Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have a knowledge base that consists of students database in a file 'students.pl' like this:

% student(Name,Percent,List_of_Marks_in_3_subjects).
student('abc',83,[80,80,90]).
student('pqr',70,[70,60,80]).
student('xyz',76,[80,70,80]).

I want to access each student predicate from the knowledge base and calculate the average marks in each subject or average percentage, without using 'findall' or assert/retract. I may want to use backtracking like this:

find_score_all(X) :- student(Name,Percent,L),
    write(Percent),nl,
    fail.
find_score_all(_).

With this approach I can access each element and write it, but if I want to add each 'Percent' value as an element to a list or just use a predicate like 'Percent1 is Total + Percent' to total the percent values and then find its average, how can I do so? Note that I dont want to use findall or retract/assert and preferably find the average in one pass through the knowledge base since the knowledge base is very large.

Any help is appreciated.

share|improve this question
    
You're describing a failure-driven loop, but such loops cannot pass information from iteration to iteration except through assert/retract (unless you use an extension, such as SWI's global variable library). Why are you prohibited from using standard practices? – Daniel Lyons Feb 19 '13 at 4:10
    
Can you add numeric id from 1 to N to every student fact in the database? – Sergey Dymchenko Feb 19 '13 at 7:23
    
@j4n-bur53 That link answer uses assert. This question states in the topic not to use findall or assert. – shujin Jul 1 at 11:07
    
@j4n-bur53 That question [link] (stackoverflow.com/questions/7647758/…) answes uses search and makes a pass through the whole knowledge base for every search, which is different from this case. – shujin Jul 1 at 17:43
    
Maybe you are expecting a thread solution. stackoverflow.com/a/38152802/502187 It is to expect that in future Prolog systems implementations thease threads will become more widespread adopted and also cheaper concerning speed and memory. – j4n bur53 Jul 1 at 19:36
%solution for sum of percents, you can replace with any other calculation sum_percent predicate.
listing(student/3, convert_to_list/2, sum_percent, sum_percent/2).

% student(Name,Percent,List_of_Marks_in_3_subjects).
student('abc',83,[80,80,90]).
student('pqr',70,[70,60,80]).
student('xyz',76,[80,70,80]).

convert_to_list(X, R):-
    student(N, P, LM),
    not(member(st(N, P, LM), X)),
    convert_to_list([st(N, P, LM)|X], R).

convert_to_list(X, X).

sum_percent:-
    convert_to_list([], X),
    sum_percent(X, S),
    write(S).

sum_percent([], 0).
sum_percent([st(_,E,_)|T], S):-
    sum_percent(T, S2),
    S is E+S2.
share|improve this answer

if you want to add to a list then you should use findall, or better, library(aggregate). But if you fear about efficiency, you could use something like this

integrate(ave, Goal, Ave) :-
    State = state(0, 0, _),
    repeat,
    (   call(Goal, V),
        arg(1, State, C), U is C+1, nb_setarg(1, State, U),
        arg(2, State, S), T is S+V, nb_setarg(2, State, T),
        fail
    ;   arg(1, State, C), arg(2, State, S), Ave is S/C
    ).

:- meta_predicate integrate(+, :, ?).

test:

members(X) :- member(X, [1,2,3,4]).

?- integrate(ave, members, R).
R = 2.5 .

Of course, you'll need to add error handling (at least, when counter C == 0).

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.