3

I'm having a List<List<string>>, which is return from the remote data source (i.e., WCF). So, I need to modify the following data into a user-friendly list using LINQ

The C# Code is

List<List<string>> PersonInfo = new List<List<string>>()
{
    new List<string>() {"John", "Peter", "Watson"},
    new List<string>() {"1000", "1001", "1002"}
}

Appropriate Screen Shot: Existing

enter image description here

I need to rotate the data as like the below Screenshot: Proposed

enter image description here

Kindly assist me how to rotate the data using LINQ C#

  • Are there always going to be two lists inside the main one? – vmutafov Sep 14 '16 at 7:52
  • @vmutafov Yes. List<List<string>> – B.Balamanigandan Sep 14 '16 at 7:53
  • The question is: does PersonInfo always contain 2 lists, or can there be more than 2? – Dennis_E Sep 14 '16 at 7:55
  • I am not sure you understood me. I meant, are there always going to be one list with the names and one list with the numbers? – vmutafov Sep 14 '16 at 7:56
  • 2
    This is called transposing rather than pivoting by the way. – Good Night Nerd Pride Sep 14 '16 at 8:26
12

This is a simple and flexible solution, it will handle multiple inner lists with any number of dimensions.

List<List<string>> PersonInfo = new List<List<string>>()
{
    new List<string>() {"John", "Peter", "Watson"},
    new List<string>() {"1000", "1001", "1002"}
};


var result = PersonInfo
    .SelectMany(inner => inner.Select((item, index) => new { item, index }))
    .GroupBy(i => i.index, i => i.item)
    .Select(g => g.ToList())
    .ToList();
4

Here is a extension method

public static IEnumerable<IEnumerable<T>> Pivot<T>(this IEnumerable<IEnumerable<T>> source)
{
    var enumerators = source.Select(e => e.GetEnumerator()).ToArray();
    try
    {
        while (enumerators.All(e => e.MoveNext()))
        {
            yield return enumerators.Select(e => e.Current).ToArray();
        }
    }
    finally
    {
        Array.ForEach(enumerators, e => e.Dispose());
    }
}

so you can

var result = PersonInfo.Pivot();
1

Assuming there are only ever 2 lists inside PersonInfo:

var rotated = PersonInfo[0]
    .Zip(PersonInfo[1], (a, b) => new List<string> { a, b }).ToList();

If there can be any number of Lists inside of PersonInfo:

Enumerable.Range(0, PersonInfo[0].Count)
    .Select(i => PersonInfo.Select(lst => lst[i]).ToList()).ToList();
  • The second one won't work. Loop runs just twice. – sachin Sep 14 '16 at 8:06
  • ok, now you fixed it :) – sachin Sep 14 '16 at 8:07
  • @sachin Yep, I noticed it myself too. – Dennis_E Sep 14 '16 at 8:09
1

You can use Enumerable.Range and Enumerable.ElementAtOrDefault:

List<List<string>> rotated = Enumerable.Range(0, PersonInfo.Max(list => list.Count))
 .Select(i => PersonInfo.Select(list => list.ElementAtOrDefault(i)).ToList())
 .ToList();

PersonInfo.Max(list => list.Count) returns the max-size of the lists. This will be the new size of the main list, in this case 3. Enumerable.Range is like a for-loop. For every list it will now select all strings at these indexes. If the sizes are different you'll get null(because of ElementAtOrDefault).

If the lists had the same size you can apply the same query to get the original list back:

PersonInfo = Enumerable.Range(0, rotated.Max(list => list.Count))
 .Select(i => rotated.Select(list => list.ElementAtOrDefault(i)).ToList())
 .ToList();

As extension:

public static IEnumerable<IList<T>> Rotate<T>(this IEnumerable<IList<T>> sequences)
{
    var list = sequences as IList<IList<T>> ?? sequences.ToList();
    int maxCount = list.Max(l => l.Count);
    return Enumerable.Range(0, maxCount)
        .Select(i => list.Select(l => l.ElementAtOrDefault(i)).ToList());
}

Usage:

IEnumerable<IList<string>> rotated = PersonInfo.Rotate();
IEnumerable<IList<string>> rotatedPersonInfo = rotated.Rotate(); // append ToList to get the original list
  • @Oliver: why delete? Of course the lists must have the same size, but that is the case here. But thanks for noting, I've fixed my answer – Tim Schmelter Sep 14 '16 at 8:33
  • I read it as Min not Max (duh) so I was referring to data loss rather than additional values. Different none the less! – Oliver Sep 14 '16 at 8:45
0

This extends the Zip idea above to any number of lists. Zip will truncate the row lists to the smallest rank.

List<List<string>> PersonInfo = new List<List<string>>()
{
    new List<string>() {"John", "Peter", "Watson"},
    new List<string>() {"1000", "1001", "1002"},
    new List<string>() {"2000", "2001", "2002"},
    new List<string>() {"3000", "3001", "3002"}
};

var seed = Enumerable.Empty<List<string>>();
var transformed = PersonInfo.Aggregate(seed, (acc, r) =>
   acc.Any()
 ? acc.Zip(r, (row, nextElement) => { row.Add(nextElement); return row; })
 : r.Select(e => new List<string> { e }) //initialize target list using first row
); 
-1

Try this:

List<List<string>> PersonInfo = new List<List<string>>(){
new List<string>() {"John", "Peter", "Watson"},
new List<string>() {"1000", "1001", "1002"}};

List<List<string>> PivitedPersonInfo = new List<List<string>>();
for (int i = 0; i < PersonInfo.First().Count; i++)
{
    PivitedPersonInfo.Add(PersonInfo.Select(x => x.ElementAt(i)).ToList());
}

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