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I'm implementing a variation on Einstein's Riddle and i'm having some trouble.

When trying to calculate the solution i try this:

solve(Street) :- Street = [_House1,_House2,_House3,_House4,_House5],
%hint one goes here
%hint two goes here
%etc.

I can then ask the solution by typing: solve(Street)

However this comes up as solution:

  1. house(flower, food, pet, sport)
  2. house(flower, food, pet, sport)
  3. house(x , food, pet, sport)
  4. house(flower, food, pet, sport)
  5. house(x, flower, pet, sport)

As you can see there's 2 times x, the rest are all types of foods, flowers, pets and sports. But every type is unique: if one person likes flower X, noone else can like X.

Now, the reason why my solution gives 2 x's is easy to see: we are given an amount of hints but in all the hints there are only mentioned 4 flowers. So Prolog doesn't know there is another flower, and just uses x twice, just because it's possible and fulfills all the other hints.

What i want to say is that all the types of foods and flowers etc. in Street are unique so he should leave some blank when he used all types already. 3 would look like: house(x , food, pet ,sport) and 5 would look like: house(_, flower, pet, sport).

I also tried adding this to the hints: (let's say "cactus" is one of the flowers not mentioned in the hints) member(house(cactus,_,_,_), Street)

However then my program doesn't end...

A hint may look like this: is_neighbour(house(_,_,_,football),house(_,_,fish,_), Street), with : is_neighbour(A,B,List) giving true when A and B are next to each other in List. The hint can be translated to: the person who loves football lives next to the person who has fish.

If any more info need to be provided i'm willing to elaborate. :)

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1 Answer 1

up vote 2 down vote accepted

To express that no flower is reported twice, and also to make sure that all flowers are bound, you can use the permutation/2 predicate: the list of all flowers should be a permutation of the list of specified flowers. This would read like [untested]

flowers([], []).
flowers([house(Flower,_,_,_)|Street], [Flower|Rest]) :- flowers(Street, Rest).

-- ...
   flowers(Street, Flowers), 
   permutation(Flowers, [kaktus, tulpe, nelke, rose, fingerhut]),

Edit: for 10 flowers, using permutations is probably too slow. An alternative approach is

flower(kaktus).
flower(tulpe).
flower(nelke).
--...

       flowers(Street,[F1,F2,F3,F4,F5,F6,F7,F8,F9,F10]),
       flower(F1), flower(F2), F1\=F2,
       flower(F3), F3\=F1, F3\=F2,
       flower(F4), F4\=F1, F4\=F2, F4\=F3,
       --...
share|improve this answer
    
Sounds like a logic and understandable answer, however i must be doing something wrong.. I added all the flowers in the second list of permutation. I also put flowers(Street, Flowers) and the permutation to the solve(Street). But now it doesn't seem to end. (usually it would end within 5 min. but now it's been over 15min.) Does it matter where i put the permutation ? –  Aerus Dec 10 '10 at 22:19
    
Permutation should be symmetric for both arguments, so swapping the arguments should not help. Putting the permutation call in a different location should help very much, though: you should first put those conditions that constrain the solution space most. Put write calls into it to have it trace what it's doing. –  Martin v. Löwis Dec 10 '10 at 22:27
    
When i put a call(write()) around the permutation at the end of the hints it gives: permutation([geranium,hyacint,lelie,dahlia,lelie],[cactus,lelie,geranium,hya‌​cint,dahlia]). When i put it in front of all the hints it gives me: permutation([_46,_53,_60,_67,_74],[cactus,lelie,geranium,hyacint,dahlia]). I'm not sure what that first means. The output still gives me 2 x's but it does end now. Do i also need to add permutations for the other types in order for this single permutation to work ? –  Aerus Dec 10 '10 at 22:53
    
Not sure what you mean by putting write "around" permutation(). Are you saying you use permutation as a structure that you merely print out? You should evaluate it as a predicate, and put the print after, not around, permutation. –  Martin v. Löwis Dec 10 '10 at 23:07
    
I'm pretty sure i'm doing something wrong with the write thingie.. Here is my code: pastebin.com/5TjJJ5nj (it's long but all the things are similar so can be skipped pretty fast when reading), could you please tell me where do i put this write ? Also what do i put as argument for the write since it gives me an error when i don't pass any arguments... –  Aerus Dec 10 '10 at 23:37

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