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How to generate random int number?

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I agree that even the most basic search should have turned up something about the topic, but does this question really deserve this many downvotes? –  Brian Gideon Apr 25 '10 at 0:25
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Lasse V. K.: Sure, it would be stupendously easy to find the answer to this question with a simple search, but that is true of a huge number of questions here. It bugs me too, but the fact is it's considered perfectly acceptable to ask basic questions on SO. There is nothing wrong with this question. –  Igby Largeman Apr 25 '10 at 4:11
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Made it nice, quick and easy for me to find exactly what I was looking for. –  Michael Rodrigues Feb 1 '12 at 2:55
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if this had been closed then i'd have to use msdn...a good answer on SO is quite often better than msdn. –  whytheq May 16 '12 at 22:15
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Acceptable question. SO is becoming the new help file and documentation... Not to mention. I don't like MSDN's format. I prefer SO. No need for the attitude. That's what stops questions from being asked. –  Bill Martin Aug 29 '13 at 20:47

10 Answers 10

up vote 511 down vote accepted

The Random class is used to create random numbers. (Pseudo-random that is of course.)

Example:

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

If you are going to create more than one random number, you should keep the Random instance and reuse it. If you create new instances too close in time, they will produce the same series of random numbers as the random generator is seeded from the system clock.

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It is not "between". minValue is the inclusive lower bound of the random number returned. maxValue is the exclusive upper bound of the random number returned. The value return is from minValue, but less than maxValue. It does not include maxValue. –  midspace Jan 10 at 0:14
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I suppose I'm just a little pedantic about the English language especially after reading dozens of other Randmom.Next() examples which don’t even come close to describing it correctly. One definition of Between is: at a point or in a region intermediate to two other points in space, times, degrees, etc). Or an example. You are between New York and Chicago. Does not equate to been within New York or Chicago. Or, your business is open between Christmas and New Year, does not mean you are open on Christmas and New Year. I suppose most people will understand it for what it is though. –  midspace Jan 11 at 1:43
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@midspace: I think that when "between" is used with numbers, the usual interpretation is that the boundaries are included. Related: english.stackexchange.com/questions/46424/… –  Guffa Jan 11 at 2:24
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or A<B<C. math.stackexchange.com/questions/358829/… I think English and Math need to get their act together and agree on what 'between' means. –  midspace Jan 12 at 3:37
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"I suppose I'm just a little pedantic about the English language" -- no, you're simply wrong. "pick a number between 1 and 10" doesn't mean "pick a number >=2 and <= 9". "I think English and Math need to get their act together" -- no, you need to get your act together. "between" is not a mathematical term; mathematicians use open/closed interval notation. As for English, it's a natural language, not a formal one. Usually, "between" doesn't include the endpoints, but for numbers it usually does. –  Jim Balter Jun 12 at 9:24

Every time you do new Random() it is initialized . This means that in a tight loop you get the same value lots of times. You should keep a single Random instance and keep using Next on the same instance.

//Function to get random number
private static readonly Random getrandom = new Random();
private static readonly object syncLock = new object();
public static int GetRandomNumber(int min, int max)
{
    lock(syncLock) { // synchronize
        return getrandom .Next(min, max);
    }
}
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Is this not what @Guffa said in his answer 6 months ago? "If you create new instances too close in time, they will produce the same series of random numbers" –  Chris Oct 4 '10 at 12:00
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@Chris- That's right what you said. In this I have provided the implementation of that. I think it's a good way of doing it. It works better. –  Pankaj Mishra Oct 4 '10 at 14:16
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This is an implementation that synchronises the code for use from seval threads. That is good for a multi threaded application, but a waste of time for a single threaded application. –  Guffa Feb 26 '13 at 0:05
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if you use the code you can get a lock convoy... –  Offler Jun 5 '13 at 13:20
Random r = new Random();
int n = r.Next();
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new Random().Next( int.MinValue, int.MaxValue )

For more information, look at the Random class, though please note:

However, because the clock has finite resolution, using the parameterless constructor to create different Random objects in close succession creates random number generators that produce identical sequences of random numbers

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No need to seed the random - it does that on creation. –  Callum Rogers Apr 24 '10 at 23:28
    
Indeed, it does. Thank you. Corrected the post. –  Fyodor Soikin Apr 24 '10 at 23:32
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-1: The default seed is based on time; do this in a loop and you'll get very non-random results. You should create one generator and use it for all your numbers, not a separate generator each time. –  Bevan Apr 24 '10 at 23:39
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Hey, that's unfair. The question was how to generate random int number. No loops or series were mentioned. –  Fyodor Soikin Apr 25 '10 at 1:45
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Ok, fair point. Rescinded. Though, I still think that not using new Random() in a loop is an important point. –  Bevan Apr 25 '10 at 9:08

You could use Jon Skeet's StaticRandom method inside the MiscUtil class library that he built for a truly random number.

using System;
using MiscUtil;

class Program
{
    static void Main(string[] args)
    {
        for (int i = 0; i < 100; i++)
        {
            Console.WriteLine(StaticRandom.Next());
        }
    }
}
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2  
"truly random"? How does that work? –  Andreas Rejbrand Apr 25 '10 at 0:29
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I just had a look at the source code, and this function uses exactly the same random number engine, the one "included" in C#, but makes sure that the same "seed"/"mother object" is used for all calls. (I am sorry that I do not know the C# terminology. But my point is that this function does not make any better random numbers than the standard function.) –  Andreas Rejbrand Apr 25 '10 at 0:41
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It's impossible for anything to be 'truly random' since there is always some limiting factor or prejudice included that is inherent by its very existence. Didn't you listen to the teacher in science classes? ;-) –  Phill Healey Oct 15 at 10:10

Modified answer from here.

If you have access to an Intel Secure Key compatible CPU, you can generate real random numbers and strings using these libraries: https://github.com/JebteK/RdRand and https://www.rdrand.com/

Just download the latest version from here, include Jebtek.RdRand and add a using statement for it. Then, all you need to do is this:

bool isAvailable = RdRandom.GeneratorAvailable(); //Check to see if this is a compatible CPU
string key = RdRandom.GenerateKey(10); //Generate 10 random characters
string apiKey = RdRandom.GenerateAPIKey(); //Generate 64 random characters, useful for API keys
byte[] b = RdRandom.GenerateBytes(10); //Generate an array of 10 random bytes
uint i = RdRandom.GenerateUnsignedInt() //Generate a random unsigned int

If you don't have a compatible CPU to execute the code on, just use the RESTful services at rdrand.com. With the RdRandom wrapper library included in your project, you would just need to do this (you get 1000 free calls when you signup):

string ret = Randomizer.GenerateKey(<length>, "<key>");
uint ret = Randomizer.GenerateUInt("<key>");
byte[] ret = Randomizer.GenerateBytes(<length>, "<key>");
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While this is okay:

Random random = new Random();
int randomNumber = random.Next()

You'd want to control the limit (min and max mumbers) most of the time. So you need to specify where the random number starts and ends.

The Next() method accepts two parameters, min and max.

So if i want my random number to be between say 5 and 15, I'd just do

int randomNumber = random.Next(5, 15)
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http://pastebin.com/P79GXiVh is the class I use. Works like RandomNumber.GenerateRandom(1, 666)

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    Random rand = new Random();
    int name = rand.Next()

put whatever values you want in the second parentheses make sure you have set a name by writing prop and double tab to generate the code

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Prop and double tab? –  DCShannon Sep 23 at 4:32

First you must create a Random object:

Random r = new Random();
int n = r.Next(int Min, int Max + 1);

If you were to make a random number to represent a six-sided die, you would:

Random r = new Random();
int n = r.Next(1, 7);
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