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I have a puzzle that is a 3*3 grid with numbers 1-8 in them, with a blank spot (0) that I can move around. This is the final state of the puzzle:

1 2 3 
8 0 4 
7 6 5

This whole "state" is represented by state(1,2,3,8,0,4,7,6,5), by reading horizontally. I need a function to check to see which pieces are in the right spots.

I have:

h(state(A,B,C,D,E,F,G,H,I),Z) :-

Now Z is going to be the number of pieces in the correct spot.

A = 1
B = 2
C = 3
D = 8
E = 0
F = 4
G = 7
H = 6
I = 5

Is there any easy way to give an output for Z? Any help would be appreciated. Thanks.

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3 Answers 3

this seems rather simple to do...

h(state(A,B,C,D,E,F,G,H,I),Z) :-
    count_matching([A,B,C,D,E,F,G,H,I], [1,2,3,8,0,4,7,6,5], 0, Z).

count_matching([], [], N, N).
count_matching([A|As], [B|Bs], N, M) :-
    (   A == B
    ->  T is N + 1
    ;   T is N
    ),
    count_matching(As, Bs, T, M).

SWI-Prolog aggregate library offers another easy way to solve your problem:

:- [library(aggregate)].

h(state(A,B,C,D,E,F,G,H,I),Z) :-
    aggregate_all(count,
      (nth1(Index, [1,2,3,8,0,4,7,6,5], Cell),
       nth1(Index, [A,B,C,D,E,F,G,H,I], Cell)), Z).

Using aggregate_all is overkill: here a simpler program using the same schema (non deterministic access to elements via nth/3):

h(state(A,B,C,D,E,F,G,H,I),Z) :-
    findall(_,
      (nth1(Index, [1,2,3,8,0,4,7,6,5], Cell),
       nth1(Index, [A,B,C,D,E,F,G,H,I], Cell)), L),
    length(L, Z).
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Are you sure you can't store your information in lists? This is kinda how in a traditional language you use arrays instead of just a bunch of variables if you want a way to iterate over them.

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There's a short way of expressing this in Prolog, but it requires CLP(FD).

:- use_module(library(clpfd)).

h(State, Z) :-
    State =.. [state | Pos],
    maplist(equal, Pos, [0,1,2,3,8,0,4,7,6,5], Eq),
    sum(Eq, #=, Z).

equal(X, Y, E) :-
    E #<==> (X #= Y).
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