Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So, here's the deal.

I've set up an app for wp7 where there's an array with 50 quotes. When the user clicks a button, a random quote from the array is showed. Problem is, the quotes always appears in the same order. For example, quotes are 1-50. The order is always 2, 4, 20, 31, 10,... Is there a way to solve this? I want that a random and different quote appear every time i use the app.

Here's the code:

    string[] listaCantadas;
    Random r1, r2;

    public MainPage()
    {
        InitializeComponent();

        listaCantadas = new string[]
        {"//set of quotes
        };

        r1 = new Random(100);
        r2 = new Random(r1.Next(0, 50));
    }

    //click event for display a random quote

            int Cantada = r2.Next(0, listaCantadas.Length - 1);
            txtBlockCantada.Text = listaCantadas[Cantada];

        });
    }
share|improve this question
add comment

8 Answers

up vote 14 down vote accepted

You create your first instance of Random with Random(100) i.e. a constant seed. So it will always return the same sequence. Which in turn means that the seed of your second instance of Random will be constant too, and all the values it returns too.

Just create a single instance of Random with the default constructor, i.e. new Random(). This is seeded with the time, and thus will be likely different between different runs of the program.

Warning: Since the time only changes every few milliseconds (1-16ms on typical windows computers) if you create several instances of Random with the default constructor in quick succession they will most likely all return the same sequence.

Another common pitfall is that Random isn't thread-safe. But it doesn't look like you will hit this problem.

string[] listaCantadas;
Random r;//No need for more than one instance

public MainPage()
{
    InitializeComponent();

    listaCantadas = new string[]
    {"//set of quotes
    };

    r = new Random();
}

//click event for display a random quote

        int Cantada = r.Next(0, listaCantadas.Length - 1);
        txtBlockCantada.Text = listaCantadas[Cantada];

    });
}
share|improve this answer
    
Thanks so much, now it works like a charm!!! –  Boga Oct 5 '11 at 12:28
    
And do make it a static instance. –  Claus Jørgensen - MSFT Oct 5 '11 at 21:34
3  
@ClausJørgensen: Well, only if you're going to make sure that you don't call it from multiple threads. Typically static members are expected to be thread-safe. Random isn't thread-safe. –  Jon Skeet Oct 5 '11 at 21:41
add comment

You're explicitly stating the seed:

r1 = new Random(100);
r2 = new Random(r1.Next(0, 50));

r1 will always use the same seed (100), so r1.Next(0, 50) will always give the same seed, so r2 will always use the same seed. You have no real randomness.

You should be creating a single instance of Random and reusing it - whilst noting that Random is not thread-safe. (If you're only going to use your instance from the UI thread, that's fine.)

See my article on random number generation in .NET for more information.

share|improve this answer
add comment

You shouldn't seed the random generator with a fixed seed unless you wanted repeatable sequences:

new Random(100);

should be

new Random();
share|improve this answer
add comment

Well you initialized the seed to always be 100 on your r1 randomizer. That of course means that acording to the seed you will get always the same numbers. Which means your r2 is always initialized with the same seed, so both r1 and r2 are always the same.

Random numbers are impossible for a PC, as strange as this sounds. So you need a "random" number to initialize your random generator.

Long story short. Remove the first random object and use the empty constructor on the second.

The default seed value is derived from the system clock and has finite resolution

share|improve this answer
add comment

You're seeding it with the same seed every time. Just use new Random(). If that's not available on WP7, use a derivative of the current time as a seed.

share|improve this answer
add comment

The seed is always the same, even initialising from another random!

Try seeding another way:

new Random(unchecked((int) (DateTime.Now.Ticks)));
share|improve this answer
    
This is worse than using the default constructor of Random. It suffers from the same problems as the default constructor and from the additional one that using Ticks will restrict the seed space. –  CodesInChaos Oct 5 '11 at 18:41
add comment

You have the same seed. Use something like a number generated from the current date

r1 = new Random(DateTime.Now.Year + DateTime.Now.Month + DateTime.Now.Day + DateTime.Now.Second); // etc
share|improve this answer
3  
Or just call new Random() which does it for you... –  Jon Skeet Oct 5 '11 at 12:21
add comment

Simply use the following code;

Random r = new Random();

        private void Form1_Load(object sender, EventArgs e)
        {
            string[] listaCantadas = 
            {
                "q1",
                "q2",
                "q3",
                "q4",
                "q5"
            };

            //click event for display a random quote
            txtBlockCantada.Text = listaCantadas[r.Next(0, listaCantadas.Length)]; 
        }
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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