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In the query below, firstly I'm getting X = H128, where does that come from? Also why is it returning yes? Is it because the variable X is actually not defined and we are testing for that condition?

?- not(X==3).
X = H128 
yes
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3 Answers 3

up vote 4 down vote accepted

Your query is using an uninstantiated variable (X). When checking whether X is instantiated with the term 3 it (X==3) it fails because X is uninstantiated.

Therefore, not(X==3) will succeed as the prolog engine cannot prove X==3. Your prolog interpreter is thus returning 'yes' (due to the negation as failure approach of the interpreter), and X remains uninstantiated.

That is why the interpreter shows X = H128, where H128 is a dummy uninstantiated variable.

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Yes, it is because the variable X is not bound by the first goal, not(X==3). Actually the not/1 metapredicate can never produce a binding, even if it succeeds. That's because success of not means the inner goal fails. Note that not(X=3) would fail because X=3 can succeed when X is free (and can be bound to value 3).

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What was your original intention? It could be that you wanted to state that X is not equal to 3. For inequality many Prolog systems offer dif/2:

?- dif(X,3).
dif(X,3).

In this query we ask for values for X that are not equal to 3. So which values are not equal? Actually, quite a lot: Think of 1, 2, the term 3+3, c, the list [2,3,4] and many more. So giving a concrete answer like X = 4 would exclude many other valid answers. The answer here is however: The query holds for all X that are not equal to 3. The actual evaluation is therefore delayed to a later moment.

?- dif(X,3), X = 3.
false.

Here we got in a situation where X got the value 3 - which does not hold.

?- dif(X,3), X = 4.
X = 4.

And here a concrete valid value is accepted, and the restriciton dif(4,3) is removed.

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