234

How do I go about producing random numbers within a range?

375

You can try

Random r = new Random();
int rInt = r.Next(0, 100); //for ints
int range = 100;
double rDouble = r.NextDouble()* range; //for doubles

Have a look at

Random Class, Random.Next Method (Int32, Int32) and Random.NextDouble Method

  • 29
    Just to add a note, if you are using NextDouble() and don't want the lower bound to be zero. You multiply by the difference between the higher bound and the lower bound, then add the difference between the lower bound and zero. So for -1 to 1 double rDouble = (r.NextDouble()*2)-1.0; – Tom Heard Oct 28 '13 at 20:03
  • 2
    Or a simplified double generator in the range of -1.0 and 1.0: Double randDoubleY = new Random().Next(-100, 100) / 100.0D; – BoiseBaked Dec 15 '18 at 21:29
  • 1
    Random() uses a time-dependent seed, but writing that out explicitly is better for readability. – Evgeni Sergeev Mar 10 at 5:50
35

Try below code.

Random rnd = new Random();
int month = rnd.Next(1, 13); // creates a number between 1 and 12
int dice = rnd.Next(1, 7); // creates a number between 1 and 6
int card = rnd.Next(52); // creates a number between 0 and 51
31

Something like:

var rnd = new Random(DateTime.Now.Millisecond);
int ticks = rnd.Next(0, 3000);
  • 2
    for what is DateTime.Now.Millisecond? – Hille Nov 27 '17 at 12:33
  • 1
    You need to put something for it to start with...... the Random object simply does lots of math on the value you give, and does so in a way that each call of Next() on the same Random object will result in a value quite random to the previous call. To make the result more random across different Random objects , you start with a different number -- here, the DateTime.Now.Millisecond. If you put a constant, rather than a changing value, you would get the same results from .Next(). – Mike M Dec 28 '17 at 0:05
  • 10
    Random is already seeded with a system value, and Millisecond is only a number between 0 and 999. If this pair of lines were always together in code, there would only be 1000 possible values of rnd.Next due to the seed being reset each time. Same seed in, same random number out. I'd leave the manual seed out. – John McDonald Sep 13 '18 at 14:32
11

Use:

Random r = new Random();
 int x= r.Next(10);//Max range
  • 2
    This does not specify a range. – Winger Sendon Feb 15 '15 at 4:10
  • 1
    You just do lower_value + r.Next(10) to get a random range. – Salgat Nov 3 '16 at 16:11
6

For future readers if you want a random number in a range use the following code:

public double GetRandomNumberInRange(double minNumber, double maxNumber)
{
    return new Random().NextDouble() * (maxNumber - minNumber) + minNumber;
}

C# Random double between min and max

Code sample

  • 2
    Formula should be in the following way: return new Random().NextDouble() * (maxNumber - minNumber) + minNumber; – Frank Sebastià Feb 11 at 16:30
  • 2
    You are correct, sorry. Will update the answer. – Darrelk Feb 11 at 19:28
3

Aside from the Random Class, which generates integers and doubles, consider:

1

Here is updated version from Darrelk answer. It is implemented using C# extension methods. It does not allocate memory (new Random()) every time this method is called.

public static class RandomExtensionMethods
{
    public static double NextDoubleRange(this System.Random random, double minNumber, double maxNumber)
    {
        return random.NextDouble() * (maxNumber - minNumber) + minNumber;
    }
}

Usage (make sure to import the namespace that contain the RandomExtensionMethods class):

var random = new System.Random();
double rx = random.NextDoubleRange(0.0, 1.0);
double ry = random.NextDoubleRange(0.0f, 1.0f);
double vx = random.NextDoubleRange(-0.005f, 0.005f);
double vy = random.NextDoubleRange(-0.005f, 0.005f);

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