问题
Can you suggest simpler and clearer way to write this function?
let cartesian_product sequences =
let step acc sequence = seq {
for x in acc do
for y in sequence do
yield Seq.append x [y] }
Seq.fold step (Seq.singleton Seq.empty) sequences
回答1:
Less elegant, but (seems to be) faster solution:
let cartesian_product2 sequences =
let step acc sequence = seq {
for x in acc do
for y in sequence do
yield seq { yield! x ; yield y } }
Seq.fold step (Seq.singleton Seq.empty) sequences
;
> cartesian items |> Seq.length;;
Real: 00:00:00.405, CPU: 00:00:00.405, GC gen0: 37, gen1: 1, gen2: 0
val it : int = 1000000
> cartesian_product2 items |> Seq.length;;
Real: 00:00:00.228, CPU: 00:00:00.234, GC gen0: 18, gen1: 0, gen2: 0
val it : int = 1000000
回答2:
I benchmarked the function Juliet linked to:
let items = List.init 6 (fun _ -> [0..9])
cart1 items |> Seq.length |> ignore
Real: 00:00:03.324, CPU: 00:00:03.322, GC gen0: 80, gen1: 0, gen2: 0
and a slightly modified (to make it an apples-to-apples comparison) version of yours:
let cartesian items =
items |> Seq.fold (fun acc s ->
seq { for x in acc do for y in s do yield x @ [y] }) (Seq.singleton [])
cartesian items |> Seq.length |> ignore
Real: 00:00:00.763, CPU: 00:00:00.780, GC gen0: 37, gen1: 2, gen2: 1
Yours is significantly faster (and causes fewer GCs). Looks to me that what you have is good.
来源:https://stackoverflow.com/questions/6497058/lazy-cartesian-product-of-multiple-sequences-sequence-of-sequences