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I am quite rusty in prolog, but I am not sure why things like this fail:

frack(3).

frack(X) :- frack(X-1).

So, if I evaluate frack(4). from the interactive prompt with the above facts defined, I expect that it should not have to endlessly recurse, since 4-1 = 3. But I get this error in SWI-Prolog:

ERROR: Out of global stack
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4 Answers 4

up vote 3 down vote accepted

Try it:

?- 4-1 = 3.
false.

Why? Because 4-1 = -(4, 1), which clearly is not a number but a compound term. Others have already told you to use is/2 for arithmetic evaluation. You may find SWI-Prolog's graphical tracer useful to see what happens in your case:

?- gtrace, frack(4).
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I didn't know SWI had that. Nice! –  Warren P Feb 10 '12 at 14:40
frack(X) :- frack(X-1).

should be

frack(X) :- Y is X - 1, frack(Y).

The way you wrote it, X-1 expression of the first level unifies with X variable at the next level, never going for the frack(3) fact.

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Thanks for using the word Unifies. Now it makes sense again. I last did prolog in 1989. It's been a while. –  Warren P Feb 10 '12 at 14:39
    
@WarrenP Wow, so you're an old-timer compared to me! I last did Prolog in 1996 :) –  dasblinkenlight Feb 10 '12 at 14:44
    
Your solution still does not terminate. –  false Nov 15 '12 at 12:05
    
@false Why wouldn't it terminate if OP's frack(3). fact is still in place, and he's passing a 4? –  dasblinkenlight Nov 15 '12 at 12:20
    
@dasblinkenlight: frack(4) does find a solution, but it does not terminate. Very old toplevels did not ask for "further solutions" if the goal was ground. So people thought that everything works. However, when they later used the code in another context, the loop came up at the most inappropriate moment. Think of setof(X,(X=1,frack(4)),_). For this reason, newer toplevels (like in SWI, YAP, B, GNU) always ask for further answers, provided there is (internally) a choicepoint left. In this manner such hidden loops can be detected earlier (see failure-slice for more). –  false Nov 15 '12 at 12:27

Prolog doesn't do arithmetic unless you use the is operator:

frack(X) :- X1 is X-1, frack(X1).
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Here is the reason for this non-termination. Your query does not terminate, because there is a of your program that does not terminate:

?- frack(4).

frack(3) :- false.
frack(X) :-
   frack(X-1), false.

You can fix this only by modifying something in the visible part. Three SO-answers suggest to use (is)/2. But this will not remove non-termination! In fact, using (is)/2 leads to essentially the same fragment:

?- frack(4).

frack(3) :- false.
frack(X) :-
   Y is X - 1,
   frack(Y), false.

At least, frack(4) now succeeds, but it will loop on backtracking. You have to change something in the visible part, like some test for X, in order to avoid non-termination. See for more.

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