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I'm trying to make a Integer (int) array with random numbers NOT growing. For example: 3 10 5 9 20 But NOT: 3 5 9 10 20 (because they just grow)

I'm using Random class with this code (but I always get a growing list like in the second example):

int[] array1 = new int[5];
Random random_istance = new Random();
for (int i=0;i<5;i++)
{
 array1[i] = random.Next(0,999999);
}

I also tried with a code like (I know it is horrible programming) :

int[] array1 = new int[5];
Random random_istance = new Random();
for (int i=0;i<5;i++)
{
 random = new Random(x-y*z); // re-instantation
 array1[i] = random.Next(0,999999);    // x,y and z are variable defined outside
}

(*) My final goal is to get an array of random int between 0 and 999999 but some are to not to be in a sequence (because later I'm going to apply an algorithm to order the array and would not make sense to order a already-ordered array).

Moreover I have to create ANOTHER array with elements just DECREASING (so one random array , and one decreasing array).

Any idea how to salve at least first problem (*)?

Thanks in advance for any help.

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3  
code posted doesn't compile. Nor when fixed(minor naming) does it give me the problem you are describing –  Mitch Wheat Feb 21 '12 at 10:51
5  
To create decreasing array, just create an array with random values and sort id descending. –  Archie Feb 21 '12 at 10:51
    
I assume that it was simple random that they were growing with your first approach(when compiling), hence thzat should work. –  Tim Schmelter Feb 21 '12 at 10:54
    
Growing can still be random. If you apply limitation to order you are affecting randomness. –  StaWho Feb 21 '12 at 10:56
    
If you're testing your sorting algoritm you can just use list of decreasing sequance like 5,4,3,2,1. It doesnt matter for such algorithms if there are realy random numbers. –  Piotr Auguscik Feb 21 '12 at 10:56

3 Answers 3

up vote 3 down vote accepted

One way to ensure that your array is not sorted from low to high is by ordering it randomly when you detect its ordered based on the value, something like:

        // while the array is sorted
        var sortedCopy = array1.ToList();
        sortedCopy.Sort();
        while (array1.SequenceEqual(sortedCopy))
        {
            Array.Sort(array1, new Comparison<int>((left, right) => random.Next(-1, 1)));
        }
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You can shuffle array after generating:

for (int i = 0; i < array1.Length; i++)
            {
                array1 = array1.OrderBy(c => random_istance.Next()).ToArray();
            }
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it is exactly as good as not shuffling it, because the array can 'suddenly' end up sorted. –  Zruty Feb 21 '12 at 11:33
    
Thank you for help.But this doesn't work (compile,but the order is the same) –  dragonmnl Feb 21 '12 at 12:01

Well, I don't know if this would be a good solution, but you may try this:

  1. Create random array with desired size.
  2. Sort this array ascending.
  3. Swap random elements i times, where i is a random number > 0.

To get decreasing numbers, create random array and just sort it descending.


Edit Of course it is possible, that you will end up with unchanged sequention if i is even. I think it is enough to swap elements i times, where i is greater than 0 and odd.

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