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I want to generate random (double) numbers between two limits, let say: lim1 and lim2.

But, I want this numbers to be generated in order. E.g.: between 1 and 6 : 1.53412 1.654564 2.213123 5.13522 . Thanks!

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What have you tried so far and why isn't your current solution working? Please post some code. –  ZeroOne Apr 22 '12 at 17:04
1  
Well, you could generate some numbers and then sort them... –  zmccord Apr 22 '12 at 17:05
2  
Off topic, but you should try accepting some of your previous answers to draw more attention to your future questions. –  Justin Skiles Apr 22 '12 at 17:10

3 Answers 3

up vote 4 down vote accepted
public static double[] GenerateRandomOrderedNumbers(double lowerBoundInclusive, double upperBoundExclusive, int count, Random random = null)
{
    random = random ?? new Random();
    return Enumerable.Range(0, count)
        .Select(i => random.NextDouble() * (upperBoundExclusive - lowerBoundInclusive) + lowerBoundInclusive)
        .OrderBy(d => d)
        .ToArray();
}

Not perfect, but I hope this puts you in the right direction.

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2  
I'd pass in the Random instance as a parameter, to avoid seeding issues. –  CodesInChaos Apr 22 '12 at 17:12
2  
Good answer, but it doesn't generate numbers between two limits. Easy enough fix :) –  Daniel Mann Apr 22 '12 at 17:12
    
@CodeInChaos, DBM: Correct and correct. Fixed and fixed. –  Allon Guralnek Apr 22 '12 at 17:16

Generate the random numbers and put them on a list:

var numbers = new List<int>();
Random random = new Random();

Add your numbers:

var number = random.Next(min, max); 
numbers.Add(number);

Then sort the list:

var orderList = from n
  in numbers
  orderby n
  select n;
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1  
Random.Next returns ints, the OP wants doubles. –  CodesInChaos Apr 22 '12 at 17:11

What about using this to generate a set of random numbers:

lim1 + random.Next(lim2 - lim1)

and then simply sorting them?

See also:

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