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I have a some problem with my PROLOG assignment.

Namely, I have to write predicate accept(+Automaton, +Word) that return true if Word belong to language (Automaton is represented by Goto table, Action table and grammar, but it is not so important), false otherwise (it is required in my assignment to return true or false). I have written

accept(Automaton, Word) :-         
    parse(Automaton, Word, RightmostDeriv),
    nl, print_list(RightmostDeriv), nl.


Predicate parse(+Automaton, +Word, -RightmostDeriv) calculate righmost derivation. If Word cannot be parsed then RighmostDeriv == ['mistake']

As you see I can print rigthmost derivation, but I do not know how to return false or true.

I have found this and I see that here can be a problem.

But maybe is here any solution (e.g with member predicate, something like member('mistake', RightmostDeriv) ) to return true or false?

Edit: having

accept(Automaton, Word) :-         
    parse(Automaton, Word, RightmostDeriv),
    nl, print(RightmostDeriv), nl.   

I received (Test 2 - example from wikipedia

[4]  ?- make.

=============== Test 1  =================== 


=============== Test 2  =================== 

true .

[4]  ?- 

and having:

accept(Automaton, Word) :-         
    parse(Automaton, Word, RightmostDeriv),
    RightmostDeriv \= ['mistake']. 

I received (infinite loop)

?- make.

=============== Test 1  =================== 
^CAction (h for help) ? break
% Break level 1
[1]  ?- 
share|improve this question
If I understood correctly, you'd have to add RighmostDeriv \= ['mistake'] to check whether the word was accepted or not, yielding true or false as a result of the query. – gusbro Jun 4 '13 at 19:01
hmm.. it does not help.I have enclosed in the edited part of question result of query. – JosephConrad Jun 4 '13 at 19:51
If it does not end the problem is that you are leaving choicepoints somewhere, allowing the prolog engine to backtrack indefinitely. Looking at your example linked from wikipedia you can see that the first two rules may loop forever... – gusbro Jun 4 '13 at 20:13
Most interesting parsing problems are about deterministic parsing, so there are plenty of points at which backtracking doesn't make sense. Just add some cut clauses to your parser, and it should be fine. – Apalala Jun 5 '13 at 15:46

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