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 wrote a OCaml program for union find algorithm. This algorithm I wrote is not optimal and is the simplest version.

I put my OCaml code here because I am not sure whether this code is good enough or not (despite of the algorithm itself), although this code can run without errors.

This is the first time I wrote a complete working thing after I started to learn OCaml, so please help me by reviewing it.

Useful suggestions will help me improving my OCaml skills. Thanks


type union_find = {id_ary : int array; sz_ary : int array};;

let create_union n = {id_ary = Array.init n (fun i -> i); 
                  sz_ary = Array.init n (fun i -> 1)};;

let union u p q = 
  let rec unionfy id_ary i = 
    let vp = id_ary.(p) in
    let vq = id_ary.(q) in
    if i < Array.length id_ary then begin 
      if i != q && id_ary.(i) = vp then id_ary.(i) <- vq;
      unionfy id_ary (i + 1)
    end 
    else print_string "end of union\n"
  in
  unionfy u.id_ary 0;;

let is_connected u p q = u.id_ary.(p) = u.id_ary.(q);;

First of all,

Am I creating the data structure of union (as in union find) correctly?

Should I include two arrays inside or is there any better way?


Second,

I am using array in this code, but array is mutable which is not that good for fp right?

Is there a way to avoid using array?


Finally,

Overall, is this piece of code good enough?

Anything can be improved?


P.S. I am not using OCaml's object oriented bit yet, as I haven't learnt to that part.

share|improve this question
1  
I think codereview.stackexchange.com would be better suited for this kind of questions. –  jrouquie Feb 7 '13 at 20:19
    
ahh, sorry, didn't know that site. –  Jackson Tale Feb 7 '13 at 20:25
    
There are too many stackexchange sites, no one should be expected to be a casual user of this site and keep track, or have any desire to sign-up for each one (although as trivial as it may be). He has a lot of questions here that belong on this site, I wouldn't worry too much Jackson. –  nlucaroni Feb 7 '13 at 21:17
    
Thanks @nlucaroni you are right, actually I think stackoverflow is overhelming, too many categories. –  Jackson Tale Feb 7 '13 at 21:44
    
I'm not flaging your question, my comment was just to let you know the existence of this site, so that over time you become a proficient stackoverflow user ;-) –  jrouquie Feb 8 '13 at 6:28

2 Answers 2

up vote 2 down vote accepted

A few stylistic points:

Not sure why unionfy takes id_ary as a parameter since it keeps it constant throughout

don't use Array.init with a constant function. Just use Array.make.

print_string "...\n" is equivalent to print_endline "..."

The following definition can be cleaned up with punning to let union u p q = to: let union {id_ary; _} p q so that there are no extraneous references to u.

Same punning trick for let is_connected u p q = u.id_ary.(p) = u.id_ary.(q);;

This might be a personal choice but I would get rid of:

let vp = id_ary.(p) in
let vq = id_ary.(q) in

Or at least shove them above the recursive definition so that it's clear they are constant.

EDIT: corrected version

let union {id_ary;_} p q = 
    let (vp, vq) = (id_ary.(p), id_ary.(q)) in
    let rec unionfy i = 
        if i < Array.length id_ary then begin 
            if i != q && id_ary.(i) = vp then id_ary.(i) <- vq;
            unionfy (i + 1)
        end else print_endline "end of union"
    in unionfy 0;;
share|improve this answer
    
for your punning thing, if I don't ref u., the id_ary inside the u won't be changed, right? and I need it to be changed as if multiple union will be carried out. –  Jackson Tale Feb 7 '13 at 20:14
    
id_ary is an array, hence it's mutable. Not sure what you mean. If you're asking if you'll need to change the code, then no you would not because the names are the same. –  rgrinberg Feb 7 '13 at 20:20
    
what I meant is that if I use {id_ary;_} instead of u.id_ary, will these two id_ary are exactly the same? I thought OCaml will duplicate the id_ary. –  Jackson Tale Feb 7 '13 at 20:21
1  
duplication, will not occur they will be completely identical. I think you are confusing it with functional updates. Arrays are passed by reference by default so only their pointer gets copied. I've also added a cleaned up version of your modified function. –  rgrinberg Feb 7 '13 at 20:24
1  
if you have a type defined like so: {a_list : some_type} then yes. it's identical. Punning is just syntactic sugar for destructuring records. –  rgrinberg Feb 7 '13 at 20:43

Some comments on the code:

  • You don't seem to use sz_ary for anything.

  • Your code iterates through the whole array for each union operation. This is not correct for the standard (Tarjan) union-find. For a linear number of union operations your code produces a quadratic solution. Wikipedia has the standard algorithm: Disjoint-set Data Structure.

To answer your second question: as far as I know, union-find is one of the algorithms for which there's no known functional (immutable) solution with the same complexity as the best imperative solution. Since an array is simply a map from integers to values, you could always translate any array-based solution into an immutable one using maps. As far as I've been able to determine, this would match the best known solution in asymptotic complexity; i.e., it would add an extra factor of log n. Of course there would also be a constant factor that might be large enough to be a problem.

I've implemented union-find a few times in OCaml, and I've always chosen to do it using mutable data. However, I haven't used arrays. I have a record type for my basic objects, and I use a mutable field in each record to point to its parent object. To do path compression, you modify the parent pointer to point to the current root of the tree.

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.