0

Is there a way to simply convert an IEnumerable into an IOrderedEnumerable in O(1)?
I've seem this question which is close to mine, but haven't found what I'm looking for. By simply, I mean to avoid creating a new class just for this casting purpose like it was done in Servy's solution in the question I referred to.

Here is a the scenario as why I need such thing.

public IOrderedEnumerable<Output> Sort(IEnumerable<ComplexObjs> objs)
{
    return objs.OrderByDescending(o => o.A)
              .ThenBy(o => o.B)
              .ThenBy(o => o.C)
              .SelectMany(o => o.Childs.Select(x => new Output(o, x)))
}

Note : Everything is linq to object, there is nothing connected to a database in this scenario.

  • What do you mean by, "avoid creating a new class just for this casting purpose"? What class? – Kirk Woll Jul 12 '16 at 20:05
  • I mean avoiding servy's solution in the question I refered. – AXMIM Jul 12 '16 at 20:06
  • 3
    Sounds like you don't know what the word "cast" means. Casting an object is simply informing the compiler that the object is in fact of a different type than what it thinks it is. Is your enumerable actually an IOrderedEnumerable? If not, then casting it will just fail at runtime. You want to know how to create a new object of type IOrderedEnumerable<T>, and to do that, see my earlier answer. – Servy Jul 12 '16 at 20:08
  • I have to ask why you need to return an IOrderedEnumerable<T>... do you intend to .ThenBy down the line? If not, what's wrong with a plain IEnumerable<T>? – spender Jul 12 '16 at 20:08
  • 5
    @AXMIM Unless you specifically need to support .ThenBy to do secondary ordering, then I think you're misunderstanding the intent of an IOrderedEnumerable<T>. Given that IOrderedEnumerable<T> conveys nothing about the ordering criteria that were used, knowing that something is ordered without knowing the order is not all that helpful. – spender Jul 12 '16 at 20:13