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I am familiar with the Enumerable.Range method for generating an enumeration of values. But I would like something slightly different. I want to provide a min value, max value, and a number of desired points.

IE:

Method(double min, double max, int numberOfSteps)

taking

Method(0, 1000, 11);

would return

0, 100, 200, 300, 400, 500, 600, 700, 800, 900, 1000

I figure for something like this, there must be a built-in method but my search hasn't turned anything up. Am I missing something?

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2 Answers 2

up vote 12 down vote accepted

Other than the fact that you want the values to be double, everything else can be done with Enumerable.Range. I don't think there's anything built-in to do what you want, but it's trivial to implement on top of Enumerable.Range:

return Enumerable.Range(0, steps)
                 .Select(i => min + (max - min) * ((double)i / (steps - 1)));

I've written that somewhat carefully so that you always end up with the final value. It does bork if you say you only want a single step though... you might want to guard against that and use Enumerable.Repeat(min, 1) in that case.

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2  
Impeccable as always! –  Alessandro Sep 13 '12 at 14:11
    
Wow that's really simple and clever. Thanks. And I'll do exactly that regarding an input of 1 step. Actually negative steps as well. Something like if (steps <= 1) return Enumerable.Repeat(min, 1); –  Michael Mankus Sep 13 '12 at 14:17

Just calculate 'Common Difference' & generate the series:

d = (max - min)/(numberOfSteps - 1)

Now, You can easily generate your series:

int [] a = new [numberOfSteps];

for(i=0; i<numberOfSteps ; i++)
{
  a[i] = min + (numberOfSteps - 1)d;
}
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