25

i have some chars:

chars = "$%#@!*abcdefghijklmnopqrstuvwxyz1234567890?;:ABCDEFGHIJKLMNOPQRSTUVWXYZ^&".ToCharArray();

now i'm looking for a method to return a random char from these.

I found a code which maybe can be usefull:

static Random random = new Random();
        public static char GetLetter()
        {
            // This method returns a random lowercase letter
            // ... Between 'a' and 'z' inclusize.
            int num = random.Next(0, 26); // Zero to 25
            char let = (char)('a' + num);
            return let;
        }

this code returns me a random char form the alphabet but only returns me lower case letters

2
  • 2
    Your GetLetter method doesn't do anything with chars. Why not just generate a random number between 0 and the length of the string and select the the character from the randomly generated number (i.e., the position)?
    – Tim
    Mar 6, 2013 at 13:54
  • 1
    utf8-chartable.de/unicode-utf8-table.pl?utf8=dec Try between 97 & 122 ! Mar 6, 2013 at 13:55

11 Answers 11

41

Well you're nearly there - you want to return a random element from a string, so you just generate a random number in the range of the length of the string:

public static char GetRandomCharacter(string text, Random rng)
{
    int index = rng.Next(text.Length);
    return text[index];
}

I'd advise against using a static variable of type Random without any locking, by the way - Random isn't thread-safe. See my article on random numbers for more details (and workarounds).

2
  • If text.Length gets generated as index you get an IndexOutOfRangeException in the current answer. Mar 17, 2018 at 18:40
  • 4
    @Brolaugh: But it won't, because the argument to Random.Next is an exclusive upper bound.
    – Jon Skeet
    Mar 17, 2018 at 18:42
15

This might work for you:

public static char GetLetter()
{
    string chars = "$%#@!*abcdefghijklmnopqrstuvwxyz1234567890?;:ABCDEFGHIJKLMNOPQRSTUVWXYZ^&";
    Random rand = new Random();
    int num = rand.Next(0, chars.Length);
    return chars[num];
}
5
  • 1
    Why not return chars[num];?? Mar 6, 2013 at 14:08
  • Sometimes the simplest things are the ones you overlook ;) I know all about it. Mar 6, 2013 at 14:21
  • Tell me about it...those simple things always lead to the most problems ;) Mar 6, 2013 at 14:24
  • The simple things aren't "enterprisey" enough!! Mar 6, 2013 at 20:01
  • Use chars.Length -1 , otherwise, it could produce an OutOfRangeException if random selects the last element. Jan 30, 2022 at 13:24
5

You can use it like;

char[] chars = "$%#@!*abcdefghijklmnopqrstuvwxyz1234567890?;:ABCDEFGHIJKLMNOPQRSTUVWXYZ^&".ToCharArray();
Random r = new Random();
int i = r.Next(chars.Length);
Console.WriteLine(chars[i]);

Here is a DEMO.

3

I had approximate issue and I did it by this way:

public static String GetRandomString()
{
    var allowedChars = "abcdefghijkmnopqrstuvwxyzABCDEFGHJKLMNOPQRSTUVWXYZ0123456789";
    var length = 15;

    var chars = new char[length];
    var rd = new Random();

    for (var i = 0; i < length; i++)
    {
        chars[i] = allowedChars[rd.Next(0, allowedChars.Length)];
    }

    return new String(chars);
}
3

Instead of 26 please use size of your CHARS buffer.

int num = random.Next(0, chars.Length)

Then instead of

let = (char)('a' + num)

use

let = chars[num]
3

I'm not sure how efficient it is as I'm very new to coding, however, why not just utilize the random number your already creating? Wouldn't this "randomize" an uppercase char as well?

    int num = random.Next(0,26);           
    char let = (num > 13) ? Char.ToUpper((char)('a' + num)) : (char)('a' + num);

Also, if you're looking to take a single letter from your char[], would it be easier to just use a string?

    string charRepo = "$%#@!*abcdefghijklmnopqrstuvwxyz1234567890?;:ABCDEFGHIJKLMNOPQRSTUVWXYZ^&"; 
    Random rando = new Random();
    int ranNum = rando.Next(0, charRepo.Length);

    char ranChar = charRepo[ranNum];
2
private static void Main(string[] args)
        {
            Console.WriteLine(GetLetters(6));
            Console.ReadLine();
        }

        public static string GetLetters(int numberOfCharsToGenerate)
        {
            var random = new Random();
            char[] chars = "$%#@!*abcdefghijklmnopqrstuvwxyz1234567890?;:ABCDEFGHIJKLMNOPQRSTUVWXYZ^&".ToCharArray();

            var sb = new StringBuilder();
            for (int i = 0; i < numberOfCharsToGenerate; i++)
            {
                int num = random.Next(0, chars.Length);
                sb.Append(chars[num]);
            }
            return sb.ToString();
        }
2

Your Code is good, you just need to change 'a' to 'A'

static Random random = new Random();
        public static char GetLetter()
        {
            // This method returns a random lowercase letter
            // ... Between 'a' and 'z' inclusize.
            int num = random.Next(0, 26); // Zero to 25
            char let = (char)('A' + num);
            return let;
        } 

This code same as mentioned in the question , just change char let = (char)('A' + num); , it returns upper case letters.

Thanks!!!

1

I wish This code helps you :

 string s = "$%#@!*abcdefghijklmnopqrstuvwxyz1234567890?;:ABCDEFGHIJKLMNOPQRSTUVWXYZ^&";
            Random random = new Random();
            int num = random.Next(0, s.Length -1);
            MessageBox.Show(s[num].ToString());
1

Getting Character from ASCII number:

private string GenerateRandomString()
{
Random rnd = new Random();
string txtRand = string.Empty;
for (int i = 0; i <8; i++) txtRand += ((char)rnd.Next(97, 122)).ToString();
return txtRand;
}
0

You can try this :

 public static string GetPassword()
 {
string Characters = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz";
 Random rnd = new Random();
int index = rnd.Next(0,51);
string char1 = Characters[index].ToString();
return char1;
  }

Now you can play with this code block as per your wish. Cheers!

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