Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'd like to know why I get an error with my SWI Prolog when I try to do this:

(signal(X) = signal(Y)) :- (terminal(X), terminal(Y), connected(X,Y)).
terminal(X) :- ((signal(X) = 1);(signal(X) = 0)).

I get the following error

Error: trabalho.pro:13: No permission to modify static procedure '(=)/2'

It doesn't recognize the "=" in the first line, but the second one "compiles". I guess it only accepts the "=" after the :- ? Why?

Will I need to create a predicate like: "equal(x,y) :- (x = y)" for this?

share|improve this question
2  
just rename it equal_signals(X,Y):- .... =/2 is a system predicate, you can not and need not change it here. –  Will Ness Jan 19 at 18:38
    
(Signal(t) = 1) OR ( Signal(t) = 0) translates to Prolog as signal(T,S), (S=1 ; S=0). this if you have a "function" signal which "returns" results in its 2nd argument. But you don't include any explanations in your questions, we're left guessing. Perhaps you could start by explaining what you have, in which "world" is your question set, and what do you want to achieve. –  Will Ness Jan 19 at 19:33

2 Answers 2

up vote 0 down vote accepted

Because = is a predefined predicate. What you actually write is (the grounding of terms using the Martelli-Montanari algorithm):

=(signal(X),signal(Y)) :- Foo.

You use predicates like functions in Prolog.

You can define something like:

terminal(X) :- signal(X,1);signal(X,0).

where signal/2 is a predicate that contains a key/value pair.

And:

equal_signal(X,Y) :- terminal(X),terminal(Y),connected(X,Y).
share|improve this answer
    
=(signal(X),signal(Y)) :- terminal(X),terminal(Y),connected(X,Y). This? I got the same error... –  Diedre Jan 19 at 18:51
    
Of course. What I say is that you aim to override a system predicate. It is not wise to do that. Furthermore you use signal as a function. Prolog uses the Herbrand universe. Therefore signal(a) is only equal to signal(a) (and not 0, 1, etc.) –  CommuSoft Jan 19 at 18:52
    
thanks for your answer. The only way to implement functions is like: signal(x,y)? and then i should check for Y value and create rules for it? thats what i found in internet. what i was trying to do is put these first order logic in prolog: t1, t2 (Terminal(t1) and Terminal(t2) and Connected(t1, t2)) -> (Signal(t1) = Signal(t2)) -  t Terminal(t) -> (Signal(t) = 1) OR( Signal(t) = 0) –  Diedre Jan 19 at 19:13
    
Well, as far as I know, one cannot do this (unless of course you write you're own meta-compiler in Prolog). Functions are indeed implemented using a predicate p/2 with (x,y) tuples. Notice that this is a map and that for instance a key x can have multiple ys –  CommuSoft Jan 19 at 20:24

Diedre - there are no 'functions' in Prolog. There are predicates. The usual pattern goes

name(list of args to be unified) :- body of predicate .

Usually you'd want the thing on the left side of the :- operator to be a predicate name. when you write

(signal(X) = signal(Y))

= is an operator, so you get

'='(signal(X), signal(Y))

But (we assume, it's not clear what you're doing here) that you don't really want to change equals. Since '=' is already in the standard library, you can't redefine it (and wouldn't want to)

What you probably want is

equal_signal(X, Y) :- ... bunch of stuff... . or

equal_signal(signal(X), signal(Y)) :- ... bunch of stuff ... .

This seems like a conceptual error problem. You need to have a conversation with somebody who understands it. I might humbly suggest you pop onto ##prolog on freenode.net or some similar forum and get somebody to explain it.

share|improve this answer
    
I m studying logic in artificial inteligence, but ive never used prolog. Im seeing that prolog language is kite differente to first order logic in syntax. Thank you very much for your answer! –  Diedre Jan 20 at 19:41
    
Yes - Prolog is based on Horn Clauses, a subset of first order logic. –  Anniepoo Jan 21 at 3:09
    
In my opinion, that's not the fundamental aspect that makes Prolog different from first order logic: the negation as finite failure, minimal model, closed-world assumption, Herbrand modelling, are quite different as well. –  CommuSoft Jan 21 at 13:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.