24

I want to generate an unique 4 digit random number. This is the below code what I have tried:

Code for generating random number

//Generate RandomNo
public int GenerateRandomNo()
{
    int _min = 0000;
    int _max = 9999;
    Random _rdm = new Random();
    return _rdm.Next(_min, _max);
}

The problem is I have received a random no with value 241 which is not a 4 digit number. Is there any problems with the code?

6
  • 1
    Warning. If you call your function multiple times in a row you may get the same values. Better to reuse your Random object.
    – mason
    Nov 17 '15 at 5:08
  • 2
    initialize your _min as 1000 Nov 17 '15 at 5:08
  • 1
    @amitdayama this is what I was looking for.
    – ksg
    Nov 17 '15 at 5:09
  • 3
    I have already generated all the four digit numbers, so there are no unique ones left, sorry. :-) Seriously though: unique over what timeframe and what set of users? And how many do you need? If you need a million unique four digit numbers you are going to be disappointed. Nov 17 '15 at 5:24
  • 1
    Note that the second argument to Random.Next is an exclusive upper bound. If the intent is to generate a random integer between 0 and 9999, _max should be 10,000 rather than 9999.
    – drf
    Nov 18 '15 at 1:55

13 Answers 13

56
//Generate RandomNo
public int GenerateRandomNo()
{
    int _min = 1000;
    int _max = 9999;
    Random _rdm = new Random();
    return _rdm.Next(_min, _max);
}

you need a 4 digit code, start with 1000

4
  • 1
    Note that moving Random _rdm = new Random(); directly above public int GenerateRandomNo() will yield better results.
    – Brian
    Nov 17 '15 at 13:56
  • 1
    In Next (int minValue, int maxValue) maxValue is the exclusive upper bound. It means that to include the value of 9999 you should set _max to 10000.
    – Dzienny
    Feb 6 '19 at 1:08
  • 1
    note, that 0-999 and 9999 won't be part of the result
    – fubo
    Jul 2 '19 at 11:46
  • return new Random().Next(1000, 9999); - this would keep it short Dec 14 '20 at 13:17
28

Use this code instead:

private Random _random = new Random();

public string GenerateRandomNo()
{
    return _random.Next(0, 9999).ToString("D4");
}
3
9

241 is a four digit number, if you use leading zeros: 0241.

Display the returned number with a format string like this:

String.Format("{0:0000}", n);

8

Just one line code

int num = new Random().Next(1000, 9999);
6

0 is the same as 0000.

241 is the same as 0241.

You could format the integer to a string with a leading zero.

2

use: int _min = 1000;

or use leading 0 in case if you want 0241

2
Random generator = new Random();
string number = generator.Next(1, 10000).ToString("D4");
1
int NoDigits = 4;
Random rnd = new Random();
textBox2.Text = rnd.Next((int)Math.Pow(10, (NoDigits - 1)), (int)Math.Pow(10, NoDigits) -1).ToString();
0

I suggest to create new list and check if this list contains any of number

var IdList = new List<int>();
do
{
    billId = random.Next(1, 9000);
} while (IdList.Contains(billId));
IdList.Add(billId);
0

Expanding on the answer from brij but with 0000 to 9999 rather than 1000 to 9999

string formatting = "0000"; //Will pad out to four digits if under 1000   
int _min = 0;
int _max = 9999;
Random randomNumber = new Random();
var randomNumberString = randomNumber.Next(_min, _max).ToString(formatting);

or if you want to minimalize lines:

Random randomNumber = new Random();
var randomNumberString = randomNumber.Next(0, 9999).ToString("0000");
0

Using this you will avoid starting numbers with 00[...] and you can also specify the length.

string RandomNumbers(int Length)
{
    Random Rand = new Random();
    StringBuilder SB = new StringBuilder();
    for (int i = 0; i < Length; i++)
        SB.Append(Rand.Next(0, 9));

    return SB.ToString();
}

RandomNumbers(4) // OUTPUT: 9301, 4936, 0692, etc ...
4
  • 1
    While this code may provide a solution to the question, it's better to add context as to why/how it works. This can help future users learn and apply that knowledge to their own code. You are also likely to have positive-feedback/upvotes from users, when the code is explained.
    – Amit Verma
    Jan 31 '21 at 14:36
  • It is funny to see people who put downvote even if the solution works. I will update as soon as I have time, however I don't have to. Jan 31 '21 at 15:06
  • Update your answer at least a short description
    – sta
    Jan 31 '21 at 15:08
  • @MarcoConcas I understand and hope you'll continue to contribute. Thank you.
    – Amit Verma
    Jan 31 '21 at 17:34
0

Here is Method to generate any digits number. The loop inside will regenerate the number if it contains duplicate digits, so the random number will consist from unique digits only.

using System.Linq;

public static int GenerateRandomNum()
    {
        // Number of digits for random number to generate
        int randomDigits = 4;
        
        int _max = (int)Math.Pow(10, randomDigits);
        Random _rdm = new Random();
        int _out = _rdm.Next(0, _max);

        while (randomDigits != _out.ToString().ToArray().Distinct().Count())
        {
            _out = _rdm.Next(0, _max);
        }
        return _out;
    }
-1

You can consider something like this.

int length = 4;
int number = 50;
string asString = number.ToString("D" + length);

The above code gives the result 0050.

Similarly you can try converting to string and verify.

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