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S -> aB | lamda
B -> bB

B is a useless production. Now after its removal

S -> a | lamda

Is this correct ?

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2 Answers 2

up vote 2 down vote accepted

production S -> aB does not terminate. Because B -> bB does not terminate. So the production S -> aB is useless.

the answer should be

S -> lambda
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Boy it's been a long time since I've looked at CFG's. B produces an infinite series of b's, does it not (b*?)

Assuming b* means an infinite series of B's I think I would reduce to:

S -> ab* | λ

EDIT:

Yes, my answer above is wrong. The definition of a "useless production" is a production that is never used in the derivation of a terminal string. Since B is non-terminal it can be removed thus S -> λ.

+1 to the answer by user574183.

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