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I have a set of companies in rank order. I want my rule to check if the companies in a specified list are in rank order, and for the rule to recur until all companies in the list have been checked.

I currently have the following:

isOrder([]).
isOrder([COM1,COM2|T]) :-
    rank(COM1,D), rank(COM2,E),
    D<E,
    print("in order"),
    isOrder([COM2|T]).

However, this does not seem to work. Sometimes, the recursion goes on forever without ending, and sometimes the recursion doesn't work at all. This is when I vary the code to try and get the correct answer.

Can anybody help me? I have just started Prolog and my understanding of it is severely limited. Any help would be greatly appreciated.

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2 Answers 2

The problem is that your program has no case for a one-element list: the first case handles the empty list, while the second only matches a list with two or more elements.

You'll need to add a clause

isOrder([_]).
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In Prolog it's important to have the right "base" case for recursion, as well as getting the rule for the recursion itself right.

Here I think you want to change the base case from isOrder([ ]) to isOrder([_]), or maybe to have both of these.

The first clause you have now looks like it will return true for an empty list, which I guess does no harm. But the second clause can never reduce a nonempty list to an empty one. It only applies to a list that has at least two items (companies), and reduces such a case to a list that has at least one item.

So, add another clause isOrder([_]), which says you succeed if the list only has one item, and let us know how it works!

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1  
Not only does a clause for the empty list "do no harm", it matches the (logical) truth that an empty list is (trivially) ordered. –  larsmans Jan 9 '11 at 18:49

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