Universal generalization

Transformation rules
Propositional calculus
Rules of inference
Modus ponens / Modus tollens Biconditional introduction / elimination Conjunction introduction / elimination Disjunction introduction / elimination Disjunctive / Hypothetical syllogism Constructive / Destructive dilemma Absorption Modus ponendo tollens
Rules of replacement
Associativity Commutativity Distributivity Double negation De Morgan's laws Transposition Material implication Exportation Tautology Negation introduction
Predicate logic
Universal generalization / instantiation Existential generalization / instantiation

In predicate logic, generalization (also universal generalization or universal introduction,^[1]^[2]^[3] GEN) is a valid inference rule. It states that if $\vdash P(x)$ has been derived, then $\vdash \forall x \, P(x)$ can be derived.

Generalization with hypotheses

The full generalization rule allows for hypotheses to the left of the turnstile, but with restrictions. Assume Γ is a set of formulas, $\varphi$ a formula, and $\Gamma \vdash \varphi(y)$ has been derived. The generalization rule states that $\Gamma \vdash \forall x \varphi(x)$ can be derived if y is not mentioned in Γ and x does not occur in $\varphi$ .

These restrictions are necessary for soundness. Without the first restriction, one could conclude $\forall x P(x)$ from the hypothesis $P(y)$ . Without the second restriction, one could make the following deduction:

$\exists z \exists w ( z \not = w)$ (Hypothesis)
$\exists w (y \not = w)$ (Existential instantiation)
$y \not = x$ (Existential instantiation)
$\forall x (x \not = x)$ (Faulty universal generalization)

This purports to show that $\exists z \exists w ( z \not = w) \vdash \forall x (x \not = x),$ which is an unsound deduction.

Example of a proof

Prove: $\forall x \, (P(x) \rightarrow Q(x)) \rightarrow (\forall x \, P(x) \rightarrow \forall x \, Q(x))$ is derivable from $\forall x \, (P(x) \rightarrow Q(x))$ and $\forall x \, P(x)$ .

Proof:

Number	Formula	Justification
1	$\forall x \, (P(x) \rightarrow Q(x))$	Hypothesis
2	$\forall x \, P(x)$	Hypothesis
3	$(\forall x \, (P(x) \rightarrow Q(x))) \rightarrow (P(y) \rightarrow Q(y)))$	Universal instantiation
4	$P(y) \rightarrow Q(y)$	From (1) and (3) by Modus ponens
5	$(\forall x \, P(x)) \rightarrow P(y)$	Universal instantiation
6	$P(y) \$	From (2) and (5) by Modus ponens
7	$Q(y) \$	From (6) and (4) by Modus ponens
8	$\forall x \, Q(x)$	From (7) by Generalization
9	$\forall x \, (P(x) \rightarrow Q(x)), \forall x \, P(x) \vdash \forall x \, Q(x)$	Summary of (1) through (8)
10	$\forall x \, (P(x) \rightarrow Q(x)) \vdash \forall x \, P(x) \rightarrow \forall x \, Q(x)$	From (9) by Deduction theorem
11	$\vdash \forall x \, (P(x) \rightarrow Q(x)) \rightarrow (\forall x \, P(x) \rightarrow \forall x \, Q(x))$	From (10) by Deduction theorem

In this proof, Universal generalization was used in step 8. The Deduction theorem was applicable in steps 10 and 11 because the formulas being moved have no free variables.

References

↑ Copi and Cohen
↑ Hurley
↑ Moore and Parker

This article is issued from Wikipedia - version of the 12/31/2015. The text is available under the Creative Commons Attribution/Share Alike but additional terms may apply for the media files.

Universal generalization

Generalization with hypotheses

Example of a proof

See also

References