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This is another prolog task that I can't solve at this moment. I have to write a predicat p(X,Y), where X is list of lists of number and Y is a list of numbers. The predicat has to verify:

1) if X can be presented as a concatenation between 2 elements from Y. 2) X has a odd number of elements. 3) Sum of all elements in X is last element in Y.

Maybe as a separate tasks 2, 3 could be written easy. Problem is at 1)

Thank you in advance. I feel sorry for posting such an easy tasks, but prolog really drives me crazy. I have read all my lections over and over again. But the situation is similar to this: school: 3+x=5, x = ? exam: cos(x+y+z) + lim (5x+y)/t = .... If you know what I mean. Thank you once again!

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1 Answer 1

up vote 2 down vote accepted

Checking for concatenations is done with append/3, which is more commonly used to build them but like many Prolog predicates works "in the opposite direction" as well. More specifically, append(A,B,C) checks whether C is the concatenation of A and B. So,

member(A, Y),
member(B, Y),
append(A, B, X)

checks whether there is a element A in Y and a element B in Y such that their concatenation unifies with X.

(Note that this does not check whether A and B are distinct elements of Y.)

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Thank you for your fast response. Could 3) look like this: sumlast(X,Y):- sum(X) = last(Y). Where sum finds sum(X) of all elements in X and last(Y) find last element in Y. and solution for 1) and 3) would be: P(X,Y):- member(A,Y),member(B,Y),append(A,B,X),sumlast(X,Y). – bpavlov Aug 27 '12 at 14:54
@borku: sum(X) = last(X) always fails in Prolog. There are no function calls; think relationally. – larsmans Aug 27 '12 at 15:07
I'm very confused with all the languages around me: prolog, scheme,, c++, php, etc. I realize that I look like a moron. But I have a very big trouble with logic in prolog and thinking that way. – bpavlov Aug 27 '12 at 15:24
@borku: I'm not calling you a moron. Prolog is just quite different from most other languages. Using it correctly takes practice. Maybe studying P-99 might help? – larsmans Aug 27 '12 at 15:41
I have 12 hours, wish me luck. Thank you! – bpavlov Aug 27 '12 at 15:53

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