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Having two lists of same object type. I want to join them using an interleave pattern where i items of the first list are separated by j items from the second list.

In essence:

First list

{a, b, c, d, e, f, g, h}

Second list

{0, 1, 2, 3, 4}

where the grouping count for the first list is 3 and for the second list is 2.

resulting in

{a, b, c, 0, 1, e, f, g, 2, 3, h, 4}

Is this possible with Linq?

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In addition to Marc's suggestion, here's a link showing how to implement a zip extension method: community.bartdesmet.net/blogs/bart/archive/2008/11/03/… –  gn22 Nov 18 '09 at 19:25
    
I'm not convinced that Zip would work here... possibly Zip combined with a partitioning operator... –  Jon Skeet Nov 18 '09 at 19:30
    
Zip would work if you apply SelectMany to result of the Zip to expand each tuple into a sequence. –  Pavel Minaev Nov 18 '09 at 20:32

1 Answer 1

up vote 10 down vote accepted

There's nothing within LINQ itself to do this - it seems a pretty specialized requirement - but it's fairly easy to implement:

public static IEnumerable<T> InterleaveWith<T>
   (this IEnumerable<T> first, IEnumerable<T> second,
    int firstGrouping, int secondGrouping)
{
    using (IEnumerator<T> firstIterator = first.GetEnumerator())
    using (IEnumerator<T> secondIterator = second.GetEnumerator())
    {
        bool exhaustedFirst = false;
        // Keep going while we've got elements in the first sequence.
        while (!exhaustedFirst)
        {                
            for (int i = 0; i < firstGrouping; i++)
            {
                 if (!firstIterator.MoveNext())
                 {
                     exhaustedFirst = true;
                     break;
                 }
                 yield return firstIterator.Current;
            }
            // This may not yield any results - the first sequence
            // could go on for much longer than the second. It does no
            // harm though; we can keep calling MoveNext() as often
            // as we want.
            for (int i = 0; i < secondGrouping; i++)
            {
                 // This is a bit ugly, but it works...
                 if (!secondIterator.MoveNext())
                 {
                     break;
                 }
                 yield return secondIterator.Current;
            }
        }
        // We may have elements in the second sequence left over.
        // Yield them all now.
        while (secondIterator.MoveNext())
        {
            yield return secondIterator.Current;
        }
    }
}
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That was fast! Thank you very much. I'm trying it now... –  Stécy Nov 18 '09 at 19:29
1  
@Stecy: There was a bug in the first version. Try this one. –  Jon Skeet Nov 18 '09 at 19:31
    
You still need to work on that; firstGrouping and secondGrouping are integers, not iterators as you use them in the for loops. But it's the best approach to the problem, hands down. –  Randolpho Nov 18 '09 at 19:34
    
@Randolpho: Fixed (it was just the once.) –  Jon Skeet Nov 18 '09 at 19:42
    
Just checked, and it compiles now. I really should try to get into the habit of compiling before posting... –  Jon Skeet Nov 18 '09 at 19:43

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