F#: Incorrect results when Seq.groupBy groups on a sequence?

Question

Steven Proctor posted an example of Ruby's Enumerable#group_by:

["tar", "rat", "bar", "rob", "art", "orb"].group_by {|word| word.chars.sort}
# => {["a", "r", "t"]=>["tar", "rat", "art"],
#  ["a", "b", "r"]=>["bar"],
#  ["b", "o", "r"]=>["rob", "orb"]}

I decided to do the same thing in F#:

let grouped = seq ["tar";"rat";"bar";"rob";"art";"orb"]
              |> Seq.groupBy (fun word -> word |> Seq.sort)

... but I did not get the same results as the Ruby program:

seq
  [(seq ['a'; 'r'; 't'], seq ["tar"]); 
   (seq ['a'; 'r'; 't'], seq ["rat"]);
   (seq ['a'; 'b'; 'r'], seq ["bar"]);
   (seq ['b'; 'o'; 'r'], seq ["rob"]);
   (seq ['a'; 'r'; 't'], seq ["art"]);
   (seq ['b'; 'o'; 'r'], seq ["orb"])]

Why does Seq.groupBy not, well, group? According to FSI, two equivalent sequences are, in fact, equal:

> let a = seq ['a'; 'r'; 't'];;
> let b = seq ['a'; 'r'; 't'];;
> a = b;;
// val it : bool = true

Why then does Seq.groupBy not return the following?

seq
  [(seq ['a'; 'r'; 't'], seq ["tar"; "rat"; "art"]); 
   (seq ['a'; 'b'; 'r'], seq ["bar"]);
   (seq ['b'; 'o'; 'r'], seq ["rob"; "orb"])]

Answer 1

Seq.sort returns a value of type 't seq, which is synonym for IEnumerable<'t>. Now, IEnumerable<'t> is not a structurally comparable type, so results yielded from calls to Seq.sort cannot be matched and grouped by.

You might add |> List.ofSeq or |> Array.ofSeq to convert 't seq' to 't list or 't [], which are structurally comparable.

Answer 2

If you would try to check in fsi this equality:

seq { yield 1; yield 2 } = seq { yield 1; yield 2 }

you would get false. Comparison of lists is working as you would expect.

All you need to do is convert your sequence to list or stay with array

|> Seq.groupBy (fun word -> word |> Seq.sort |> List.ofSeq)

Answer 3

Just add Seq.toList:

let grouped =
    seq ["tar";"rat";"bar";"rob";"art";"orb"]
    |> Seq.groupBy (fun word -> word |> Seq.sort |> Seq.toList)

Produces:

> grouped |> Seq.toList;;
val it : (char list * seq<string>) list =
  [(['a'; 'r'; 't'], seq ["tar"; "rat"; "art"]);
   (['a'; 'b'; 'r'], seq ["bar"]);
   (['b'; 'o'; 'r'], seq ["rob"; "orb"])]

The reason it's not working as given in the OP is because Seq.sort returns a char seq, which is an alias for IEnumerable<char> - an object. Two objects aren't equal to each other unless they refer to the same address; they have reference equality.

By turning them into lists, you get back the expected structural equality.