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I run into this beginners problem, and i don't know how to solve this. Here is my code:

worker( w1, d1, 2000 ) .    
worker( w2, d1, 2500 ) .
worker( w2, d2, 1000 ) .
worker( w3, d2, 2000 ) .
worker( w4, d2, 4000 ) .

% worker( W, D, S ) means that worker W works in department D and has salary S

department( d1, w2 ) .
department( d2, w4 ) .

% department( D, B ) means that worker B is director of department D(this is not important in this case)

I need to get sum of all salaries form one of department, like this:

?- department_costs( d1 , T ) .
T = 4500;
no
?- department_costs( D, T ) .
D = d1
T = 4500;
D = d2
T = 7000;
no
?- department_costs( d3 , T ) .
no

I tried this:

department_costs( D, T ):- worker( _X, D, T1 ), T is T1.

And I get this:

?- department_costs( o1, T ).
T=2000;
T=2500;
no

now I need to sum T+T for total costs, but I don't know how to do that. I would like to solve this without using findall/setof/bagof.

EDIT:

I tried with findall:

sumL([], 0).
sumL([G|R], S):-
   sumL(R, S1),
   S is S1 + G.

department_costs( D, T ):-
   findall(P, worker( _X, D, P ), R ),
   sumL(R, S),
   T=S.

It works fine with department_costs( d1, T ), and department_costs( d2, T ), but when I enter department_costs( D, T ). i get this:

 department_costs( D, T ).
 O=_h159
 T=11500

and it should be like this:

 ?- department_costs( D, T ) .
 D = d1
 T = 4500;
 D = d2
 T = 7000;

can someone tell what is the problem now?

share|improve this question
up vote 5 down vote accepted

Wanting to solve this without findall/3 will just result in a poor attempt at recoding said findall/3. If you really wanna skip findall/3, represent your data in a different way, for example:

workers([w1-d1-2000, w2-d1-2500, w2-d2-1000, w3-d2-2000, w4-d2-4000]).
departments([d1-w2, d2-w4]).

In this format you will be able to use recursion and list processing techniques to achieve a good result. In the previous one you will have to go with either database manipulation and/or global variables. Not really Prolog-ish.

For your edit, the problem is that you use findall/3, and that findall/3 will give you all the results for the one variable you're interested in, but will not precise the bindings that led to those results.

Try bagof/3 instead:

bagof(S, W^worker( W, D, S ), R ).

And see this man page (even if it's SWI, those are ISO Prolog predicates anyway) for more information.

share|improve this answer
    
i'll try then with findall, i'll post my attempt – user1598696 Sep 4 '12 at 10:58
    
I've made an edit to my answer regarding the code you proposed – m09 Sep 4 '12 at 11:30
    
thanks! it works :) – user1598696 Sep 4 '12 at 11:35
    
@Mog: Why not setof/3? – false Oct 6 '12 at 20:28
    
@false: to preserve the duplicate salaries if two people have the same salary (which could happen I guess). – m09 Oct 6 '12 at 21:12

library(aggregate) is meant to solve exactly such kind of problems. It's worth to study.

department_costs( D, T ) :- aggregate_all(sum(C), worker( _, D, C ), T).

edit

XSB has 'Tabling Aggregate Predicates' that should allow you to solve efficiently your problem.

share|improve this answer
    
Ihave to use XSB prolog, I wish there is aggregate library but there isn't :( – user1598696 Sep 4 '12 at 10:57
2  
I've seen the SWI-Prolog tag, sorry... XSB should have some more fundamental way to do aggregation, because it implements tabling. I'll try to find something in the docs. – CapelliC Sep 4 '12 at 11:25
    
thanks a lot for helping! – user1598696 Sep 4 '12 at 11:27

Kind of crude, and retracts every worker fact used, but will do the trick:

department_costs(D,T) :- worker(X,D,T1), retract(worker(X,D,T1)), department_costs(D,T2), T is T1+T2).
department_costs(_,0).

A less destructive alternative would be to pass around a list of the workers used so far, verify any worker about to be used isn't in the list, and add the newly-used worker to the list for the recursive call. (I suppose you could instead just re-assert the retracted fact at the end of the clause, after the recursive call returns, but that feels REALLY hacky.)

share|improve this answer
    
doesn't work for me :( – user1598696 Sep 4 '12 at 10:57

I haven't tested this but the idea is you accumulate the workers you counted already. I don't really like it though, if I find more than a couple of minutes for this I'm sure you can do it in a more declarative way without the evil cut.

department_sum(S, D) :- 
        department_sum_agg([], S, D).

department_sum_agg(Workers, S, D) :- 
    worker(X,D,SX), 
    \+ member(X, Workers), !,
    department_sum_agg([X|Workers], SRest, D),
    S is SX + SRest.

department_sum_agg(_, 0, _).
share|improve this answer
    
For query department_sum(S,D) the result will depend on the order of answers to worker/3. If it is defined with facts, only the department of the first fact will be considered... – false Oct 6 '12 at 20:32

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