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I have a problem in which I have a list of elements and I have to cycle through all instances of a particular /2 predicate to find which one has he highest number of matching elements in its list. In terms of implementation I can't seem to figure out how I should be updating the highest match so far and then stopping when there are no more.

findAnswer(MyList, HighMatchNum,_):-
    answer(X,Y),
    myIntersection(MyList, Y, NUM), //handles a single instance check and returns how many elements match.
    NUM > HighMatchNum,
    findAnswer(MyList, NUM, answer(X,Y)).

//Knowledge base
 answer(sample1, [a,b,c,d]).
 answer(sample2, [d,c,e]).
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3 Answers 3

up vote 2 down vote accepted

there is library(aggregate):

findAnswer(MyList, HighMatchNum, K) :-
    aggregate_all(max(N, Key),
              (   answer(Key, List),
                  myIntersection(MyList, List, N)
              ),
              max(HighMatchNum, K)).

myIntersection(MyList, List, N) :-
    intersection(MyList, List, L),
    length(L, N).

% Knowledge base
answer(sample1, [a,b,c,d]).
answer(sample2, [d,c,e]).

yields

?- findAnswer([a], C, K).
C = 1,
K = sample1.

?- findAnswer([d,e], C, K).
C = 2,
K = sample2.
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To find the best, we have to search through the whole list, to its end. We will maintain the best so far and its score as additional arguments:

best_match(MyList,R-RN):-
  findall(X, (answer(A,L), X=A-L), ALL),
  ALL = [A-L|T],
  myIntersection(MyList, L, N),
  find_best(MyList,T,A,N,R,RN).

find_best(_,[],A,N,A,N).
find_best(MyList,[B-H|T],A,N,R,RN):-
  myIntersection(MyList, H, K),
  ( K>N -> find_best( MyList, T, B, K, R, RN)
    ;      find_best( MyList, T, A, N, R, RN ).

this produces the name and score of the best match.

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Simply assert it, I can not see how you can propagate the max value in your solution.

:- dynamic maxval/1
:- maxval(0).

findAnswer(MyList, HighMatchNum) :-
    answer(X,Y),
    myIntersection(MyList, Y, NUM), %handles a single instance check and returns how many   elements match.
    NUM > HighMatchNum,             %If this fails, try other answer
    retract(maxval(_), assert(maxval(X)),!, %else retract the previous value and assert the new one
    findAnswer(MyList, NUM).

Finally check the value of maxval/1 as maxval(X). This algorithm will always fail so you will get the solution in the user database, the problem is with your implementation, you may check your logic. However it will assert the proper answer. You must remember to always implement a base case for any recursive procedure.

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it will surely fail, and the result will be asserted in the database. Also, findAnswer will always start from the start of all the answer facts. If you can use non-standard solutions, better use nb_setval in SWI, combined with fail, to achieve linear searching. –  Will Ness Apr 28 '13 at 14:42
    
It will definitely fail, thanks. I would make it work simply by adding a helper predicate with two realizations, one would call findAnswer and on its failure the second will retrieve the value. –  jdavid_1385 Apr 28 '13 at 14:53
    
yes, that's possible. This deals with aftermath of the search. I was referring though to the search itself. your findAnswer skips along the possible solutions which are shorter, but when it finds one that's longer than current maximum, it calls findAnswer again, and it will start from the first answer anew, not from the current longest answer. That's what I meant. :) Hmm, I'm also noticing right now that you must insert a cut before that last call to findAnswer. –  Will Ness Apr 28 '13 at 15:04
    
The cut is not neccesary and even more it won't work since you have to initialize HighMatchNum to zero and given the first retrieved Y intersection with MyList is greater than zero, the algorithm will succeed and the next failure will make it stop. –  jdavid_1385 Apr 28 '13 at 15:21
    
test it. :) ___ –  Will Ness Apr 28 '13 at 16:42
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