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Say I have the following data

IEnumerable<IEnumerable<int>> items = new IEnumerable<int>[] { 
    new int[] { 1, 2, 3, 4 },
    new int[] { 5, 6 },
    new int[] { 7, 8, 9 }
};

What would be the easiest way to return a flat list with the items interleaved so I'd get the result:

1, 5, 7, 2, 6, 8, 3, 9, 4

Note: The number of inner lists is not known at runtime.

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4 Answers 4

up vote 9 down vote accepted

What you're describing is essentially a Transpose Method where overhanging items are included and the result is flattened. Here's my attempt:

static IEnumerable<IEnumerable<T>> TransposeOverhanging<T>(
    this IEnumerable<IEnumerable<T>> source)
{
    var enumerators = source.Select(e => e.GetEnumerator()).ToArray();
    try
    {
        T[] g;
        do
        {
            yield return g = enumerators
                .Where(e => e.MoveNext()).Select(e => e.Current).ToArray();
        }
        while (g.Any());
    }
    finally
    {
        Array.ForEach(enumerators, e => e.Dispose());
    }
}

Example:

var result = items.TransposeOverhanging().SelectMany(g => g).ToList();
// result == { 1, 5, 7, 2, 6, 8, 3, 9, 4 }
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Loved your solution. Think this was the magic line var enumerators = source.Select(e => e.GetEnumerator()).ToArray(); +1 –  Anand Jun 11 '12 at 4:25
    
Worked a treat, and added a new extension method to my toolbelt. Thanks! –  Cameron MacFarland Jun 11 '12 at 5:23

Here's my attempt, based on dtb's answer. It avoids the external SelectMany and internal ToArray calls.

public static IEnumerable<T> Interleave<T>(this IEnumerable<IEnumerable<T>> source)
{
    var enumerators = source.Select(e => e.GetEnumerator()).ToArray();
    try
    {
        bool itemsRemaining;
        do
        {
            itemsRemaining = false;
            foreach (var item in 
                     enumerators.Where(e => e.MoveNext()).Select(e => e.Current))
            {
                yield return item;
                itemsRemaining = true;
            }
        }
        while (itemsRemaining);
    }
    finally
    {
        Array.ForEach(enumerators, e => e.Dispose());
    }
}
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The solution below is very straight forward. As it turns out, it is also nearly twice as fast as the solution proposed by dtb.

private static IEnumerable<T> Interleave<T>(this IEnumerable<IEnumerable<T>> source )
{
    var queues = source.Select(x => new Queue<T>(x)).ToList();
    while (queues.Any(x => x.Any())) {
        foreach (var queue in queues.Where(x => x.Any())) {
            yield return queue.Dequeue();
        }
    }
}
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Though its not as elegant as "dtb"'s answer, but it also works and its a single liner :)

Enumerable.Range(0, items.Max(x => x.Count()))
                      .ToList()
                      .ForEach(x =>
                                   {
                                            items
                                            .Where(lstChosen => lstChosen.Count()-1 >= x)
                                            .Select(lstElm => lstElm.ElementAt(x))
                                            .ToList().ForEach(z => Console.WriteLine(z));
                                   });
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