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I understand what they are and I have seen examples regarding these. One such example is

{t.Fname,t.Lname|Employee(t) AND (∃d)(Department(d) AND d.Dname='Research' AND d.Dnumber=t.Dno)}

Now what is the difference between above and this

{t.Fname,t.Lname|Employee(t) AND Department(d) AND d.Dname='Research' AND d.Dnumber=t.Dno}

And how is

(∀x) (P(x)) ≡ NOT (∃x) (NOT (P(x)))

Can someone please explain ?

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1 Answer 1

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For every x P(x) means that all x satisfy P, which means that there doesn't exist an x which doesn't satisfy P, hence

(∀x) (P(x)) ≡ NOT (∃x) (NOT (P(x)))

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I understand the principle but did not understand the formula. The LHS says for all x, P(x) returns true. And the RHS is what I am not understanding. NOT (P(x)) actually means tuples (rows) from table other than P. –  Prabhat Mar 13 '11 at 15:01
    
@Prabhat: the RHS. without the first NOT means: There exists a row that doesn't saisfy P. With the first NOT it means: There DOESN"T exist a row that doesn't satisfy P, which is the same as to say that all rows satisfy P –  Armen Tsirunyan Mar 13 '11 at 15:03
    
@Armen - Thanks. Then what about the reverse case ? (∃x) (P(x)) ≡ NOT (∀x) (NOT (P(x))) –  Prabhat Mar 13 '11 at 15:07
    
@Prabhat: LHS means: there exists a row for which P(x). The RHS without the first NOT means: for all rows P is NOT satisfied. With the first NOT it means: not for all rows P isn't satisfied, which means there exists at least one row for which it is. –  Armen Tsirunyan Mar 13 '11 at 15:11
    
@ Armen - Thanks. Rep++ Can you say something about the example in the post. –  Prabhat Mar 13 '11 at 15:17
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