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I want to get 4 unique random floating point numbers in the range <0;9>. How could I do that. Is it possible to do this with a single function so I don't need to generate random numbers in a loop?

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You're asking for floats here, but your comments suggest you really want ints. Clarify? – cHao Nov 9 '10 at 0:52
Here is an article on visual studio magazine about this:… – marcob Aug 5 '13 at 15:17

5 Answers 5

up vote 14 down vote accepted
var rng = new Random();
int first = rng.Next(10);
int second = rng.Next(10);
int third = rng.Next(10);
int fourth = rng.Next(10);

If you need four distinct values then you can do something like this...

var rng = new Random();
var values = Enumerable.Range(0, 10).OrderBy(x => rng.Next()).ToArray();
int first = values[0];
int second = values[1];
int third = values[2];
int fourth = values[3];

Note that if you needed to generate many numbers then a proper shuffle implementation will give better performance than OrderBy: O(n) rather than O(n log n). If you only need a handful of numbers then OrderBy will be fine.

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Yes, but they need to be unique. – Richard Knop Nov 9 '10 at 0:40
@Richard Knop: unique or random? The above code does exactly what you asked in your question. – Mitch Wheat Nov 9 '10 at 0:41
"They need to be unique". Then they aren't random, are they? – aaaa bbbb Nov 9 '10 at 0:41
I have added word "unique" word to my question. They need to be unique (I don't want the same number twice) but random. Example: 0,4,5,8 or 3,1,7,6. 5,1,2,5 is not good. – Richard Knop Nov 9 '10 at 0:43
+1 nice, easy and clean way to get unique random numbers – BrunoLM Nov 9 '10 at 0:53

I am sorry but I could not resist

In that spirit you can do


I swear they are random

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so I don't need to generate random numbers in a loop?

Since your range is so limited, you can generate a number in [0, 9999] and use decimal digit extraction. This will likely improve performance, but only very slightly. Personally, I would just use a loop.

int fourDigit = m_Random.Next(10000);
int first = fourDigit % 10; fourDigit /= 10;
int second = fourDigit % 10; fourDigit /= 10;
int third = fourDigit % 10; fourDigit /= 10;
int fourth = fourDigit;

The original poster has clarified that the numbers are to be distinct. This practically necessitates a loop at least somewhere in the code. However, I do not think it requires multiple calls to Random, by adapting the above.

NOTE: I am not sure if this incrementing technique is free of bias, if someone familiar with the mathematics behind random numbers would be so kind to analyze. Thanks.

int fourDigit = m_Random.Next(10000);
int first = fourDigit % 10; fourDigit /= 10;
int second = fourDigit % 10; while (second == first) second = (second + 1) % 10; fourDigit /= 10;
int third = fourDigit % 10; while (third == first || third == second) third = (third + 1) % 10; fourDigit /= 10;
int fourth = fourDigit; while (fourth == first || fourth == second || fourth == third) fourth = (fourth + 1) % 10;
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This is what I use to get distinct random numbers in a given range:

var random = new Random();

int take = 4;
int rangeMin = 0;
int rangeMax = 10;

var randomUniqueNumbers = Enumerable.Range(0, int.MaxValue)
    .Select(i => random.Next(rangeMin, rangeMax))
    .Take(Math.Min(take, rangeMax - rangeMin));

It would be nicer with an Infinite enumeration insted of Enumerable.Range(0, int.MaxValue), but this does the job.

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Why not do:

    Enumerable.Range(0, 9)
              .OrderBy(x => Guid.NewGuid().GetHashCode())
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