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I wrote this following assertion:

(assert (!
    (forall ((A Set) (B Set))
        (= 
            (= A B) 
            (and (subset A B)(subset B A)))
:no-pattern)))

Why does it give the error "invalid expression, unexpected input"? To check for syntax errors, I copied the example from the guide and replaced the :pattern (…) with :no-pattern. That also yields the error.

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I have deleted a large part of the original question since I don't think I understand patterns just yet. –  Jonny Best Nov 23 '12 at 15:32

1 Answer 1

up vote 2 down vote accepted

The annotation :no-pattern expects an expression as argument. If a universally quantified formula F is not annotated with patterns, then Z3 will heuristically select patterns for F. The annotation :no-pattern instructs Z3 which sub-expressions occurring in F should not be used as patterns. Here is your example (also available at http://rise4fun.com/Z3/KfO5):

(declare-sort Set)
(declare-fun mysubset (Set Set) Bool)

(assert 
    (forall ((A Set) (B Set))
        (! (= 
            (= A B) 
            (and (mysubset A B) (mysubset B A)))
           :no-pattern (mysubset A B))))

(check-sat)

Remark: Equations (e.g., (= A B)) are never selected as patterns by Z3.

Here is a link to the other example http://rise4fun.com/Z3/njVu.

BTW, the annotation :pattern accepts two kinds of arguments: an expression; or a list of expressions. In the Z3 guide, we have the annotation: :pattern ((f (g x)), where ((f (g x)) is a list of length 1 containing the expression (f (g x)). If we replace :pattern with :no-pattern, we get an error because ((f (g x)) is not an expression. On the other hand, :no-pattern (f (g x) is a valid :no-pattern annotation.

Finally, :pattern accepts lists of expressions because Z3 supports multi-patterns (guide).

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