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For an assignment I am required to create a rule based system to test compliance with a fire_code

roomHasFastExit is my test clause where the others are part of a building plan

Rm is equal to wotl1 in this case

roomHasFastExit(Rm):- hasDoor(Rm, Door), isa(Door, outsideDoor).

hasDoor(wolt1, wodoorlt1c).
hasDoor(wolt1, wodoorlt1exit).
hasDoor(wolt1, wodoor115lt1).

isa(wodoor115lt1, door).
isa(wodoorlt1c, door).
isa(wodoorlt1exit, outsideDoor).

The problem I am occurring is if find that the door I have requested does not comply, I need to check the next door, if I recursively call the clause I will just get the same door, So how do I loop through each door checking if it is compliant.

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1 Answer 1

Your code it's already ok:

?- roomHasFastExit(Rm).
Rm = wolt1 ;

When you really need to 'loop through each' record of your database, you are rather evaluating each possible alternative that satisfies your query.

In Prolog this relational point of view is obtained by means of backtracking, that allows exaustive search in top down order.

At interpreter top level you implements this using ';'

?- hasDoor(wolt1,X).
X = wodoorlt1c ;
X = wodoorlt1exit ;
X = wodoor115lt1.

A useful library predicate that forces a full evaluation is forall/2. For instance

show_available_doors(Room) :-
    forall(hasDoor(Room, Door), writeln(Door)).


?- show_available_doors(wolt1).

Prolog uses lists as main syntactic construct when expressing algorithms: findall/3 it's the simpler builtin that constructs lists, fully evaluating queries:

?- findall(Door, hasDoor(Room, Door), Doors).
Doors = [wodoorlt1c, wodoorlt1exit, wodoor115lt1].
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