2

I'm trying to correctly filter the values returned from a clause (it is returning multiple duplicated values). I'm having a hard time understanding the logic programming, sorry if its an stupid question.

These are my facts/predicates:

home(peter, sanFrancisco, 1000).
home(ash, sanFrancisco, 100).
home(juan, sanFrancisco, 400).
home(juan, california, 700).
home(ash, california, 600).
home(peter, california, 500).
home(peter, vegas, 100).
home(ash, vegas, 80).
home(juan, vegas, 60).

What im trying to do is to retrieve the name; the condition is that I have to retrieve only the ones that from a certain city their home is the most expensive from there but also if the second most expensive home from that same city is less than half the price of the first. I cannot use lists.

The most expensive from each city:

home(peter, sanFrancisco, 1000).
home(juan, california, 700).
home(peter, vegas, 100).

Second most expensive from each city:

home(juan, sanFrancisco, 400).
home(ash, california, 600).
home(ash, vegas, 80).

What I expect as a result:

peter.

What I have tried so far but with no success..

%Return the most expensive from each city.
theMostExpensive(Name, City):-
    home(Name, City, Price),
    fromEach(City, Price).

fromEach(City, Price):-
    forall(home(_, City, Price2), Price>= Price2).

%Return the second most expensive from each city. Not sure if working correctly.
secondMostExpensive(Name, City):-
    owner(home),
    not(theMostExpensive(Name, City)),
    theMostExpensive(Name2, City),
    Name \= Name2.

%Return a lot of duplicated values and wrong..
superExpensive(Name):-
    theMostExpensive(Name, City),
    secondMostExpensive(Name2, City),
    Name \= Name2,
    City \= City2,
    home(Name, City, Price),
    home(Name2, City2, Price2),
    Price > Price2 + (Price / 2).

I think somewhere in superExpensive is doing something like everyone * everyone?

  • 2
    I cannot understand only the ones that from a certain city their home is the most expensive from there but also if the second most expensive home from that same city is less than half the price of the first. Maybe rephrase it in correct nglish... Anyway, the most general query ?- secondMostExpensive(X,Y). is false. Is this expected ? – CapelliC Jun 13 at 6:18
  • @CapelliC, I have to compare the most expensive and the second most expensive home from each city and get the name only if the most expensive is at least double the second. secondMostExpensive(X, Y) forgot to add owner(Name), but im not certain its working well when passing values (free variables works fine). – Lelouch Jun 13 at 11:35
3

The most expensive home in a town is such that no other home in that town is more expensive than it:

most_expensive( home( Name, Town, Price)):-
  home( Name, Town, Price),
  \+ (home( _, Town, P), P > Price).

This gets us

5 ?- most_expensive( H ).
H = home(peter, sanFrancisco, 1000) ;
H = home(juan, california, 700) ;
H = home(peter, vegas, 100) ;
false.

The second most expensive home in a town is such that is the most expensive among the homes which are not the most expensive home in that town:

second_most_expensive( home( Name, Town, Price)):-
  most_expensive( home( _, Town, TopPrice) ),
  home( Name, Town, Price), Price < TopPrice,
  \+ (home( _, Town, P), P < TopPrice, P > Price).

And this gets us

8 ?- second_most_expensive( H ).
H = home(juan, sanFrancisco, 400) ;
H = home(ash, california, 600) ;
H = home(ash, vegas, 80) ;
false.

So then, with

top_house_owner( Name ) :-
  most_expensive( home( Name, T, P) ),
  second_most_expensive( home( _, T, P2 ) ),
  P2 < P div 2.

we get

12 ?- top_house_owner( N ).
N = peter ;
false.
  • What if I want to do the same but calculating the Price inside the clause? Like second_most_expensive( Name, Town):- and return the Name and Town only. most_expensive(Name, Town):- already does since I am checking the Price in the second predicate already I guess home( Name, Town, Price). – Lelouch Jun 14 at 15:57
  • I didn't quite get your meaning; it's probably best to post a new question with its code, sample query and desired output, etc. For instance, without the desired output, I wouldn't have guessed what you meant in this question. :) – Will Ness Jun 14 at 23:31
0

You can find a simple solution if you think of the problem in the following way.

A person X meets your conditions if and only if X has a house in some city Y, and there is no one else in Y with a house costing at least half of the price of X's.

% true if Name2's home is at least half of the price of Name1's
aboveHalf( City, Name1, Name2 ) :-
  home( Name1, City, P1 ),
  home( Name2, City, P2 ),
  Name1 \= Name2,
  P2 > P1 div 2.

superExpensive( Name ) :-
  home( Name, City, _ ),
  \+ aboveHalf( City, Name, _ ).

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