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I'm trying to find the ambiguity in this grammar so I can remove it and convert it to LL(1), however for the life of me I can't find the ambiguity. Any help will be much appreciated.

D -> if (C) {S} | if (C) {S} else {S}
S -> D | SA | A
A -> V = T;
V -> x | y
T -> 1 | 2
C -> true | false
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1 Answer 1

up vote 1 down vote accepted

The grammar is not ambiguous. Nonetheless, it is not LL(1) because when the lookahead token is if, it is not possible to know which of the two productions for D will be used.

To make it LL(1), you will need to left-factor D.

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Additionally, the production for S is left-recursive, so the grammar isn't LL(anything). –  ebohlman May 13 '13 at 0:07
    
Thank you both, it is correct I had to left factor D and remove the left recursion from S –  Ralph John May 21 '13 at 9:16

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