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?- assert(p(a)),assert(p(b)),setof(X,p(X),R).
X = H142
R = [a, b] 
yes

Whats the effect of this query and why does it return this particular result?

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1 Answer 1

up vote 2 down vote accepted

The reason for the yes result is that R, i.e. the set made of just a and b is effectively the set of all Xs that satisfy p(x) predicate.

If you were to add elements to R or to remove a or b from it, the result would be no.

p(a) and p(b) are true because the assert predicates added these clauses to the database.

Similarly, keeping R = [a, b] if you were to add another clause, with say assert(p(c)), the result would be no   (because R would be missing c to have all X which satisfy p(X)).

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Note that X remains unbound after the call to setof/3 because X is a "dummy variable" used to tell Prolog what solutions of the goal p(X) are to be collected in list R. setof/3 also allows a more complicated syntax when more than just one variable appears in the goal, so some variables' values can be combined in the list as compound terms and others can be bound or revised in backtracking. –  hardmath Jul 14 '11 at 12:38

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