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I'm trying to generate a random Product list using the following method, but I'm getting the same Product instance multiple times.

Output for count 5:
Name: Qmlcloboa Price: 3.608848
Name: Qmlcloboa Price: 3.608848
Name: Qmlcloboa Price: 3.608848
Name: Qmlcloboa Price: 3.608848
Name: Qmlcloboa Price: 3.608848

I read on List type being a reference type & it overwrites stuff. Below is my code. am I missing something which could give me unique Product instances? Thanks & I would appreciate your help.

public List<Product> ProductGroupGenerator(int count)
    {
        List<Product> pList = new List<Product>();

        for (int i = 0; i < count; i++)
        {
            Random r = new Random();
            string alphabet = "abcdefghijklmnopqrstuvwyxzeeeiouea";
            Func<char> randomLetter = () => alphabet[r.Next(alphabet.Length)];
            Func<int, string> makeName =
              (length) => new string(Enumerable.Range(0, length)
                 .Select(x => x == 0 ? char.ToUpper(randomLetter()) : randomLetter())
                 .ToArray());

            //string last = makeName(r.Next(7) + 7);
            //string company = makeName(r.Next(7) + 7) + " Inc.";

            string prodName = makeName(r.Next(5) + 5);
            int unitsInStock = r.Next(100);
            float unitPrice = (float)(r.NextDouble() * 10);

            Product p = new Product();
            p.Name = prodName;
            p.UnitsInStock = unitsInStock;
            p.UnitPrice = unitPrice;

            pList.Add(p);

            p = null;
        }

        return pList;
    }
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1  
Sounds like you are getting the same value back from Random. That would make sense, since you reinit it every time you pass through the loop. Try moving your Random r = new Random(); to occur before the for loop. That way you won't keep re-initing it back to give you the same answer. –  StarPilot Sep 25 '12 at 20:16

4 Answers 4

up vote 7 down vote accepted

When invoked too quickly, multiple Random r = new Random()'s will produce Randoms with identical seeds.

Declare it once outside the for loop and you should have better values.

    Random r = new Random();
    for (int i = 0; i < count; i++)
    {
share|improve this answer
1  
Yup; the default constructor seeds the generator based on the current system time. In a tight loop, the time will be the same for each time, so the same value will result from each call to get the 'first' number of the sequence. –  Andrew Barber Sep 25 '12 at 20:15
    
That explains why it works when I have a breakpoint in there. Thanks. Will accept as answer in a few mins. –  Krishna Sep 25 '12 at 20:20

Move the creation of the Random variable two lines to the top:

Random r = new Random();
for (int i = 0; i < count; i++)
{

Otherwise you're always using the same seed for the random, because the for-loop is executed too fast. The Random constructor uses the current time. It is equivalent to new Random(Environment.TickCount).

The default seed value is derived from the system clock and has finite resolution. As a result, different Random objects that are created in close succession by a call to the default constructor will have identical default seed values and, therefore, will produce identical sets of random numbers. This problem can be avoided by using a single Random object to generate all random numbers.

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+1 Thanks for your clear explanation. –  Krishna Sep 25 '12 at 20:30

Try creating a single instance of Random, and using that during your for loop. Each time you create an instance of Random, it resets the seed, so you'll get the same value for each call.

share|improve this answer

seed your random

Random r = new Random(DateTime.Now.Millisecond);

also, declare it outside of your loop.

share|improve this answer
1  
That won't help at all –  SLaks Sep 25 '12 at 20:16

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