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Transcript 
CSE 20
Lecture 6: Number Theory (contd...)
CSE 20: Lecture 11
Reminder
Quiz on Friday, April 18th.
Sylabus:
Representation of numbers in different bases
Simple number theory proofs
CSE 20: Lecture 11
Problem of last class
If a and b are two posetive integers then prove that a2 − 4b
cannot be equal to 2.
CSE 20: Lecture 11
Problem of last class
If a and b are two posetive integers then prove that a2 − 4b
cannot be equal to 2.
Thus we have to prove that for any posetive integer a
a2 6≡ 2(mod 4)
CSE 20: Lecture 11
Proof Technique: Case Analysis
If a and b are two posetive integers then prove that a2 − 4b
cannot be equal to 2.
CSE 20: Lecture 11
Proof Technique: Case Analysis
If a and b are two posetive integers then prove that a2 − 4b
cannot be equal to 2.
If a posetive integer a is divided by 4 then the possible
remainders are 0, 1, 2 and 3.
CSE 20: Lecture 11
Proof Technique: Case Analysis
If a and b are two posetive integers then prove that a2 − 4b
cannot be equal to 2.
If a posetive integer a is divided by 4 then the possible
remainders are 0, 1, 2 and 3.
We will solve in in case by case basis.
CSE 20: Lecture 11
Proof Technique: Case Analysis
If a and b are two posetive integers then prove that a2 − 4b
cannot be equal to 2.
If a posetive integer a is divided by 4 then the possible
remainders are 0, 1, 2 and 3.
We will solve in in case by case basis.
We split the problem into 4 case depending on the
remainder when a is divided by 4 and show that for every
case a2 − 4b cannot be equal to 2.
CSE 20: Lecture 11
Prime Numbers
A posetive number p is a prime is for all 1 < x < p, x does
not divide p.
CSE 20: Lecture 11
Prime Numbers
A posetive number p is a prime is for all 1 < x < p, x does
not divide p.
A number that is not a prime is divisible by a prime.
CSE 20: Lecture 11
Prime Numbers
A posetive number p is a prime is for all 1 < x < p, x does
not divide p.
A number that is not a prime is divisible by a prime.
If a, b are two integers such that p divides a but does not
divide b then p does not dive (a + b).
CSE 20: Lecture 11
Problem
Prove that the square of a prime number is always
1(mod 6), when the prime number if ≥ 5.
Or in other words, if p is a prime number, such that p ≥ 5,
then p2 − 1 is divisible by 6.
CSE 20: Lecture 11
Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
CSE 20: Lecture 11
Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
We will prove it case by case.
CSE 20: Lecture 11
Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
We will prove it case by case.
Consider the remainders when divided by 6
CSE 20: Lecture 11
iclicker question
When a number is divided by 6 what are the possible
remainders:
CSE 20: Lecture 11
iclicker question
When a number is divided by 6 what are the possible
remainders:
A
B
C
D
1, 2, 3, 4, 5, 6
0, 1, 2, 3, 4, 5, 6
0, 1, 2, 3, 4, 5
Any possible integer
CSE 20: Lecture 11
Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case
Case
Case
Case
Case
Case
1
2
3
4
5
6
The
The
The
The
The
The
remainder
remainder
remainder
remainder
remainder
remainder
when
when
when
when
when
when
p
p
p
p
p
p
is
is
is
is
is
is
divided
divided
divided
divided
divided
divided
by
by
by
by
by
by
6
6
6
6
6
6
is
is
is
is
is
is
CSE 20: Lecture 11
0
1
2
3
4
5
Proof: Case 1
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 1 The remainder when p is divided by 6 is 0
CSE 20: Lecture 11
Proof: Case 1
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 1 The remainder when p is divided by 6 is 0
Can a PRIME when divided by 6 have remainder 0?
CSE 20: Lecture 11
Proof: Case 1
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 1 The remainder when p is divided by 6 is 0
Can a PRIME when divided by 6 have remainder 0?
That is can a prime p be = 6k for some integer k ≥ 1?
CSE 20: Lecture 11
Proof: Case 1
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 1 The remainder when p is divided by 6 is 0
Can a PRIME when divided by 6 have remainder 0?
That is can a prime p be = 6k for some integer k ≥ 1?
No. because 6k is divisible by 2.
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 3 The remainder when p is divided by 6 is 2
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 3 The remainder when p is divided by 6 is 2
Can a PRIME when divided by 6 have remainder 2?
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 3 The remainder when p is divided by 6 is 2
Can a PRIME when divided by 6 have remainder 2?
That is can a prime p be = 6k + 2 for some integer k ≥ 1?
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 3 The remainder when p is divided by 6 is 2
Can a PRIME when divided by 6 have remainder 2?
That is can a prime p be = 6k + 2 for some integer k ≥ 1?
No. because 6k + 2 = 2(3k + 1) and so is divisible by 2.
CSE 20: Lecture 11
iclicker question
If p (p ≥ 6) is a prime then what are the remainders
possible when divided by 6.
CSE 20: Lecture 11
iclicker question
If p (p ≥ 6) is a prime then what are the remainders
possible when divided by 6.
A
B
C
D
0,
1,
1,
1,
1, 2, 3, 4, 5
3, 4, 5
5
3, 5
CSE 20: Lecture 11
Proof
If p (p ≥ 6) is a prime then only 1 and 5 are the possible
remainders possible when divided by 6.
CSE 20: Lecture 11
Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 2 The remainder when p is divided by 6 is 1
Case 6 The remainder when p is divided by 6 is 5
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 2 The remainder when p is divided by 6 is 1
p = 6k + 1.
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 2 The remainder when p is divided by 6 is 1
p = 6k + 1.
So p2 = (6k + 1)2 = 36k 2 + 12k + 1 = 6(6k 2 + 2k) + 1
CSE 20: Lecture 11
Proof: Case 2
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 2 The remainder when p is divided by 6 is 1
p = 6k + 1.
So p2 = (6k + 1)2 = 36k 2 + 12k + 1 = 6(6k 2 + 2k) + 1
So p2 − 1 is divisible by 6.
CSE 20: Lecture 11
Proof: Case 6
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 6 The remainder when p is divided by 6 is 5
p = 6k + 5.
CSE 20: Lecture 11
Proof: Case 6
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 6 The remainder when p is divided by 6 is 5
p = 6k + 5.
So p2 = (6k + 5)2 = 36k 2 + 60k + 25 = 6(6k 2 + 10k + 4) + 1
CSE 20: Lecture 11
Proof: Case 6
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
Case 6 The remainder when p is divided by 6 is 5
p = 6k + 5.
So p2 = (6k + 5)2 = 36k 2 + 60k + 25 = 6(6k 2 + 10k + 4) + 1
So p2 − 1 is divisible by 6.
CSE 20: Lecture 11
Complete Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
CSE 20: Lecture 11
Complete Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
We did a case by case analysis by considering the different
remainders possible when we divide a number p by 6.
CSE 20: Lecture 11
Complete Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
We did a case by case analysis by considering the different
remainders possible when we divide a number p by 6.
Some of the cases cannot happen because p is a prime.
CSE 20: Lecture 11
Complete Proof
If p is a prime number, such that p ≥ 6, then p2 − 1 is
divisible by 6.
We did a case by case analysis by considering the different
remainders possible when we divide a number p by 6.
Some of the cases cannot happen because p is a prime.
For the other cases we did a case by case analysis.
CSE 20: Lecture 11
Prime Numbers
A posetive number p is a prime is for all 1 < x < p, x does
not divide p.
CSE 20: Lecture 11
Prime Numbers
A posetive number p is a prime is for all 1 < x < p, x does
not divide p.
A number that is not a prime is divisible by a prime.
CSE 20: Lecture 11
Prime Numbers
A posetive number p is a prime is for all 1 < x < p, x does
not divide p.
A number that is not a prime is divisible by a prime.
If a, b are two integers such that p divides a but does not
divide b then p does not dive (a + b).
CSE 20: Lecture 11
Infiniteness of Primes
Prove that primes are infinite.
CSE 20: Lecture 11
Infiniteness of Primes
Prove that primes are infinite.
That is, ∀n ∈ Z+ ∃x > n x is a prime.
CSE 20: Lecture 11
Proof by Contradiction
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
Attempt 1:
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
Attempt 1: If a ship is coming from the horizon we first see
the mast (top) of the ship and slowly the completeship. So
the earth must be round hence not flat.
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
Attempt 1: If a ship is coming from the horizon we first see
the mast (top) of the ship and slowly the completeship. So
the earth must be round hence not flat.
Attempt 2:
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
Attempt 1: If a ship is coming from the horizon we first see
the mast (top) of the ship and slowly the completeship. So
the earth must be round hence not flat.
Attempt 2: Lets assume the earth is flat. Then when a ship
came from the horizon the whole ship would appear at the
same time.
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
Attempt 1: If a ship is coming from the horizon we first see
the mast (top) of the ship and slowly the completeship. So
the earth must be round hence not flat.
Attempt 2: Lets assume the earth is flat. Then when a ship
came from the horizon the whole ship would appear at the
same time.
But that does not happen - first the mast is seen then the
whole ship. So a contradiction.
CSE 20: Lecture 11
Proof by Contradiction
Example: Prove that earth is not flat.
Attempt 1: If a ship is coming from the horizon we first see
the mast (top) of the ship and slowly the completeship. So
the earth must be round hence not flat.
Attempt 2: Lets assume the earth is flat. Then when a ship
came from the horizon the whole ship would appear at the
same time.
But that does not happen - first the mast is seen then the
whole ship. So a contradiction.
Hence initial assumption that earth is flat does not hold.
CSE 20: Lecture 11
Infiniteness of Primes
Let there be finitely many primes : let them be
p1 , p2 , . . . , pt
With pt being the largest prime
CSE 20: Lecture 11
Infiniteness of Primes
Let there be finitely many primes : let them be
p1 , p2 , . . . , pt
With pt being the largest prime
Consider the number (p1 × p2 × · · · × pt ) + 1
CSE 20: Lecture 11
Infiniteness of Primes
Let there be finitely many primes : let them be
p1 , p2 , . . . , pt
With pt being the largest prime
Consider the number (p1 × p2 × · · · × pt ) + 1
If (p1 × p2 × · · · × pt ) + 1 is a prime then we get a
contradiction as
(p1 × p2 × · · · × pt ) + 1 > pt
CSE 20: Lecture 11
Infiniteness of Primes
If (p1 × p2 × · · · × pt ) + 1 is a prime then we get a
contradiction as
(p1 × p2 × · · · × pt ) + 1 > pt
CSE 20: Lecture 11
Infiniteness of Primes
If (p1 × p2 × · · · × pt ) + 1 is a prime then we get a
contradiction as
(p1 × p2 × · · · × pt ) + 1 > pt
If (p1 × p2 × · · · × pt ) + 1 is not a prime then a prime must
divide it.
CSE 20: Lecture 11
Infiniteness of Primes
If (p1 × p2 × · · · × pt ) + 1 is a prime then we get a
contradiction as
(p1 × p2 × · · · × pt ) + 1 > pt
If (p1 × p2 × · · · × pt ) + 1 is not a prime then a prime must
divide it.
But all the primes p1 , p2 , . . . , pt divides (p1 × p2 × · · · × pt ).
So the remainder is 1 when any prime divides
(p1 × p2 × · · · × pt ) + 1
CSE 20: Lecture 11
Infiniteness of Primes
If (p1 × p2 × · · · × pt ) + 1 is a prime then we get a
contradiction as
(p1 × p2 × · · · × pt ) + 1 > pt
If (p1 × p2 × · · · × pt ) + 1 is not a prime then a prime must
divide it.
But all the primes p1 , p2 , . . . , pt divides (p1 × p2 × · · · × pt ).
So the remainder is 1 when any prime divides
(p1 × p2 × · · · × pt ) + 1
So no prime can divide (p1 × p2 × · · · × pt ) + 1
CSE 20: Lecture 11
Infiniteness of Primes
If (p1 × p2 × · · · × pt ) + 1 is a prime then we get a
contradiction as
(p1 × p2 × · · · × pt ) + 1 > pt
If (p1 × p2 × · · · × pt ) + 1 is not a prime then a prime must
divide it.
But all the primes p1 , p2 , . . . , pt divides (p1 × p2 × · · · × pt ).
So the remainder is 1 when any prime divides
(p1 × p2 × · · · × pt ) + 1
So no prime can divide (p1 × p2 × · · · × pt ) + 1
Hence (p1 × p2 × · · · × pt ) + 1 is a prime.
CSE 20: Lecture 11
Proof of Infiniteness of primes
Let there be finitely many primes : let them be
p1 , p2 , . . . , pt
With pt being the largest prime
Then we prove that in that case: (p1 × p2 × · · · × pt ) + 1 is
a prime.
CSE 20: Lecture 11
Proof of Infiniteness of primes
Let there be finitely many primes : let them be
p1 , p2 , . . . , pt
With pt being the largest prime
Then we prove that in that case: (p1 × p2 × · · · × pt ) + 1 is
a prime.
Hence we have an even larger prime and hence that
contradicts that pt was the largest prime. And so by
contradiction we are done.
CSE 20: Lecture 11
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