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Im new to Prolog and was looking for some assistance. What i am trying to do is basically get the some of the list of list, if that makes sense? lol

What i am trying to achieve is.... sum([ [1,2],[3,4],[5,6] ]). should return: Number Of Lists: 3 List 1 3 List 2 7 List 3 11....etc

I can get the Number of Lists which is fairly simple but im not quite sure how to loop through the List and then for each List add the number up. Am i making this more complicated than it actually is? lol!

If anyone can help me or point me in the general direction that would be great.

Thanks in advance

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3 Answers 3

In SWI-Prolog you can use maplist and sumlist;

?- maplist(sumlist, [[1,2], [3,4], [5,6]], Lengths).
Lengths = [3, 7, 11].

Now you can pretty-print Lengths the way you like.

To learn how maplist and sumlist are implemented, just call listing(maplist) and listing(sumlist).

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SWI-Prolog seems to have elements of functional programming (higher-order functions), right? –  Yasir Arsanukaev Dec 28 '10 at 13:49
    
@Yasir: Yes, it has call/N which lets you implement things like maplist/N –  Kaarel Dec 28 '10 at 17:59

If you want to limit the number of built-in predicates you use to just "is":

sum_list([], []).
sum_list([[A,B]|Rest], [Current|RestResult]) :-
      Current is A + B,
      sum_list(Rest, RestResult).

?- sum_list( [[1,2],[3,4],[5,6]], X ).
X = [3, 7, 11].

Tested in SWI-Prolog.

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Can you bring some reasons why one would want to limit the use of built-ins? Portability? –  Kaarel Dec 28 '10 at 18:02
    
For practical reasons portability. For less practical ones, it makes for a great learning exercise. –  Kyle Dewey Jan 5 '11 at 6:01

As long as it's a beginner question, I have made the following code in Visual Prolog, though it's generic and is supposed to work on all major implementations of Prolog:

domains
  ilist=integer*
  ilistlist=ilist*

predicates
  mapsum(ilistlist, ilist, ilist)
  reverse(ilist,ilist,ilist)
  sum(ilist,integer,integer)

clauses
  reverse([],L,L).
  reverse([X|Xs], A, R):-
    A1 = [X|A],
    reverse(Xs, A1, R).

  sum([], A, A).  
  sum([X|Xs], A, R):-
    Y = X + A,
    sum(XS, Y, R).

  mapsum([], A, R):-
    reverse(A, [], R).
  mapsum([X|Xs], A, R):-
    sum(X, 0, Sum),
    A1 = [Sum|A],
    mapsum(Xs, A1, R).

goal
  mapsum([[9,5,3,6],[8,4],[2,7],[]], [], R).

Result is:

R=[23,12,9,0]
1 Solution

This code works for any number of elements in the inner lists and handles empty lists properly.

I think it doesn't make much sense to have lists inside a list, just a list of sums will do. The asterisk in integer* in Visual Prolog means that you want the list of integers.

In the goal you call the main predicate mapsum providing it with 3 lists in a list, an empty list (accumulator) and an unbound variable R; the latter will get the result.

mapsum in each iteration retrieves the head X of the list you provided in the goal, and evaluates sum of its (list) elements, then it creates a new list A1, which's a combination of the accumulator A and a sum of the head you just evaluated, then it tail-calls itself with the rest of list elements (tail), a new accumulator A1 and the yet unbound variable R.

When mapsum approaches the bound condition, when the list (first argument) is empty, it reverses the list, and binds the result of reverse to unbound variable R.

I think you'll sort out how sum and reverse work yourself.

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Certainly, there are other ways to approach the problem, e. g. you may go the functional way, but I haven't fiddled with the other Prolog implementations yet. –  Yasir Arsanukaev Dec 28 '10 at 12:01

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