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Problem in general : we have map 8*8 and we have to fill the empty squares with number from 1 to 6.But in each column and raw number should be met only 1 time.Two squares in each row and column are left empty.Numbers from both sides,up and down show us the first number,that should appear(but it can appear after two empty squares).

So,now i have this code,which finally works on swi-prolog for 4*4 map.

:- module(ab, [ab/0]).
:- [library(clpfd)].

gen_row(Ls):-length(Ls, 4), Ls ins 0..3.

transpose(Ms, Ts) :-
    %must_be(list(list), Ms),
    (   Ms = [] -> Ts = []
    ;   Ms = [F|_],
        transpose(F, Ms, Ts)
    ).

transpose([], _, []).
transpose([_|Rs], Ms, [Ts|Tss]) :-
    lists_firsts_rests(Ms, Ts, Ms1),
    transpose(Rs, Ms1, Tss).

lists_firsts_rests([], [], []).
lists_firsts_rests([[F|Os]|Rest], [F|Fs], [Os|Oss]) :-
    lists_firsts_rests(Rest, Fs, Oss).

ab :-
Rows = [R1,R2,R3,R4],
maplist(gen_row, Rows),
transpose(Rows, [C1,C2,C3,C4]),

maplist(all_distinct, [R1,R2,R3,R4]),
maplist(all_distinct, [C1,C2,C3,C4]),

start(R2, 3),
start(R3, 3),
finish(R3, 2),

start(C3, 1),
finish(C2, 2),

maplist(writeln, [R1,R2,R3,R4]).

finish(X, V) :-
reverse(X, Y),
start(Y, V).

start([0,Y|_], Y).
start([Y|_], Y).

But,it doesn't support the problem with 2 empty places for bigger area,like 8*8 puzzle.Any hint's?

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closed as not constructive by false, Daniel Lyons, m09, Kris, xdazz Oct 10 '12 at 13:21

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Oona, you should expect your questions will be downvoted and closed. StackOverflow has policies devoted to 'global' usefulness. You will have to solve your too much detailed problems alone... –  CapelliC Oct 9 '12 at 10:27
    
fd_all_different is for GNU Prolog, use all_different in SWI Prolog –  CapelliC Oct 9 '12 at 13:13
    
I got this,and i am writing on GNU Prolog,but it still doesn't work.I cant get the thing with two zeros aka empty spaces.In this case we can't use "assumption of uniqueness" –  Oona Oct 9 '12 at 14:30
    
please post the exact puzzle definition, I'm lost now and don't know the problem you are speaking of... –  CapelliC Oct 9 '12 at 14:42
    
I have added a difinition.Thank you very much,you are very helpfull.Sorry for messy programing and explanetions. –  Oona Oct 9 '12 at 14:54

1 Answer 1

up vote 0 down vote accepted

you must get transpose/2 from the other question and replace all_distinct/1 with fd_all_distinct/2.

Also, get writeln and replace write here maplist(write, [R1,R2,R3,R4]).

edit A simple solution would be to extend the 'encoding' of the finite domain, reserving two digits as blanks, instead of just the 0, and extending the logic already seen in answer posted to the other question.

For analogy I'll call third_end_view, and would be (in Gnu Prolog)

/*  File:    third_end_view_puzzle.pl
    Author:  Carlo,,,
    Created: Oct  10 2012
    Purpose: help to solve extended Second End View puzzle
             http://stackoverflow.com/q/12797708/874024
*/

:- include(transpose) .

third_end_view_puzzle :-

    length(Rows, 8),
    maplist(gen_row(8), Rows),
    transpose(Rows, Cols),

    maplist(fd_all_different, Rows),
    maplist(fd_all_different, Cols),

    Rows = [R1,R2,R3,R4,R5,R6,R7,R8],
    Cols = [C1,C2,C3,C4,C5,C6,C7,C8],

    start(R1, 4),
    start(R2, 2),
    start(R3, 3),
    start(R4, 5),
    start(R5, 3),
    finish(R1, 6),
    finish(R2, 4),
    finish(R3, 2),
    finish(R5, 1),
    finish(R7, 2),


    start(C2, 3),
    start(C3, 4),
    start(C4, 3),
    start(C5, 5),
%   start(C6, 4),
    start(C7, 1),
%   finish(C1, 3),
%   finish(C2, 2),
    finish(C3, 5),
    finish(C4, 5),
    finish(C5, 6),
    finish(C6, 1),
    finish(C7, 4),

    maplist(fd_labeling, Rows),
    nl,
    maplist(out_row, Rows).

gen_row(N, Ls) :-
    length(Ls, N),
    fd_domain(Ls, 1, N).

out_row([]) :- nl.
out_row([H|T]) :-
    (H >= 7 -> write('-') ; write(H)),
    write(' '),
    out_row(T).

% constraint: Num is max third in that direction
start(Vars, Num) :-
    Vars = [A,B,C|_],
    A #= Num #\/ (A #>= 7 #/\ B #= Num) #\/ (A #>= 7 #/\ B #>= 7 #/\ C #= Num).

finish(Var, Num) :-
    reverse(Var, Rev), start(Rev, Num).

I have used a simpler condition, without reification, to state the 'third view from direction'.

As previously, you see that some constraint (those commented out) make the puzzle unsolvable.

test:

| ?- third_end_view_puzzle.  

4 3 - - 5 2 1 6 
2 1 - 3 - 5 6 4 
3 5 4 1 - 6 2 - 
5 4 6 2 1 3 - - 
- - 3 6 2 4 5 1 
1 6 2 4 3 - - 5 
6 - 1 5 4 - 3 2 
- 2 5 - 6 1 4 3 

true ? 
share|improve this answer
    
But what about 2 empty places,which i'll have at endView on 8*8? –  Oona Oct 9 '12 at 10:33
    
Edit your question with the exact problem statement, then I'll show you the solution. But you should show us your efforts so far... –  CapelliC Oct 9 '12 at 11:03
    
Thaks,i have edited question and now keep on working with it. –  Oona Oct 9 '12 at 11:53
    
Thank you!That clears everything!You helped really much! –  Oona Oct 10 '12 at 18:35

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