Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have to write a function, that returns true if a given list is sorted in ascending order. The empty and 1-element lists are sorted. Also, [5,12,12] should return true.

I've written a function that seems to work:

let rec isSorted (l: int list) = 
    match l with
    | [] -> true
    | [x] -> true
    | [x;y] -> x <= y
    | x::y::xr -> if x > y then false else isSorted([y] @ xr);

But it seems a bit off... I'm thinking there must be an easier way to do this? I hate that I have to match 4 cases, but I cant figure out how to make it any smarter.

Any better solutions?

share|improve this question

4 Answers 4

up vote 7 down vote accepted

Well, never say

[y] @ xr

when

y :: xr

will do just as well. (In general, @ is a code smell.)

Kinda nitpicky, but the last line could be

| x::((y::_)as t) -> if x > y then false else isSorted(t)

and save you from doing any allocation.

Now, do you need the third case? What happens if you remove it?

share|improve this answer
    
Thanks for this! By using y :: xr, the 3rd case was not needed. I guess this was what tricked me - it did look weird. –  Peter Sep 4 '10 at 12:28

you can combine existing functions:

let isAscending l = l |> Seq.pairwise |> Seq.forall (fun (a, b) -> a <= b)

printfn "%b" (isAscending []) // true
printfn "%b" (isAscending [1]) // true
printfn "%b" (isAscending [5;12]) // true
printfn "%b" (isAscending [5;12;12]) // true
printfn "%b" (isAscending [5;12;12;11]) // false
share|improve this answer
1  
Ah, I don't know how much efficient with respect to the original solution, but elegant indeed :-) –  Edgar Sánchez Sep 4 '10 at 13:08
    
@Edgar Sánchez: Seqs are lazily constructed/evaluated, so there is still just one traversal. –  Dario Sep 4 '10 at 14:29

Getting back to the original code (as opposed to the suggested library calls), I'd say you can make a few improvements:

  • The third match case isn't really needed (was already mentioned).
  • In the second case you don't want to give the value a name, you're not accessing it.
  • In the forth case, it doesn't look right to take apart y::xr just to stitch it together again with [y] @ xr (or y::xr). An as expression seems nicer.
  • You are just combining two logical results, the if..then looks a bit out of place.

I have come up with the following revised version:

let rec isSorted l =
    match l with
    | [] | [_] -> true
    | h1::(h2::_ as tail) -> h1 <= h2 && isSorted tail

I doubt it's more efficient than the original, but it's easier on the eye.

share|improve this answer
    
Nice work. I hope the OP returns to mark this as the accepted answer. I expect that it is much more efficient than the original, because you've saved the unnecessary and expensive reconstruction of the tail on each call "isSorted([y] @ xr)", although if that is fixed, as per Brian's post, then there probably isn't much of a saving, but, yes it is much easier on the eye. –  Stephen Hosking Sep 12 '10 at 2:32

This is a particularly bad solution in terms of efficiency, so I'd never use this in the real world, but here is a nifty functional way of looking at the problem that I came up with as part of a blog example:

let isSorted l = l = (l|>List.sort)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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