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In this old exam-question I need to convert a grammar to CNF, but I suspect the provided solution is wrong.


S -> aAB|a|aA|aB|AbB|b|Ab|bB
A -> aA|a|cC|c
B -> bB|b|dD|d
C -> cC|c
D -> dD|d

In the first step I set variables for the four terminals:

V -> a
X -> b
Y -> c
Z -> d

In the second step I replace the terminals with the variables(only the productions in S for now):


In the third step I replace AB in VAB with U -> AB so I get:


In the solution, I don't understand what's happening with the S-productions AbB and bB(which I have set to AXB and XB). This is the provided answer for the S-productions:


How come AbB is set to UX and bB to BX? Should not bB be set to XB at least?

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As you say, AbB does not transform into UX since Ab does not transform into U. And likewise, bB does not transform into BX, but rather XB as you also say. – Simon Shine Jun 27 '14 at 13:43
Why is the lone a not mapped to V in the second step? – Jonathan Leffler Jun 27 '14 at 14:18
"Why is the lone a not mapped to V in the second step?" Not sure. Because that would be a unit-production? – TheEagle Jun 27 '14 at 14:26
@JonathanLeffler: In CNF, all productions are either T→UV or T→a (TUV non-terminals, a terminal). T→U is not allowed. So pre-existing unit productions are not modified. T→aU isn't allowed, so it's necessary to introduce a unit production for a. – rici Jun 27 '14 at 15:12
@rici: OK — thanks. You can tell that CNF was not part of my training. – Jonathan Leffler Jun 27 '14 at 15:13

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