Finite Automata
Basic idea: a FA is a “machine” that changes states
while processing symbols, one at a time.
• Finite set of states: Q = {q0, q1, q3, ..., qk}
• Transition function: d: QS Q
• Initial state: q0 Q
• Final states: F Q
• Finite automaton is M=(Q, S, d, q0, F)
Ex: an FA that accepts all odd-length strings of zeros:
q0 q1
0
0
M=({q0,q1}, {0}, {((q0,0),q1), ((q1,0),q0)}, q0, {q1})
q0
qi qj
q1
qk
Finite AutomataFA operation: consume a string wS* one symbol at a time
while changing states
Acceptance: end up in a final state
Rejection: anything else (including hang-up / crash)
Ex: FA that accepts all strings of form abababab…= (ab)*
q1
a
b
M=({q0,q1}, {a,b}, {((q0,a),q1), ((q1,b),q0)}, q0, {q0})
But M “crashes” on input string “abba”!Solution: add dead-end state to fully specify M
M’=({q0,q1,q2}, {a,b}, {((q0,a),q1), ((q1,b),q0), ((q0,b),q2), ((q1,b),q2). ((q2,a),q2), ((q2,b),q2) }, q0, {q0})
q0
q2
b a
a,b
M
M’
Finite AutomataTransition function d extends from symbols to strings:
d:QS*Q d(q0,wx) = d(d(q0,w),x)
where d(qi,e) = qi
Language of M is L(M)={wS*| d(q0,w) F}
Definition: A language is regular iff it is accepted by some FA.
L is regular iff there is a FA M where L(M)=L
Equivalently: A language is regular iff it can be described by a regular expression (proof next time)
Give a Regular Expression for the following languages over Σ={a,b}
1. L={w| w does not contain the letter ‘a’}
• 𝑏∗
2. L={w| |w| is odd}
• 𝑎 + 𝑏 𝑎 + 𝑏 𝑎 + 𝑏∗
3. L={w| w has an odd number of a’s followed by an even number of b’s}
• 𝑎 𝑎𝑎 ∗ 𝑏𝑏 ∗
Give a FA for the following languages over Σ={a,b}
1. L={w| w does not contain the letter ‘a’}
2. L={w| |w| is odd}
3. L={w| w has an odd number of a’s then an even number of b’s}
E a’s
a
a
fail
b
O a’s
a,b
O b’sb
E b’sb
a
b
a
even odda,b
a,b
( even, odd , Σ, { even, a , odd , even, b , odd ,
( odd, a , even), ( odd, b , even)}, even, {odd})
b‘s
b
a‘sa
a,b( b′s, a′s , Σ, { b′s, a , a′s , b′s, b , b′s ,
( a′s, a , a′s), ( a′s, b , a′s)}, b′s, {b′s})
Closure properties of Regular Languages
• An operation “preserves regularity” if:
• Given all input languages are regular
• The output language must be regular
• The regular languages are closed under:
• Union:L1 + 𝐿2 or L1 ∪ 𝐿2• Concatenation: 𝐿1 ⋅ 𝐿2 or 𝐿1𝐿2• Kleene closure: 𝐿 ∗
• Reversal:
• 𝐿𝑅 = 𝑤 𝑤𝑅 ∈ 𝐿}
• Complement: 𝐿 or 𝐿𝑐
• Intersection: 𝐿1 ∩ 𝐿2• Subtraction: 𝐿1 − 𝐿2• Among many other things (see problem sets)
Problem: design a DFA that accepts all strings over {a,b} where any a’s precede any b’s.
Idea: skip over any contiguous a’s, then skip over any b’s, and then accept iff the end is reached.
q0
a
q1b
b
q2a
a,b
L = a*b*
Q: What is the complement of L?
Problem: what is the complement of L = a*b* ?
Idea: write a regular expression and then simplify.
L’= (a+b)*b+(a+b)*a+(a+b)*= (a+b)*b(a+b)*a(a+b)*= (a+b)*b+a(a+b)*= (a+b)*ba(a+b)*= a*b+a(a+b)*
q0
a
q1b
b
q2a
a,b
Theorem: Complement Preservers Regularity.
Proof:
Given a FSA for a language 𝐿 (call it 𝑀), construct
a FSA for the language 𝐿 (call it 𝑀′).
From the machine 𝑀 to build 𝑀′ convert every final state to a non-final state, every non-final state to a final state.
L={w| |w| is odd}→ L ={w| |w| is even}
even odda,b
a,b
𝑀 = ( even, odd , Σ, { even, a , odd , even, b , odd ,
( odd, a , even), ( odd, b , even)}, even, {odd})
even odda,b
a,b
𝑀′ = ( even, odd , Σ, { even, a , odd , even, b , odd ,
( odd, a , even), ( odd, b , even)}, even, {even})
𝑀 = 𝑄, Σ, 𝛿, 𝑞0, 𝐹 → 𝑀′ = (𝑄, Σ, 𝛿, 𝑞0, 𝐹)
Theorem: Union Preservers Regularity.
Proof: “Cross Product Construction”
Simulate both machines “in parallel”
Let each state in the new machine be a pair of states. Transitions occur as if each machine ran individually. Accept if ended in a final state for either machine.
To union regular languages 𝐿1 and 𝐿2:
(FSA 𝑀1 = 𝑄1, Σ, 𝛿1, 𝑞1, 𝐹1 , 𝑀2 = 𝑄2, Σ, 𝛿2, 𝑞2, 𝐹2 respectively) 𝑀1∪2 = 𝑄1 × 𝑄2, Σ, 𝛿1∪2, 𝑞1, 𝑞2 , 𝐹1∪2
Where:
𝛿1∪2 𝑞𝑖 , 𝑞𝑗 , 𝜎 = 𝛿1 𝑞𝑖 , 𝜎 , 𝛿2 𝑞𝑗 , 𝜎 ,
𝐹1∪2 = {(𝑞𝑖 , 𝑞𝑗)|𝑞𝑖 ∈ 𝐹1 ∨ 𝑞𝑗 ∈ 𝐹2}
even odda,b
a,bb‘s
b
a‘sa
a,b
∪
E b
b
E a
a
a,b
O aa
b a,b
O b
{w| w does not contain the letter ‘a’} {w| |w| is odd}{w| |w| is odd or contains no ‘a’s}
Theorem: Intersection Preservers Regularity.
Proof:
𝐿1 ∩ 𝐿2 = 𝐿1 ∪ 𝐿2
To intersect regular languages 𝐿1 and 𝐿2:
(FSA 𝑀1 = 𝑄1, Σ, 𝛿1, 𝑞1, 𝐹1 , 𝑀2 = 𝑄2, Σ, 𝛿2, 𝑞2, 𝐹2 respectively) 𝑀1∪2 = 𝑄1 × 𝑄2, Σ, 𝛿1∪2, 𝑞1, 𝑞2 , 𝐹1∪2
Where:
𝛿1∪2 𝑞𝑖 , 𝑞𝑗 , 𝜎 = 𝛿1 𝑞𝑖 , 𝜎 , 𝛿2 𝑞𝑗 , 𝜎 ,
𝐹1∪2 = {(𝑞𝑖 , 𝑞𝑗)|𝑞𝑖 ∈ 𝐹1 ∧ 𝑞𝑗 ∈ 𝐹2}
Cross Product Construction!
Theorem: Subtraction Preservers Regularity.
Proof:𝐿1 − 𝐿2 = 𝐿1 ∩ 𝐿2
To subtract regular language 𝐿2 from 𝐿1:
(FSA 𝑀1 = 𝑄1, Σ, 𝛿1, 𝑞1, 𝐹1 , 𝑀2 = 𝑄2, Σ, 𝛿2, 𝑞2, 𝐹2 respectively) 𝑀1∪2 = 𝑄1 × 𝑄2, Σ, 𝛿1∪2, 𝑞1, 𝑞2 , 𝐹1∪2
Where:
𝛿1∪2 𝑞𝑖 , 𝑞𝑗 , 𝜎 = 𝛿1 𝑞𝑖 , 𝜎 , 𝛿2 𝑞𝑗 , 𝜎 ,
𝐹1∪2 = {(𝑞𝑖 , 𝑞𝑗)|𝑞𝑖 ∈ 𝐹1 ∧ 𝑞𝑗 ∉ 𝐹2}
Cross Product Construction!
Problem:
?
Finite AutomataNon-determinism: generalizes determinism, where
many “next moves” are allowed at each step:
Old d:QS Q
New d:2QS 2Q
Computation becomes a “tree”.
Acceptance: $ a path from root (start state) to some leaf (a final state)
Ex: non-deterministically accept all strings where the 7th symbol before the end is a “b”:
a,b Input: a b a b b a a a
b a,b a,b a,ba,ba,ba,b
Accept!
q2q0 q7q3 q4 q5 q6q1
Finite AutomataTheorem: Non-determinism in FAs doesn’t increase power.Proof: by simulation:
• Construct all super-states,one per each state subset.
• New super-transition functionjumps among super-states,simulating old transition function
• Initial super state are those containing old initial state.
• Final super states are those containing old final states.
• Resulting DFA accepts the samelanguage as original NFA, but can have exponentially more states.
Finite AutomataNote: Powerset construction generalizes the cross-product construction. More general constructions are possible.
EC: Let HALF(L)={v | $v,w S* ' |v|=|w| and vw eL}Show that HALF preserves regularity.
A two way FA can move its head backwards
on the input: d:QS Q{left,right}
EC: Show that two-way FA are not more powerful than ordinary one-way FA.
e-transitions:
Theorem: e-transitions don’t increase FA recognition power.Proof: Simulate e-transitions FA without using e-transitions.i.e., consider e-transitions to be a form of non-determinism.
qi qje qi qj
eOne super-state!
The movie “Next” (2007)Based on the science fictionstory “The Golden Man” by Philip Dick
Premise: a man with the super power of non-determinism!
At any given moment his reality branches into multiple directions, and he can choose the branch that he prefers!
Transition function!
Top-10 Reasons to Study Non-determinism
1. Helps us understand the ubiquitousconcept of parallelism / concurrency;
2. Illuminates the structure of problems;
3. Can help save time & effort by solving
intractable problems more efficiently;
4. Enables vast, deep, and general studies of
“completeness” theories;
5. Helps explain why verifying proofs & solutions
seems to be easier than constructing them;
Why Study Non-determinism?
6. Gave rise to new and novel mathematical
approaches, proofs, and analyses;
7. Robustly decouples / abstracts complexity from
underlying computational models;
8. Gives disciplined techniques for identifying
“hardest” problems / languages;
9. Forged new unifications between
computer science, math & logic;
10. Non-determinism is interesting
fun, and cool!
Regular ExpressionsRegular expressions are defined recursively as follows:
{e}trivial language
{x} " xSsingleton language
Øempty set
q0
Inductively, if R and S are regular expressions, then so are:
q0 q0 q1x
(R+S)union
RSconcatenation
R*
Kleene closure
Examples: aa(a+b)*bb (a+b)*b(a+b)*a(a+b)*
Theorem: Any regular expression is accepted by some FA.
M2
M1
e
e M2e
M1 M
Compositions!
e
e
e
Regular ExpressionsA FA for a regular expressions can be built by composition:
Ex: all strings over S={a,b} where $ a “b” preceding an “a”(a+b)*b(a+b)*a(a+b)*
= (a+b)*ba(a+b)*
b a
b
a
e
ee
e
e
b
a
e
ee
Why?
e
e
e
e
e
ee b a
b
a
e
ee
e
e
b
a
e
eee
e
e
e
e
ee
b a
b
a
e
ee
e
e
b
a
e
eee
e
e
e
e
ee b a
b
a
e
ee
e
e
b
a
e
eee
e
e
e
e
ee
Remove previous start/final states
FA MinimizationIdea: “Equivalent” states can be merged:
b aa,b a,b
b a
b
a
e
ee
e
e
b
a
e
eee
e
e
e
e
ee
b a
b
a
e
ee
e b
a
e
ee
e
e
e
e
ee
e
b aa,be e a,beee
e
b aa,b
ea,b
ee
FA MinimizationTheorem [Hopcroft 1971]: the number N of states in a FA
can be minimized within time O(N log N).
Based on earlier work [Huffman 1954] & [Moore 1956].
Conjecture: Minimizing the number of states in a nondeterministic FA can not be done in polynomial time.
Theorem: Minimizing the number of states in a pushdown automaton (or TM) is undecidable.
Project idea: implement a finite automaton minimization tool.
Try to design it to run reasonably efficiently.
Consider also including:
• A regular-expression-to-FA transformer,
• A non-deterministic-to-deterministic FA converter.
M
FAs and Regular ExpressionsTheorem: Any FA accepts a language denoted by some RE.
Proof: Use “generalized finite automata” where a transition can be a regular expression (not just a symbol), and:
Only 1 super start state and 1 (separate) super final state.
Each state has transitions to all other states (including itself),except the super start state, with no incoming transitions, and the super final state, which has no outgoing transitions.
Original FA M
M
e
e
ee
e e
e
e
ØØ
ØØ
Ø
Ø
Ø
ØØ e
Generalized FA (GFA) M’
M’
FAs and Regular ExpressionsNow reduce the size of the GFA by one state at each step.A transformation step is as follows:
qi qj
q’R
S
T
P qi qjP
RS*T
qi qjP + RS*T
Such a transformation step is always possible, until the GFAhas only two states, the super-start and super-final states:
Label of last remaining transition isthe regular expression corresponding to the language of the original FA!
M’P
Corollary: FAs and REs denote the same class of languages.
Regular Expressions Identities• R+S = S+R
• R(ST) = (RS)T
• R(S+T) = RS+RT
• (R+S)T = RT+ST
• Ø* = e* = e
• R+Ø = Ø+R = R
• Re= eR = R
• (R*)* = R*
• (e + R)* = R*
• (R*S*)* = (R+S)*
R+e ≠ RRØ ≠ R
Decidable Finite Automata ProblemsDef: A problem is decidable if $an algorithm which can determine (in finite time) the correct answer for any instance.
Given a finite automata M1 and M2:
Q1: Is L(M1) = Ø ?Hint: graph reachability
Q2: Is L(M2) infinite ?Hint: cycle detection
Q3: Is L(M1) = L(M2) ?Hint: consider L1-L2 and L2-L1
M’
$?
M’
$?S*-{e}
Ø Ø
Give a FA and a regular expression for the following language over the Sesame Street Alphabet:
L = {w | w satisfies “i before e except after c”}
This means we want any string where an i does not immediately succeed an e, unless we see a c, in which case an e may not succeed an i.
Accepted words: believe, fierce, receipt
Rejected words: seize, their, science
L = {w | w satisfies “i before e except after c”}
Σ − {𝑐, 𝑒}
safe
fail
i
e
e
c
Σ
cci
c
c c
ei
e
( Σ − 𝑐, 𝑒 ∗ ⋅ 𝑒+ Σ − 𝑐, 𝑖, 𝑒 + 𝑐+ Σ − 𝑐, 𝑖 + 𝑐+𝑖 Σ − 𝑒, 𝑐 + 휀 )∗ ⋅ 𝑒+ + 𝑐+ + 𝑐+𝑖 + 휀