Cfg Solved Examples -

: [ S \Rightarrow SS \Rightarrow (S)S \Rightarrow ((S))S \Rightarrow (())S \Rightarrow (())(S) \Rightarrow (())() ] 4. Example 3 – ( a^n b^n ) (equal number of a’s and b’s) Language : ( a^n b^n \mid n \ge 0 )

S ⇒ aSbb (first a) Now replace S with aSbb again? That would add another a. We need total 2 a’s. So second S must be ε: S ⇒ aSbb ⇒ a(aSbb)bb — now we have 2 a’s so S → ε: ⇒ a(aεbb)bb = aa b b b b = 2 a, 4 b (m=4). Not 3. cfg solved examples

Better approach — known correct grammar: [ S \to aSb \mid aSbb \mid \varepsilon ] For m=3, n=2: S → aSbb → a(aSb)bb → aa(ε)bbbb? No — that’s 4 b’s. So maybe n=2, m=3 not possible? Actually it is: ( a^2 b^3 ) = a a b b b. Let’s test: : [ S \Rightarrow SS \Rightarrow (S)S \Rightarrow

: [ S \to aSbS \mid bSaS \mid \varepsilon ] We need total 2 a’s

: [ S \to aSb \mid \varepsilon ]