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How to write a predicate minmax(L, X, Y) to find out min value of X and max value of Y in list of integer L.

Example:

?- minmax([1, -10, 1, 0, 7, 7], X, Y).
X = -10, Y = 7.
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3 Answers 3

take the first value from the list, then examine each other element of the list, selecting lower/higher values as temporary min/max.

When at the end of list, you have both...


minmax([First|Rest], Min, Max) :-
   minmax(Rest, First, First, Min, Max).

minmax([], Min, Max, Min, Max).
minmax([Value|Ns], MinCurr, MaxCurr, Min, Max) :-
   .... 
   minmax(Ns, MinNext, MaxNext, Min, Max).

I'll let you write the tests before the recursive call (i.e. fill the dots!)

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As noted, you need to iterate over the list, accumulating the min and max values as you go. So, assuming that you have to write this from scratch, the first thing you need to do is decompose the problem into simple steps:

  1. You need a means of comparing two objects and determine which is the lower or higher.
  2. You need a means of iterating over the loop and tracking the min and max values seen as you go.

That leads to a min/3 and max/3, thus:

min(X,X,X).
min(X,Y,X) :- X < Y .
min(X,Y,Y) :- X > Y .

max(X,X,X).
max(X,Y,X) :- X > Y .
max(X,Y,Y) :- X < Y .

For your purposes here, one could even combine them into a single predicate, if you liked:

rank( X , X , X , X ) .
rank( X , Y , X , Y ) :- X < Y .
rank( X , Y , Y , X ) :- X > Y .

A pretty typical programming pattern in Prolog is to have a simple public API predicate that invokes a private "worker" predicate that does the actual work. Often the worker predicate will carry temporary "accumulator" variables that simplify the job. Your public predicate might look like:

minmax([X|Xs],Min,Max) :- minmax_scan( Xs , X , X , Min , Max ).

Here, your public API predicate accepts a non-empty list, seeding the min/max accumulators the worker predicate uses with the head of the list, then calling the worker predicate with the tail of the list.

Your worker predicate then might look like this:

% if the list is empty, we've solved the puzzle, right?
minmax_scan( [] , Min , Max , Min , Max ) .
% if the list is non-empty, we need to compare its head to
% the current value for min/max to determine the new values for min/max
% (which might be the same), and then recurse down on the tail of the list
minmax_scan( [X|Xs] , CurrMin , CurrMax , Min , Max ) :-
  min( X , CurrMin , NextMin ) ,
  max( X , CurrMax , NextMax ) ,
  minmax_scan( Xs , NextMin , NextMax , Min , Max )
  .

Easy!

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Here's something convoluted and a bit complex.

is_minmax(A,B-D,C-E) :-
    D is min(...),
    E is max(...) .

pair(A,B,A-B).

minmax(L,MIN,MAX) :- 
    L=[A|_], length(L,N), N2 is N-1,
    length(L2,N2), append(L2,[MIN],L22), 
    length(L3,N2), append(L3,[MAX],L33),
    maplist(pair, [A|L2], L22, KL2),
    maplist(pair, [A|L3], L33, KL3),
    maplist(is_minmax, L, KL2, KL3).

(works in SWI Prolog). Try to figure out what to write in place of dots ....

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