for existing values. So for example, suppose you wanted 3 values in the range 0..9. On the first iteration you'd generate any number in the range 0..9 - let's say you generate a 4.

On the second iteration you'd then generate a number in the range 0..8. If the generated number is less than 4, you'd keep it as is... otherwise you add one to it. That gets you a result range of 0..9 without 4. Suppose we get 7 that way.

On the third iteration you'd generate a number in the range 0..7. If the generated number is less than 4, you'd keep it as is. If it's 4 or 5, you'd add one. If it's 6 or 7, you'd add two. That way the result range is 0..9 without 4 or 6.

share|improve this answer
    
I really enjoy the Collections.shuffle , thanks man :) – nXqd May 20 '11 at 18:32
    
Generate an array of the possible values, randomly select one (random number mod array size), remove (and save) selected number, then repeat. – Hot Licks Oct 27 '11 at 11:43
    
Or use a random generator with a full cycle (the ones based on primes can use small primes - with corresponding small cycles) and drop values out of range. – Paul de Vrieze Oct 29 '11 at 19:58
    
The "Yet another option is to always make progress" is WAAAAY better of a solution. Please edit for reflect. And thank you for this awesome answer. – user123321 Mar 27 '12 at 22:00
    
@musselwhizzle: Will try to find time some time soon. I'm not sure about "WAAAY better" though - it's going to be significantly less "obviously correct" even though it'll be more efficient. Quite often I'm happy to sacrifice performance for the sake of readability. – Jon Skeet Mar 27 '12 at 22:14

Here's how I'd do it

import java.util.ArrayList;
import java.util.Random;

public class Test {
    public static void main(String[] args) {
        int size = 20;

        ArrayList<Integer> list = new ArrayList<Integer>(size);
        for(int i = 1; i <= size; i++) {
            list.add(i);
        }

        Random rand = new Random();
        while(list.size() > 0) {
            int index = rand.nextInt(list.size());
            System.out.println("Selected: "+list.remove(index));
        }
    }
}

As the esteemed Mr Skeet has pointed out:
If n is the number of randomly selected numbers you wish to choose and N is the total sample space of numbers available for selection:

  1. If n << N, you should just store the numbers that you have picked and check a list to see if the number selected is in it.
  2. If n ~= N, you should probably use my method, by populating a list containing the entire sample space and then removing numbers from it as you select them.
share|improve this answer
    
Thank you! Works perfectly! – Nishanthi Grashia Jul 28 '14 at 7:27
//random numbers are 0,1,2,3 
ArrayList<Integer> numbers = new ArrayList<Integer>();   
Random randomGenerator = new Random();
while (numbers.size() < 4) {

    int random = randomGenerator .nextInt(4);
    if (!numbers.contains(random)) {
        numbers.add(random);
    }
}
share|improve this answer

The most efficient, basic way to have non-repeating random numbers is explained by this pseudo-code. There is no need to have nested loops or hashed lookups:

// get 5 unique random numbers, possible values 0 - 19
// (assume desired number of selections < number of choices)

const int POOL_SIZE = 20;
const int VAL_COUNT = 5;

declare Array mapping[POOL_SIZE];
declare Array results[VAL_COUNT];

declare i int;
declare r int;
declare max_rand int;

// create mapping array
for (i=0; i<POOL_SIZE; i++) {
   mapping[i] = i;
}

max_rand = POOL_SIZE-1;  // start loop searching for maximum value (19)

for (i=0; i<VAL_COUNT; i++) {
    r = Random(0, max_rand); // get random number
    results[i] = mapping[r]; // grab number from map array
    mapping[r] = max_rand;  // place item past range at selected location

    max_rand = max_rand - 1;  // reduce random scope by 1
}

Suppose first iteration generated random number 3 to start (from 0 - 19). This would make results[0] = mapping[3], i.e., the value 3. We'd then assign mapping[3] to 19.

In the next iteration, the random number was 5 (from 0 - 18). This would make results[1] = mapping[5], i.e., the value 5. We'd then assign mapping[5] to 18.

Now suppose the next iteration chose 3 again (from 0 - 17). results[2] would be assigned the value of mapping[3], but now, this value is not 3, but 19.

This same protection persists for all numbers, even if you got the same number 5 times in a row. E.g., if the random number generator gave you 0 five times in a row, the results would be: [ 0, 19, 18, 17, 16 ].

You would never get the same number twice.

share|improve this answer
    
I doubt this is as random as you make it sound. Does it pass the standard randomness tests?; it would seem to concentrate numbers near the end of the spectrum. – tucuxi Jun 24 '13 at 8:28
    
Here is a base case. Pool is { a, b, c }. We need 2 non-repeating elements. Following algorithm, here are combinations we could draw and their results: 0,0 : a,c 0,1 : a,b 1,0 : b,a 1,1 : b,c 2,0 : c,a 2,1 : c,b Score: a-4, b-4, c-4 – blackcatweb Jun 26 '13 at 16:41

Instead of doing all this create a LinkedHashSet object and random numbers to it by Math.random() function .... if any duplicated entry occurs the LinkedHashSet object won't add that number to its List ... Since in this Collection Class no duplicate values are allowed .. in the end u get a list of random numbers having no duplicated values .... :D

share|improve this answer

There is another way of doing "random" ordered numbers with LFSR, take a look at:

http://en.wikipedia.org/wiki/Linear_feedback_shift_register

with this technique you can achieve the ordered random number by index and making sure the values are not duplicated.

But these are not TRUE random numbers because the random generation is deterministic.

But depending your case you can use this technique reducing the amount of processing on random number generation when using shuffling.

Here a LFSR algorithm in java, (I took it somewhere I don't remeber):

public final class LFSR {
    private static final int M = 15;

    // hard-coded for 15-bits
    private static final int[] TAPS = {14, 15};

    private final boolean[] bits = new boolean[M + 1];

    public LFSR() {
        this((int)System.currentTimeMillis());
    }

    public LFSR(int seed) {
        for(int i = 0; i < M; i++) {
            bits[i] = (((1 << i) & seed) >>> i) == 1;
        }
    }

    /* generate a random int uniformly on the interval [-2^31 + 1, 2^31 - 1] */
    public short nextShort() {
        //printBits();

        // calculate the integer value from the registers
        short next = 0;
        for(int i = 0; i < M; i++) {
            next |= (bits[i] ? 1 : 0) << i;
        }

        // allow for zero without allowing for -2^31
        if (next < 0) next++;

        // calculate the last register from all the preceding
        bits[M] = false;
        for(int i = 0; i < TAPS.length; i++) {
            bits[M] ^= bits[M - TAPS[i]];
        }

        // shift all the registers
        for(int i = 0; i < M; i++) {
            bits[i] = bits[i + 1];
        }

        return next;
    }

    /** returns random double uniformly over [0, 1) */
    public double nextDouble() {
        return ((nextShort() / (Integer.MAX_VALUE + 1.0)) + 1.0) / 2.0;
    }

    /** returns random boolean */
    public boolean nextBoolean() {
        return nextShort() >= 0;
    }

    public void printBits() {
        System.out.print(bits[M] ? 1 : 0);
        System.out.print(" -> ");
        for(int i = M - 1; i >= 0; i--) {
            System.out.print(bits[i] ? 1 : 0);
        }
        System.out.println();
    }


    public static void main(String[] args) {
        LFSR rng = new LFSR();
        Vector<Short> vec = new Vector<Short>();
        for(int i = 0; i <= 32766; i++) {
            short next = rng.nextShort();
            // just testing/asserting to make 
            // sure the number doesn't repeat on a given list
            if (vec.contains(next))
                throw new RuntimeException("Index repeat: " + i);
            vec.add(next);
            System.out.println(next);
        }
    }
}
share|improve this answer

You could use one of the classes implementing the Set interface (API), and then each number you generate, use Set.add() to insert it.

If the return value is false, you know the number has already been generated before.

share|improve this answer

Your problem seems to reduce to choose k elements at random from a collection of n elements. The Collections.shuffle answer is thus correct, but as pointed out inefficient: its O(n).

http://en.wikipedia.org/wiki/Fisher%E2%80%93Yates_shuffle has a O(k) version when the array already exists. In your case, there is no array of elements and creating the array of elements could be very expensive, say if max were 10000000 instead of 20.

The shuffle algorithm involves initializing an array of size n where every element is equal to its index, picking k random numbers each number in a range with the max one less than the previous range, then swapping elements towards the end of the array.

You can do the same operation in O(k) time with a hashmap although I admit its kind of a pain. Note that this is only worthwhile if k is much less than n. (ie k ~ lg(n) or so), otherwise you should use the shuffle directly.

You will use your hashmap as an efficient representation of the backing array in the shuffle algorithm. Any element of the array that is equal to its index need not appear in the map. This allows you to represent an array of size n in constant time, there is no time spent initializing it.

  1. Pick k random numbers: the first is in the range 0 to n-1, the second 0 to n-2, the third 0 to n-3 and so on, thru n-k.

  2. Treat your random numbers as a set of swaps. The first random index swaps to the final position. The second random index swaps to the second to last position. However, instead of working against a backing array, work against your hashmap. Your hashmap will store every item that is out of position.

int getValue(i) { if (map.contains(i)) return map[i]; return i; } void setValue(i, val) { if (i == val) map.remove(i); else map[i] = val; } int[] chooseK(int n, int k) { for (int i = 0; i < k; i++) { int randomIndex = nextRandom(0, n - i); //(n - i is exclusive) int desiredIndex = n-i-1; int valAtRandom = getValue(randomIndex); int valAtDesired = getValue(desiredIndex); setValue(desiredIndex, valAtRandom); setValue(randomIndex, valAtDesired); } int[] output = new int[k]; for (int i = 0; i < k; i++) { output[i] = (getValue(n-i-1)); } return output; }

share|improve this answer

Generating all the indices of a sequence is generally a bad idea, as it might take a lot of time, especially if the ratio of the numbers to be chosen to MAX is low (the complexity becomes dominated by O(MAX)). This gets worse if the ratio of the numbers to be chosen to MAX approaches one, as then removing the chosen indices from the sequence of all also becomes expensive (we approach O(MAX^2/2)). But for small numbers, this generally works well and is not particularly error-prone.

Filtering the generated indices by using a collection is also a bad idea, as some time is spent in inserting the indices into the sequence, and progress is not guaranteed as the same random number can be drawn several times (but for large enough MAX it is unlikely). This could be close to complexity
O(k n log^2(n)/2), ignoring the duplicates and assuming the collection uses a tree for efficient lookup (but with a significant constant cost k of allocating the tree nodes and possibly having to rebalance).

Another option is to generate the random values uniquely from the beginning, guaranteeing progress is being made. That means in the first round, a random index in [0, MAX] is generated:

items i0 i1 i2 i3 i4 i5 i6 (total 7 items)
idx 0       ^^             (index 2)

In the second round, only [0, MAX - 1] is generated (as one item was already selected):

items i0 i1    i3 i4 i5 i6 (total 6 items)
idx 1          ^^          (index 2 out of these 6, but 3 out of the original 7)

The values of the indices then need to be adjusted: if the second index falls in the second half of the sequence (after the first index), it needs to be incremented to account for the gap. We can implement this as a loop, allowing us to select arbitrary number of unique items.

For short sequences, this is quite fast O(n^2/2) algorithm:

void RandomUniqueSequence(std::vector<int> &rand_num,
    const size_t n_select_num, const size_t n_item_num)
{
    assert(n_select_num <= n_item_num);

    rand_num.clear(); // !!

    // b1: 3187.000 msec (the fastest)
    // b2: 3734.000 msec
    for(size_t i = 0; i < n_select_num; ++ i) {
        int n = n_Rand(n_item_num - i - 1);
        // get a random number

        size_t n_where = i;
        for(size_t j = 0; j < i; ++ j) {
            if(n + j < rand_num[j]) {
                n_where = j;
                break;
            }
        }
        // see where it should be inserted

        rand_num.insert(rand_num.begin() + n_where, 1, n + n_where);
        // insert it in the list, maintain a sorted sequence
    }
    // tier 1 - use comparison with offset instead of increment
}

Where n_select_num is your 5 and n_number_num is your MAX. The n_Rand(x) returns random integers in [0, x] (inclusive). This can be made a bit faster if selecting a lot of items (e.g. not 5 but 500) by using binary search to find the insertion point. To do that, we need to make sure that we meet the requirements.

We will do binary search with the comparison n + j < rand_num[j] which is the same as
n < rand_num[j] - j. We need to show that rand_num[j] - j is still a sorted sequence for a sorted sequence rand_num[j]. This is fortunately easily shown, as the lowest distance between two elements of the original rand_num is one (the generated numbers are unique, so there is always difference of at least 1). At the same time, if we subtract the indices j from all the elements
rand_num[j], the differences in index are exactly 1. So in the "worst" case, we get a constant sequence - but never decreasing. The binary search can therefore be used, yielding O(n log(n)) algorithm:

struct TNeedle { // in the comparison operator we need to make clear which argument is the needle and which is already in the list; we do that using the type system.
    int n;

    TNeedle(int _n)
        :n(_n)
    {}
};

class CCompareWithOffset { // custom comparison "n < rand_num[j] - j"
protected:
    std::vector<int>::iterator m_p_begin_it;

public:
    CCompareWithOffset(std::vector<int>::iterator p_begin_it)
        :m_p_begin_it(p_begin_it)
    {}

    bool operator ()(const int &r_value, TNeedle n) const
    {
        size_t n_index = &r_value - &*m_p_begin_it;
        // calculate index in the array

        return r_value < n.n + n_index; // or r_value - n_index < n.n
    }

    bool operator ()(TNeedle n, const int &r_value) const
    {
        size_t n_index = &r_value - &*m_p_begin_it;
        // calculate index in the array

        return n.n + n_index < r_value; // or n.n < r_value - n_index
    }
};

And finally:

void RandomUniqueSequence(std::vector<int> &rand_num,
    const size_t n_select_num, const size_t n_item_num)
{
    assert(n_select_num <= n_item_num);

    rand_num.clear(); // !!

    // b1: 3578.000 msec
    // b2: 1703.000 msec (the fastest)
    for(size_t i = 0; i < n_select_num; ++ i) {
        int n = n_Rand(n_item_num - i - 1);
        // get a random number

        std::vector<int>::iterator p_where_it = std::upper_bound(rand_num.begin(), rand_num.end(),
            TNeedle(n), CCompareWithOffset(rand_num.begin()));
        // see where it should be inserted

        rand_num.insert(p_where_it, 1, n + p_where_it - rand_num.begin());
        // insert it in the list, maintain a sorted sequence
    }
    // tier 4 - use binary search
}

I have tested this on three benchmarks. First, 3 numbers were chosen out of 7 items, and a histogram of the items chosen was accumulated over 10,000 runs:

4265 4229 4351 4267 4267 4364 4257

This shows that each of the 7 items was chosen approximately the same number of times, and there is no apparent bias caused by the algorithm. All the sequences were also checked for correctness (uniqueness of contents).

The second benchmark involved choosing 7 numbers out of 5000 items. The time of several versions of the algorithm was accumulated over 10,000,000 runs. The results are denoted in comments in the code as b1. The simple version of the algorithm is slightly faster.

The third benchmark involved choosing 700 numbers out of 5000 items. The time of several versions of the algorithm was again accumulated, this time over 10,000 runs. The results are denoted in comments in the code as b2. The binary search version of the algorithm is now more than two times faster than the simple one.

The second method starts being faster for choosing more than cca 75 items on my machine (note that the complexity of either algorithm does not depend on the number of items, MAX).

It is worth mentioning that the above algorithms generate the random numbers in ascending order. But it would be simple to add another array to which the numbers would be saved in the order in which they were generated, and returning that instead (at negligible additional cost O(n)). It is not necessary to shuffle the output: that would be much slower.

Note that the sources are in C++, I don't have Java on my machine, but the concept should be clear.

EDIT:

For amusement, I have also implemented the approach that generates a list with all the indices
0 .. MAX, chooses them randomly and removes them from the list to guarantee uniqueness. Since I've chosen quite high MAX (5000), the performance is catastrophic:

// b1: 519515.000 msec
// b2: 20312.000 msec
std::vector<int> all_numbers(n_item_num);
std::iota(all_numbers.begin(), all_numbers.end(), 0);
// generate all the numbers

for(size_t i = 0; i < n_number_num; ++ i) {
    assert(all_numbers.size() == n_item_num - i);
    int n = n_Rand(n_item_num - i - 1);
    // get a random number

    rand_num.push_back(all_numbers[n]); // put it in the output list
    all_numbers.erase(all_numbers.begin() + n); // erase it from the input
}
// generate random numbers

I have also implemented the approach with a set (a C++ collection), which actually comes second on benchmark b2, being only about 50% slower than the approach with the binary search. That is understandable, as the set uses a binary tree, where the insertion cost is similar to binary search. The only difference is the chance of getting duplicate items, which slows down the progress.

// b1: 20250.000 msec
// b2: 2296.000 msec
std::set<int> numbers;
while(numbers.size() < n_number_num)
    numbers.insert(n_Rand(n_item_num - 1)); // might have duplicates here
// generate unique random numbers

rand_num.resize(numbers.size());
std::copy(numbers.begin(), numbers.end(), rand_num.begin());
// copy the numbers from a set to a vector

Full source code is here.

share|improve this answer

Another approach which allows you to specify how many numbers you want with size and the min and max values of the returned numbers

public static int getRandomInt(int min, int max) {
    Random random = new Random();
    return random.nextInt((max - min) + 1) + min;
}

public static ArrayList<Integer> getRandomNonRepeatingIntegers(int size, int min,
                                                               int max) {
    ArrayList<Integer> numbers = new ArrayList<Integer>();
    while (numbers.size() < size) {
        int random = getRandomInt(min, max);
        if (!numbers.contains(random))
            numbers.add(random);
    }
    return numbers;
}

To use it (returning 7 numbers between 0 and 25.

    ArrayList<Integer> list = getRandomNonRepeatingIntegers(7, 0, 25);
    for (int i = 0; i < list.size(); i++) {
        System.out.println("" + list.get(i));
    }
share|improve this answer

There is algorithm of card batch: you create ordered array of numbers (the "card batch") and in every iteration you select a number at random position from it (removing the selected number from the "card batch" of course).

share|improve this answer

Here is an efficient solution for fast creation of a randomized array. After randomization you can simply pick the n-th element e of the array, increment n and return e. This solution has O(1) for getting a random number and O(n) for initialization, but as a tradeoff requires a good amount of memory if n gets large enough.

share|improve this answer

There is a more efficient and less cumbersome solution for integers than a Collections.shuffle.

The problem is the same as successively picking items from only the un-picked items in a set and setting them in order somewhere else. This is exactly like randomly dealing cards or drawing winning raffle tickets from a hat or bin.

This algorithm works for loading any array and achieving a random order at the end of the load. It also works for adding into a List collection (or any other indexed collection) and achieving a random sequence in the collection at the end of the adds.

It can be done with a single array, created once, or a numerically ordered collectio, such as a List, in place. For an array, the initial array size needs to be the exact size to contain all the intended values. If you don't know how many values might occur in advance, using a numerically orderred collection, such as an ArrayList or List, where the size is not immutable, will also work. It will work universally for an array of any size up to Integer.MAX_VALUE which is just over 2,000,000,000. List objects will have the same index limits. Your machine may run out of memory before you get to an array of that size. It may be more efficient to load an array typed to the object types and convert it to some collection, after loading the array. This is especially true if the target collection is not numerically indexed.

This algorithm, exactly as written, will create a very even distribution where there are no duplicates. One aspect that is VERY IMPORTANT is that it has to be possible for the insertion of the next item to occur up to the current size + 1. Thus, for the second item, it could be possible to store it in location 0 or location 1. For the 20th item, it could be possible to store it in any location, 0 through 19. It is just as possible the first item to stay in location 0 as it is for it to end up in any other location. It is just as possible for the next new item to go anywhere, including the next new location.

The randomness of the sequence will be as random as the randomness of the random number generator.

This algorithm can also be used to load reference types into random locations in an array. Since this works with an array, it can also work with collections. That means you don't have to create the collection and then shuffle it or have it ordered on whatever orders the objects being inserted. The collection need only have the ability to insert an item anywhere in the collection or append it.

// RandomSequence.java
import java.util.Random;
public class RandomSequence {

    public static void main(String[] args) {
        // create an array of the size and type for which
        // you want a random sequence
        int[] randomSequence = new int[20];
        Random randomNumbers = new Random();

        for (int i = 0; i < randomSequence.length; i++ ) {
            if (i == 0) { // seed first entry in array with item 0
                randomSequence[i] = 0; 
            } else { // for all other items...
                // choose a random pointer to the segment of the
                // array already containing items
                int pointer = randomNumbers.nextInt(i + 1);
                randomSequence[i] = randomSequence[pointer]; 
                randomSequence[pointer] = i;
                // note that if pointer & i are equal
                // the new value will just go into location i and possibly stay there
                // this is VERY IMPORTANT to ensure the sequence is really random
                // and not biased
            } // end if...else
        } // end for
        for (int number: randomSequence) {
                System.out.printf("%2d ", number);
        } // end for
    } // end main
} // end class RandomSequence
share|improve this answer

My preliminary code, using only fundamentals.
This class gives you an array filled with no duplicating numbers, ranging from 1 to the size of the array.
The only outside help is to generate a random number.
The conditional, index == count in the while loop, is the tricky part, and what makes this method work.
Essentially, it's asking: The random number is not equal to the array's element, but is this array element the next in line for a number?

public class Numbers
{
    private int MAX; // the amount of numbers
    private int count = 0; // counter for the array's elements
    private int[] nums; // the array for the numbers

    public Numbers(int x)
    {
        MAX = x; // MAX equal to constructor's parameter
        nums = new int[MAX]; // creates array object
        while (count < MAX) // call to drawNum() until the array is full
            drawNum();
    }

    public void drawNum()
    {
        int num = (int)(Math.random()*MAX) + 1; // random number, from 1 to MAX
        int index = 0; // counter for while loop
        boolean loop = true; // conditional for while loop

        while (loop)
        {
            if (num == nums[index]) // if random number is equal to the array's element, end loop
                loop = false;  

            if (num != nums[index] && index == count) // index == count!
            {
                nums[count] = num; // random number's added to the array, 
                count++; // ++ to the array's counter
                loop = false; // end loop
            }

            index++; // ++ to the while loop counter
        }
    }
}
share|improve this answer

It really all depends on exactly WHAT you need the random generation for, but here's my take.

First, create a standalone method for generating the random number. Be sure to allow for limits.

public static int newRandom(int limit){
    return generatedRandom.nextInt(limit);  }

Next, you will want to create a very simple decision structure that compares values. This can be done in one of two ways. If you have a very limited amount of numbers to verify, a simple IF statement will suffice:

public static int testDuplicates(int int1, int int2, int int3, int int4, int int5){
    boolean loopFlag = true;
    while(loopFlag == true){
        if(int1 == int2 || int1 == int3 || int1 == int4 || int1 == int5 || int1 == 0){
            int1 = newRandom(75);
            loopFlag = true;    }
        else{
            loopFlag = false;   }}
    return int1;    }

The above compares int1 to int2 through int5, as well as making sure that there are no zeroes in the randoms.

With these two methods in place, we can do the following:

    num1 = newRandom(limit1);
    num2 = newRandom(limit1);
    num3 = newRandom(limit1);
    num4 = newRandom(limit1);
    num5 = newRandom(limit1);

Followed By:

        num1 = testDuplicates(num1, num2, num3, num4, num5);
        num2 = testDuplicates(num2, num1, num3, num4, num5);
        num3 = testDuplicates(num3, num1, num2, num4, num5);
        num4 = testDuplicates(num4, num1, num2, num3, num5);
        num5 = testDuplicates(num5, num1, num2, num3, num5);

If you have a longer list to verify, then a more complex method will yield better results both in clarity of code and in processing resources.

Hope this helps. This site has helped me so much, I felt obliged to at least TRY to help as well.

share|improve this answer

protected by Community Sep 15 '15 at 15:59

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.