问题
I have this grammar
S->S+S|SS|(S)|S*|a
I want to know how to eliminate the left recursion from this grammar because the S+S
is really confusing...
回答1:
Let's see if we can simplify the given grammar.
S -> S*|S+S|SS|(S)|a
We can write it as;
S -> S*|SQ|SS|B|a
Q -> +S
B -> (S)
Now, you can eliminate left recursion in familiar territory.
S -> BS'|aS'
S' -> *S'|QS'|SS'|e
Q -> +S
B -> (S)
Note that e is epsilon/lambda.
We have removed the left recursion, so we no longer have need of Q and B.
S -> (S)S'|aS'
S' -> *S'|+SS'|SS'|e
You'll find this useful when dealing with left recursion elimination.
回答2:
My answer using theory from this reference
How to Eliminate Left recursion in Context-Free-Grammar.
S --> S+S | SS | S* | a | (S)
-------------- -------
Sα form β form
Left-Recursive-Rules Non-Left-Recursive-Rules
We can write like
S ---> Sα1 | Sα2 | Sα3 | β1 | β2
Rules to convert in equivalent Non-recursive grammar:
S ---> β1 | β2
Z ---> α1 | α2 | α3
Z ---> α1Z | α2Z | α3Z
S ---> β1Z | β2Z
Where
α1 = +S
α2 = S
α3 = *
And β
-productions not start starts with S
:
β1 = a
β2 = (S)
Grammar without left-recursion:
Non- left recursive Productions S --> βn
S --> a | (S)
Introduce new variable Z
with following productions: Z ---> αn and Z --> αnZ
Z --> +S | S | *
and
Z --> +SZ | SZ | *Z
And new S
productions: S --> βnZ
S --> aZ | (S)Z
Second form (answer)
Productions Z --> +S | S | *
and Z --> +SZ | SZ | *Z
can be combine as Z --> +SZ | SZ | *Z| ^
where ^
is null-symbol.
Z --> ^
use to remove Z
from production rules.
So second answer:
S --> aZ | (S)Z
and Z --> +SZ | SZ | *Z| ^
来源:https://stackoverflow.com/questions/14033250/left-recursion-elimination