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In OCaml how would I write a median function that takes 5 arguments and returns the median. For example med5 2 5 7 4 3 would return 4.

I managed to write a med3 function (returns the median of 3 arguments) using if and else statements but this would be ridiculously complex if I attempted the same technique for 5 arguments :(

let med3 a b c =
  if ((b<=a && c>=a) || (c<=a && b>=a)) then a 
  else if ((a<=b && c>=b) || (c<=b && a>=b)) then b else c;;

For the med5 function, I would like to be able to use the min and max functions (built in to OCaml) to discard the highest and lowest values from the set of 5 arguments. Then I could use the med3 function that I have already written to return the median of the remaining 3 arguments, but how do I discard the minimum and maximum arguments!?!?!?!?

Any help would be much appreciated :)

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Unless I'm mistaken, med5 2 5 7 4 3 is 4 and not 3 –  Virgile Oct 10 '12 at 11:52
    
Haha, your absolutely right, thanks for pointing that out :) –  B4Z Oct 10 '12 at 12:02

3 Answers 3

up vote 2 down vote accepted

If you can use Array, then just put your 5 entries in an array, sort it, and return a[2]. If it's also forbidden in your assignment, you can use a poor-man's bubble sort to select the max, then the min:

let med5 a b c d e =
  (* move the max towards 'e' *)
  let a,b = if a<=b then a,b else b,a in
  let b,c = if b<=c then b,c else c,b in
  ...
  (* then move the min towards 'd', don't forget to reverse the comparisons *)
  ...
  in med3 a b c
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You could put those 5 arguments into a list, then removing an element from a list is easy.

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Unfortunately my question was part of an assignment that specified that we couldn't use lists because we weren't supposed to have learned about them yet :( Not that I would know how to write the function using lists either!!! :'( –  B4Z Oct 10 '12 at 11:40
    
I should also mention that the deadline for this assignment has already passed. –  B4Z Oct 10 '12 at 11:42

If lists and arrays are forbidden, you can have three variables storing the three greatest elements among the five:

let med5 a b c d e =
    let first  = ref min_int in
    let second = ref min_int in
    let third  = ref min_int in

    if      a >= !first  then (third := !second; second := !first; first := a)
    else if a >= !second then (third := !second; second := a)
    else if a >= !third  then (third := a);

    if      b >= !first  then (third := !second; second := !first; first := b)
    else if b >= !second then (third := !second; second := b)
    else if b >= !third  then (third := b);

    (* you guess what to do for c, d, e ;-) *)

    (* return the third largest element: *)
    !third
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