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I'd like to generate random unique strings like the ones being generated by MSDN library:

http://msdn.microsoft.com/en-us/library/t9zk6eay.aspx, for example. A string like 't9zk6eay' should be generated.

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9 Answers 9

up vote 19 down vote accepted

Using Guid would be a pretty good way, but to get something looking like your example, you probably want to convert it to a Base64 string:

    Guid g = Guid.NewGuid();
    string GuidString = Convert.ToBase64String(g.ToByteArray());
    GuidString = GuidString.Replace("=","");
    GuidString = GuidString.Replace("+","");

I get rid of "=" and "+" to get a little closer to your example, otherwise you get "==" at the end of your string and a "+" in the middle. Here's an example output string:

"OZVV5TpP4U6wJthaCORZEQ"

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7  
You should consider replacing / too. –  Jason Kealey Jun 4 '09 at 21:06
6  
A Guid should not be considered as a secure random string as the sequence can be guessed. A Guid is designed for avoiding key conflicts, rather than being random. There are some good discussions of the randomness of a Guid around on stack overflow. –  danielrbradley Sep 24 '13 at 10:46
    
For clear and short explanation of what Convert.ToBase64String is about, take a look here. –  Jaroslaw Waliszko Sep 21 '14 at 14:34
    
Can converting guid into base64 and replacing + and = increasing collision probability? –  Milan Aggarwal Jan 7 at 7:14

Since no one has provided secure code yet, I post the following in case anyone finds it useful.

string RandomString(int length, string allowedChars = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789") {
    if (length < 0) throw new ArgumentOutOfRangeException("length", "length cannot be less than zero.");
    if (string.IsNullOrEmpty(allowedChars)) throw new ArgumentException("allowedChars may not be empty.");

    const int byteSize = 0x100;
    var allowedCharSet = new HashSet<char>(allowedChars).ToArray();
    if (byteSize < allowedCharSet.Length) throw new ArgumentException(String.Format("allowedChars may contain no more than {0} characters.", byteSize));

    // Guid.NewGuid and System.Random are not particularly random. By using a
    // cryptographically-secure random number generator, the caller is always
    // protected, regardless of use.
    using (var rng = new System.Security.Cryptography.RNGCryptoServiceProvider()) {
        var result = new StringBuilder();
        var buf = new byte[128];
        while (result.Length < length) {
            rng.GetBytes(buf);
            for (var i = 0; i < buf.Length && result.Length < length; ++i) {
                // Divide the byte into allowedCharSet-sized groups. If the
                // random value falls into the last group and the last group is
                // too small to choose from the entire allowedCharSet, ignore
                // the value in order to avoid biasing the result.
                var outOfRangeStart = byteSize - (byteSize % allowedCharSet.Length);
                if (outOfRangeStart <= buf[i]) continue;
                result.Append(allowedCharSet[buf[i] % allowedCharSet.Length]);
            }
        }
        return result.ToString();
    }
}
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5  
actually secure and useful; thanks in advanced –  Javad_Amiry Mar 2 '12 at 4:29
    
@Keltex solution wasn't working right for meh (it was returning the same string after few uses). This solution works perfect :) –  JoanComasFdz Jun 7 '12 at 13:47
    
I think if() condition should be adjusted: theoretically it is possible to reach limit of i=buf.Length and still result.Length could be less than length because of all values in buffer>=outOfRangeStart. so I suggest: if (outOfRangeStart <= buf[i] && i < buf.Length - 1) { continue; } –  AB_ Jan 14 '13 at 15:57
    
also result.ToString(): explicit conversion is not required here –  AB_ Jan 14 '13 at 16:00
1  
@LeeGrissom, biasing is an important aspect. Lets say for example that your alphabet contains 255 characters and you get a random value between 0-255. In a ring buffer both the value 0 and 255 would correspond to the same character which would skew the result in favor of the first character in the alphabet, it would be less random. if this matters depends on the application of course. –  Oskar Sjöberg Mar 12 at 16:24

I would caution that GUIDs are not random numbers. They should not be used as the basis to generate anything that you expect to be totally random (see http://en.wikipedia.org/wiki/Globally_Unique_Identifier):

Cryptanalysis of the WinAPI GUID generator shows that, since the sequence of V4 GUIDs is pseudo-random, given the initial state one can predict up to next 250 000 GUIDs returned by the function UuidCreate. This is why GUIDs should not be used in cryptography, e. g., as random keys.

Instead, just use the C# Random method. Something like this (code found here):

private string RandomString(int size)
{
  StringBuilder builder = new StringBuilder();
  Random random = new Random();
  char ch ;
  for(int i=0; i<size; i++)
  {
    ch = Convert.ToChar(Convert.ToInt32(Math.Floor(26 * random.NextDouble() + 65))) ;
    builder.Append(ch);
  }
  return builder.ToString();
}

GUIDs are fine if you want something unique (like a unique filename or key in a database), but they are not good for something you want to be random (like a password or encryption key). So it depends on your application.

Edit. Microsoft says that Random is not that great either (http://msdn.microsoft.com/en-us/library/system.random(VS.71).aspx):

To generate a cryptographically secure random number suitable for creating a random password, for example, use a class derived from System.Security.Cryptography.RandomNumberGenerator such as System.Security.Cryptography.RNGCryptoServiceProvider.

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1  
The C# random class is not "random" either and unsuitable for any crypto code, since it is a classic random generator starting from a specific seed number. Same seed will also return the same sequence of numbers returned; the GUID approach is already much better off here (not "random" but "unique"). –  Lucero Apr 8 '09 at 14:51
2  
@Lucero: You're correct. Microsoft recommends, "To generate a cryptographically secure random number suitable for creating a random password, for example, use a class derived from System.Security.Cryptography.RandomNumberGenerator such as System.Security.Cryptography.RNGCryptoServiceProvider." –  Keltex Apr 8 '09 at 14:53
    
Well, the question already stated that he wants (pseudo-)random unique strings, so no crypto requirements or even a need for following a specific random distribution. So GUID is probably the easiest approach. –  Joey Apr 8 '09 at 14:58
1  
The statement that "given the initial state one can predict up to next 250 000 GUIDs" seems like an inherently true statement for any PRNG... I'm sure it's also not secure, but I'm not sure there's much value in generating truly random URLs, if that's what the OP is going for. ;) –  ojrac Apr 8 '09 at 14:58
1  
(+1 anyway -- PRNG education is important.) –  ojrac Apr 8 '09 at 15:00

I don't think that they really are random, but my guess is those are some hashes.

Whenever I need some random identifier, I usually use a GUID and convert it to its "naked" representation:

Guid.NewGuid().ToString("n");
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As @Keltex pointed out: Cryptanalysis of the WinAPI GUID generator shows that, since the sequence of V4 GUIDs is pseudo-random, given the initial state one can predict up to next 250 000 GUIDs returned by the function UuidCreate. –  JoanComasFdz Jun 7 '12 at 13:49
  • not sure Microsoft's link are randomly generated
  • have a look to new Guid().ToString()
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1  
You mean Guid.NewGuid().ToString() - Guid doesn't have a public constructor –  cjk Apr 8 '09 at 14:47
    
You're probablly right, was typing w/o verfiying. I'm sure the original poster has the point. –  Fabian Vilers Apr 8 '09 at 16:38

I simplified @Michael Kropats solution and made a LINQ-esque version.

string RandomString(int length, string alphabet = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789")
{       
    var outOfRange = Byte.MaxValue + 1 - (Byte.MaxValue + 1) % alphabet.Length;

    return string.Concat(
        Enumerable
            .Repeat(0, Int32.MaxValue)
            .Select(e => RandomByte())
            .Where(randomByte => randomByte < outOfRange)
            .Take(length)
            .Select(randomByte => alphabet[randomByte % alphabet.Length])
    );
}

byte RandomByte()
{
    using (var randomizationProvider = new RNGCryptoServiceProvider())
    {
        var randomBytes = new byte[1];
        randomizationProvider.GetBytes(randomBytes);
        return randomBytes.Single();
    }   
}
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This has been asked for various languages. Here's one question about passwords which should be applicable here as well.

If you want to use the strings for URL shortening, you'll also need a Dictionary<> or database check to see whether a generated ID has already been used.

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Get Unique Key using GUID Hash code

public static string GetUniqueKey(int length)
{
    string guidResult = string.Empty;

    while (guidResult.Length < length)
    {
        // Get the GUID.
        guidResult += Guid.NewGuid().ToString().GetHashCode().ToString("x");
    }

    // Make sure length is valid.
    if (length <= 0 || length > guidResult.Length)
        throw new ArgumentException("Length must be between 1 and " + guidResult.Length);

    // Return the first length bytes.
    return guidResult.Substring(0, length);
}
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This works perfectly but random words are not containing unique characters. The characters are repeating, like 114e3(two 1's),eaaea(three a's and two e's), 60207(two 0's) and so on. How to generate a Random string with no repetition of characters with alphanumeric combination? –  vijay Jan 9 '12 at 18:50
    
@vijay: Since it's outputting hex digits, you're limiting yourself to 16 characters, and 16! possible outputs. Random strings are just that, random. You could theoretically get a string of all a's (aaaaaaaaaaaaaaa). It's very improbable, but no more so than any other random string. I'm not sure why you'd need that constraint, but as you're adding characters to the string, pop them in a HashSet<T>, check for their existence, and add them to the string or skip them accordingly. –  Chris Doggett Jan 9 '12 at 20:08

Michael Kropats solution in VB.net

Private Function RandomString(ByVal length As Integer, Optional ByVal allowedChars As String = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789") As String
    If length < 0 Then Throw New ArgumentOutOfRangeException("length", "length cannot be less than zero.")
    If String.IsNullOrEmpty(allowedChars) Then Throw New ArgumentException("allowedChars may not be empty.")


    Dim byteSize As Integer = 256
    Dim hash As HashSet(Of Char) = New HashSet(Of Char)(allowedChars)
    'Dim hash As HashSet(Of String) = New HashSet(Of String)(allowedChars)
    Dim allowedCharSet() = hash.ToArray

    If byteSize < allowedCharSet.Length Then Throw New ArgumentException(String.Format("allowedChars may contain no more than {0} characters.", byteSize))


    ' Guid.NewGuid and System.Random are not particularly random. By using a
    ' cryptographically-secure random number generator, the caller is always
    ' protected, regardless of use.
    Dim rng = New System.Security.Cryptography.RNGCryptoServiceProvider()
    Dim result = New System.Text.StringBuilder()
    Dim buf = New Byte(128) {}
    While result.Length < length
        rng.GetBytes(buf)
        Dim i
        For i = 0 To buf.Length - 1 Step +1
            If result.Length >= length Then Exit For
            ' Divide the byte into allowedCharSet-sized groups. If the
            ' random value falls into the last group and the last group is
            ' too small to choose from the entire allowedCharSet, ignore
            ' the value in order to avoid biasing the result.
            Dim outOfRangeStart = byteSize - (byteSize Mod allowedCharSet.Length)
            If outOfRangeStart <= buf(i) Then
                Continue For
            End If
            result.Append(allowedCharSet(buf(i) Mod allowedCharSet.Length))
        Next
    End While
    Return result.ToString()
End Function
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