Some googling brings up this example for a non-LALR(1) grammar, which is LL(1):
S ::= '(' X
| E ']'
| F ')'
X ::= E ')'
| F ']'
E ::= A
F ::= A
A ::= ε
The LALR(1) construction fails, because there is a reduce-reduce conflict between E and F. In the set of LR(0) states, there is a state made up of
E ::= A . ;
F ::= A . ;
which is needed for both S and X contexts. The LALR(1) lookahead sets for these items thus mix up tokens originating from the S and X productions. This is different for LR(1), where there are different states for these cases.
With LL(1), decisions are made by looking at FIRST sets of the alternatives, where ')' and ']' always occur in different alternatives.
与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…