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I need a method to return a random string in the format:

Letter Number Letter Number Letter Number

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-1 This sounds like a homework problem, not a question. – akmad Nov 21 '08 at 14:37
    
sounds like it, but its not akmad. you sound like a teacher :) – Blankman Nov 21 '08 at 15:12
up vote 11 down vote accepted

Assuming you don't need it to be threadsafe:

private static readonly Random rng = new Random();

private static RandomChar(string domain)
{
    int selection = rng.Next(domain.Length);
    return domain[selection];
}

private static char RandomDigit()
{
    return RandomChar("0123456789");
}

private static char RandomLetter()
{
    return RandomChar("ABCDEFGHIJKLMNOPQRSTUVWXYZ");
}

public static char RandomStringInSpecialFormat()
{
    char[] text = new char[6];
    char[0] = RandomLetter();
    char[1] = RandomDigit();
    char[2] = RandomLetter();
    char[3] = RandomDigit();
    char[4] = RandomLetter();
    char[5] = RandomDigit();
    return new string(text);
}

(You could use a 3-iteration loop in RandomStringInSpecialFormat, but it doesn't have much benefit.)

If you need it to be thread-safe, you'll need some way of making sure you don't access the Random from multiple threads at the same time. The simplest way to do this (in my view) is to use StaticRandom from MiscUtil.

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+1 for simple solution Jon... but I think you need to switch the RandomLetter with RandomDigit names. – bruno conde Nov 21 '08 at 14:46
    
wow, nice clean solution. Yeah a littler switcharoo on the letters/numbers. – Blankman Nov 21 '08 at 15:14
    
Oops - thanks. The "joys" of c'n'p – Jon Skeet Nov 21 '08 at 15:37

You just need 2 methods.

1) Random a char (You can use ASCII to random between number than cast to char)

2) Random number.

Both can use this utility method:

private int RandomNumber(int min, int max)
{
    Random random = new Random();
    return random.Next(min, max); 
}

For the letter you need to call RandomNumber(65,90); and for the number you call : RandomNumber(1,9); You just need to concatenate.

Than you call these methods to create your string, Hope this help you.

Update

You should put the random object in your class... it was just to show you how to do it. You still need to work a little but I think it's a good start to show you how to manipulate char from ascii.

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Using that utility method is a very bad idea. You'll almost always get the same numbers in the string, and the same letters (e.g. B4B4B4), because you'll be creating 6 Randoms in very quick succession. You should only have one Random. – Jon Skeet Nov 21 '08 at 14:44
    
It's just a snippet... he can improve... it's to show him a way to do it... not VERY bad... and the earth will still turn around Jon... do not worry... this code haven't been done in VS but right from this website and might not be perfect. – Patrick Desjardins Nov 21 '08 at 14:45
    
I added an update for you Jon. – Patrick Desjardins Nov 21 '08 at 14:47
    
I wrote a better version see under this post, I made a new post, you like that better? – Patrick Desjardins Nov 21 '08 at 15:14
    
Not a lot - it may work, but it's unreadable (to me, anyway). It should come as no surprise that I find my own answer the most pleasant :) – Jon Skeet Nov 21 '08 at 15:22
    public static string RandomString(Random rand, int length)
    {
        char[] str = new char[length];
        for (int i = 0; i < length; i++)
        {
            if (i % 2 == 0)
            {    //letters
                str[i] = (char)rand.Next(65, 90);
            }
            else
            {
                //numbers 
                str[i] = (char)rand.Next(48, 57);
            }
        }
        return new string(str);
    }

maybe this would be more readable...

if (i % 2 == 0)
{    
      //letters
      str[i] = (char)rand.Next('A', 'Z');
}
else
{
   //numbers
    str[i] = (char)rand.Next('0', '9');
}
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No need to if statements. Just increment i; – Ali Ersöz Nov 21 '08 at 14:53

Shorter version without any IF

class Program
{
    static void Main(string[] args)
    {
        Random r = new Random();
        for(int i = 0;i<25;i++)
        Console.WriteLine(RandomString(r,6));
        Console.Read();
    }

    public static string RandomString(Random rand, int length)
    {
        char[] str = new char[length];
        for (int i = 0; i < length; i++)
            str[i] = (char)rand.Next(65 - (17 * (i % 2)), 91-(33 * (i % 2)));
        return new string(str);
    }
}
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nice. why do you need the Convert.ToInt32() will rand.Next(65 - (17 *(i % 2)), 90 - (33 * (i % 2))); not work? – Hath Nov 21 '08 at 15:37
    
I removed the Conver. You where right! – Patrick Desjardins Nov 21 '08 at 18:04

Then just use the Random.NextBytes function together with Encoding.ASCII.GetString() to generate Characters.

Or, alternatively, generate a String or char Array (string[]) and use Random.Next(0,array.Length) to get an index to it.

Use a StringBuilder and Random.Next(0,9) to generate numbers and then generate your string by adding a number, a character, a numer etc...

Random Members

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