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I have a double[]and I have another IEnumerable<double> and another List<double> and also a ObservableCollection<double>.

All of these contain some double values.

I want to create a function which can take any of these as these collection as arguements, and that it will proportionate the values of each element in the collection so that they add to 1.

For e.g. - if array has 0.5, 1.0 and 0.5, then I can call ProportionateIt(mycollection), it should modify the values to 0.25, 0.5 and 0.25 because now they sum up to 1.

So far I have tried this:

    private IEnumerable<double> ProportionateIt(IEnumerable<double> input)
        double sum = 0;
        var newCollection = input.ToList();
        foreach (double d in newCollection)
            sum+= d;

        for (int i=0; i < input.Count(); i++)
            newCollection[i] = newCollection[i]*(1/sum);

        input = newCollection as IEnumerable<double>;
        return input;

It has some problems

  • It does not take all the types that I stated above as arguments.
  • it returns a new collection, instead of modifying the original one.

Can somebody create a ProportionateIt(....) function for me?

share|improve this question
Mzf's answer is a good solution to "proportionate" a list. You can now create overloads of the method that take different types of collections. In those methods, you put the elements in a new list and call the method which takes a list and returns a proportionated list, which in turn you put back into the original collection. – John Willemse May 28 '13 at 11:00

1 Answer 1

up vote 4 down vote accepted

You can do this

    private static void ProportionateIt(IList<double> input)
        double sum = input.Sum(d => d);

        for (int i = 0; i < input.Count; i++)
            input[i] = input[i] / sum;

Edit: made small changes - change List to IList as @Rawling suggest

share|improve this answer
Rather than add my own answer, I'm going to suggest that you change the parameter from List to IList, because then this will work for all of the types in the question except IEnumerable (which will never work anyway). Also that you drop the () from Count(). – Rawling May 28 '13 at 11:01
one more question.... how would you do it for doubles passed as params? – Joe Slater May 28 '13 at 15:49
what do you mean passed as params ? could you show the API ? – Mzf May 28 '13 at 17:11

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