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Let us consider an IEnumerable and the algorithm that takes pairs of overlapping indexes e.g. {0, 1}, {1, 2}, {2, 3} etc. end creates a new collection based on values of these indexes e.g. {collection[0], collection[1] => result[0]}, {collection[1], collection[2] => result[1]} and so on. Below is an example of straight implementation:

IEnumerable<string> collection = new string[100];
var array = collection.ToArray();
var results = array.Skip(1).Select((e, i) => e - array[i]);

How to achieve the goal in better manner?

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Your code sample doesn't appear to relate to the question. Can you clarify? –  Corey Feb 19 '13 at 8:18

3 Answers 3

up vote 2 down vote accepted
var array = new string[] { "one", "two", "three" };
var result = Enumerable.Range(1, array.Length - 1)
                        .Select(i => new[] { array[i - 1], array[i] });

Here is @TrustMe solution with arrays instead of tuples (just to show you sample, you should not accept my answer):

IEnumerable<string> collection = new string[] { "one", "two", "three" };
var result = collection.Zip(collection.Skip(1), (x,y) => new [] { x, y });

But keep in mind, that collection will be enumerated two times if you do not use access by index (with array or list).


UPDATE Here is an extension method, which will work with collection and will enumerate sequence only once:

public static class Extensions
{
    public static IEnumerable<T[]> GetOverlappingPairs<T>(
        this IEnumerable<T> source)
    {
        var enumerator = source.GetEnumerator();
        enumerator.MoveNext();

        var first = enumerator.Current;

        while (enumerator.MoveNext())
        {
            var second = enumerator.Current;
            yield return new T[] { first, second };
            first = second;
        }
    }
}

Usage:

var result = collection.GetOverlappingPairs();
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1  
Seems that the custom iterator is the best aproach. Once declarated can be used very easy in query for overlapping items. Zip allows only to creates pairs, so I can't use more complex scenario like {0, 1, 2}, {1, 2, 3}. Range is suffiecient for ICollections. –  Ryszard Dżegan Feb 19 '13 at 9:21

And here's another one:

var ints = Enumerable.Range(0, 10);
var paired = ints.Zip(ints.Skip(1), Tuple.Create);

That way you'll get the pairs {0,1}, {1,2} ...

I assume that's what you're asking for, because your code sample is a tad different than what you described... :)

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I hate tuples, but Zip is clever –  Sergey Berezovskiy Feb 19 '13 at 8:26
    
@lazyberezovsky I have to admit, tuples are a bit clunky in C# (and Scala for that matter too), but it's always a pair... ;) –  Patryk Ćwiek Feb 19 '13 at 8:28
    
A pair with awful non-descriptive names :) –  Sergey Berezovskiy Feb 19 '13 at 8:29
    
I need values, not indexes. But values of overlapping indexes. I need t[1] - t[0], then t[2] - t[1] and so on. I need pairs {0, 1}, {1, 2}, {2, 3}, ... –  Ryszard Dżegan Feb 19 '13 at 8:33
    
@yBee than what's wrong with Cuong Le solution? –  Sergey Berezovskiy Feb 19 '13 at 8:38
 var result = Enumerable.Range(1, arrayCollection.Length - 1)
               .Select(i => new[] {arrayCollection[i - 1], arrayCollection[i]});

If arrayCollection is IEnumerable

var result = Enumerable.Range(1, arrayCollection.Count() - 1)
                 .Select(i => new[] {
                          arrayCollection.ElementAt(i - 1), 
                          arrayCollection.ElementAt(i) 
                        });
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Do you have and idea how to omit arrayCollection and use collection? –  Ryszard Dżegan Feb 19 '13 at 8:38
    
@yBee: afraid that I don't totally understand what you mean, please could you clarify more? –  Cuong Le Feb 19 '13 at 8:41
1  
+1 from me - solution is correct after question was updated –  Sergey Berezovskiy Feb 19 '13 at 8:45
    
I would like to take overlapping pairs directly from IEnumerable not from an Array. I've created the array (arrayCollection) in my example in order to achieve the goal, but I wont it. I need pairs of values from collection that come from overlapping indexes. –  Ryszard Dżegan Feb 19 '13 at 8:45
    
@yBee: updated my answer –  Cuong Le Feb 19 '13 at 8:48

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