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As we all know, Enumerable.SelectMany flattens a sequence of sequences into a single sequence. What if we wanted a method that could flatten sequences of sequences of sequences, and so on recursively?

I came up quickly with an implementation using an ICollection<T>, i.e. eagerly evaluated, but I'm still scratching my head as to how to make a lazily-evaluated one, say, using the yield keyword.

static List<T> Flatten<T>(IEnumerable list)  {
    var rv = new List<T>();
    InnerFlatten(list, rv);
    return rv;
}

static void InnerFlatten<T>(IEnumerable list, ICollection<T> acc) {
    foreach (var elem in list) {
        var collection = elem as IEnumerable;
        if (collection != null) {
            InnerFlatten(collection, acc);
        }
        else {
            acc.Add((T)elem);
        }
    }
}

Any ideas? Examples in any .NET language welcome.

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1  
Maybe use the Y combinator? That would find the fixed point (i.e. completely flattened list) –  Mike Bantegui Nov 16 '12 at 1:46
2  
possible duplicate of Recursive List Flattening –  Cyril Gandon Nov 16 '12 at 2:57
2  
@Scorpi0: Very similar, but not exact duplicates. This question asks for answers in C# or F# (according to the tags) or other .net languages (from the question). The other question was specific to C#. –  Joh Nov 16 '12 at 8:22

2 Answers 2

up vote 6 down vote accepted

This is trivial in F# with recursive sequence expressions.

let rec flatten (items: IEnumerable) =
  seq {
    for x in items do
      match x with
      | :? 'T as v -> yield v
      | :? IEnumerable as e -> yield! flatten e
      | _ -> failwithf "Expected IEnumerable or %A" typeof<'T>
  }

A test:

// forces 'T list to obj list
let (!) (l: obj list) = l
let y = ![["1";"2"];"3";[!["4";["5"];["6"]];["7"]];"8"]
let z : string list = flatten y |> Seq.toList
// val z : string list = ["1"; "2"; "3"; "4"; "5"; "6"; "7"; "8"]
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1  
I must say I don't understand the casting to 'T trickery... 'T isn't mentioned anywhere but there, and it could be anything, including IEnumerable, no? How is writing 'T here any different from writing obj? –  Asik Nov 16 '12 at 6:51
    
@Dr_Asik Daniel's code is wrong in its current shape. If you try to type it, the compiler gives a warning that the second rule will never be matched. –  Joh Nov 16 '12 at 8:35
    
@Dr_Asik: 'T is a type arg and match x with :? 'T is a type test (x is T in C#). Type args are not required to be explicit in F#, due to type inference. –  Daniel Nov 16 '12 at 15:14
2  
@Joh: The function compiles (without warnings) and works perfectly, as my test demonstrates. You can try it out on ideone. –  Daniel Nov 16 '12 at 15:31
    
@Daniel I know what the syntax means, but I don't understand why 'T doesn't include IEnumerable so the second clause can be matched. –  Asik Nov 16 '12 at 18:37

As far as I understood your idea, this is my variant:

static IEnumerable<T> Flatten<T>(IEnumerable collection)
{
    foreach (var o in collection)
    {
        if (o is IEnumerable && !(o is T))
        {
            foreach (T t in Flatten<T>((IEnumerable)o))
                yield return t;
        }
        else
            yield return (T)o;
    }
}

and check it

List<object> s = new List<object>
    {
        "1",
        new string[] {"2","3"},
        "4",
        new object[] {new string[] {"5","6"},new string[] {"7","8"},},
    };
var fs = Flatten<string>(s);
foreach (string str in fs)
    Console.WriteLine(str);
Console.ReadLine();

Obviously, it does lack some type validity checks (an InvalidCastExcpetion if collection contains not T, and probably some other drawbacks)...well, at least it's lazy-evaluated, as desired.

!(o is T) was added to prevent flattenning of string to char array

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1  
!(o is T) is a nice catch! –  Benjol Nov 16 '12 at 5:46

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