0

To get Distinct values, I need an IEnumerable.

var results = gridData.Select(r => r.ExplicitColumnName).Distinct();

To decide the column name at run time, I need to use an IQueryable as required by System.Linq.Dynamic.

var results = gridData.AsQueryable().Select(columnNameIsInThisVar);

I want my method to return json so figured List of string and then load that into a JsonResult. But I'm having problems getting both distinct values and run-time flexibility on column.

So I guess my question is, in LINQ, how do I do this?

List<string> results = $"select distinct {columnName} from ridiculous_table_with_100_columns";

Update 1

As per comments, I've now installed dynamic Linq as a nuget package but I still can't convert to List.

filterValues = gridData.AsQueryable().Select(columnName).Distinct();

Which gets me a "Cannot implicitly convert type 'System.Linq.IQueryable' to 'System.Collections.Generic.List'. An explicit conversion exists (are you missing a cast?)"

6
  • By adding Distinct at the end (after Select)? Dynamic LINQ defines Distinct on IQueryable.
    – Ivan Stoev
    Nov 21, 2016 at 0:39
  • Dynamic Linq doesn't provide a Distinct method. After the select, an IQueryable is returned. It needs to be converted to IEnumerable but I can't think of a way to do that without building it manually by iterating over the IQueryable, in which case I might just as well filter out the duplicates myself. Nov 21, 2016 at 0:41
  • I see public static IQueryable Distinct(this IQueryable source); inside System.Linq.Dynamic.DynamicQueryable.
    – Ivan Stoev
    Nov 21, 2016 at 0:44
  • 1
    Aaah. I got my Dynamic.cs from the CSharpSamples zip as it was linked from an old blog entry from ScottGu. A quick google revealed it's now available as a nuget package and this one does have the Distinct method. My bad. Thanks for the nudge :-) Nov 21, 2016 at 0:54
  • You are welcome, glad it helped :)
    – Ivan Stoev
    Nov 21, 2016 at 1:01

1 Answer 1

1

You could do this with reflection

var results = gridData.Select(r => r.GetType().GetProperty(colName).GetValue(r)).Distinct();

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.