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So I found a person asking about a context free grammar for non-palindromes here: Context free grammar for non-palindrome

And the given CFGs were:

R -> XRX | S
S -> aTb | bTa
T -> XTX | X | <epsilon>
X -> a | b

and

R -> aRa | bRb | S
S -> aTb | bTa
T -> aTa | bTb | a | b | <epsilon>

My question: wouldn't 'aaabba' not be accepted by this CFG despite it not being a palindrome? Would this CFG be more correct if it had a rule more like:

T -> aTa | bTb | aTb | bTa | a | b | <epsilon>

instead of the last line given above? Or am I misunderstanding something? :<

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closed as off topic by Oli Charlesworth, Lipis, Charan, RoadWarrior, kapa Mar 12 '13 at 0:04

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Probably better-suited for cs.stackexchange.com. –  Oli Charlesworth Mar 11 '13 at 1:26
    
which one's the start state? S or R? –  nneonneo Mar 11 '13 at 1:27
    
I was guessing R since its on the top? –  Joy Choi Mar 11 '13 at 1:29
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1 Answer 1

up vote 0 down vote accepted

The first one's fine, but the second isn't.

For the first one, the sequence is

R -> XRX -> aRa -> aSa -> aaTba -> aaXTXba -> aaaTbba -> aaabba.

I believe you are right in saying the second one is incapable of generating all non-palindromes.

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Ohh, so the X's in XTX can be different? >_< –  Joy Choi Mar 11 '13 at 1:41
    
X -> a | b means X can be either, and the choice is independent for each X encountered. Same way you can use R -> XRX one time and R -> S the next. –  nneonneo Mar 11 '13 at 1:42
    
Thank you thank you! <3 –  Joy Choi Mar 11 '13 at 1:44
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