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'm new to Prolog and I'm stuck on a predicate that I'm trying to do. The aim of it is to recurse through a list of quads [X,Y,S,P] with a given P, when the quad has the same P it stores it in a temporary list. When it comes across a new P, it looks to see if the temporary list is greater than length 2, if it is then stores the temporary list in the output list, if less than 2 deletes the quad, and then starts the recursion again the new P.
Heres my code:

  deleteUP(_,[],[],[]).  
  deleteUP(P,[[X,Y,S,P]|Rest],Temp,Output):-
         !,  
         appends([X,Y,S,P],Temp,Temp),  
         deleteUP(P,[Rest],Temp,Output).  

 deleteUP(NextP,[[X,Y,S,P]|Rest],Temp,Output):-
       NextP =\= P,
       listlen(Temp,Z),
       Z > 1, !,
       appends(Temp,Output,Output),
       deleteUP(NextP,[_|Rest],Temp,Output).

 listlen([], 0).
 listlen([_|T],N) :- 
       listlen(T,N1), 
       N is N1 + 1.

 appends([],L,L).
 appends([H|T],L,[H|Result]):-
       appends(T,L,Result).  

Thanks for any help!

share|improve this question

2 Answers 2

Prolog variables can't be 'modified', as you are attempting calling appends: you need a fresh variables to place results. Note this code is untested...

deleteUP(_,[],[],[]).

deleteUP(P,[[X,Y,S,P]|Rest],Temp,Output):-
         !,  
         appends([X,Y,S,P],Temp,Temp1),  
         deleteUP(P, Rest, Temp1,Output). % was deleteUP(P,[Rest],Temp,Output).  

deleteUP(NextP,[[X,Y,S,P]|Rest],Temp,Output1):-
       % NextP =\= P, should be useless given the test in clause above
       listlen(Temp,Z),
       Z > 1, !,  % else ?
       deleteUP(NextP,[_|Rest],Temp,Output),
       appends(Temp,Output,Output1).
share|improve this answer

Your problem description talks about storing, recursing and starting. That is a very imperative, procedural description. Try to focus first on what the relation should describe. Actually, I still have not understood what minimal length of 2 is about.

Consider to use the predefined append/3 and length/2 in place of your own definitions. But actually, both are not needed in your example.

You might want to use a dedicated structure q(X,Y,S,P) in place of the list [X,Y,S,P].

The goal appends([X,Y,S,P],Temp,Temp) shows that you assume that the logical variable Temp can be used like a variable in an imperative language. But this is not the case. By default SWI creates here a very odd structure called an "infinite tree". Forget this for the moment.

?- append([X,Y,S,P],Temp,Temp).
Temp = [X, Y, S, P|Temp].

There is a safe way in SWI to avoid such cases and to detect (some of) such errors automatically. Switch on the occurs check!

?- set_prolog_flag(occurs_check,error).
true.

?- append([X,Y,S,P],Temp,Temp).
ERROR: lists:append/3: Cannot unify _G392 with [_G395,_G398,_G401,_G404|_G392]: would create an infinite tree

The goal =\=/2 means arithmetical inequality, you might prefer dif/2 instead.

Avoid the ! - it is not needed in this case.

length(L, N), N > 1 is often better expressed as L = [_,_|_].

The major problem, however, is what the third and fourth argument should be. You really need to clarify that first.

share|improve this answer

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.