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From the last time: gcd( a , b ) can be characterized in two different ways: It is the least positive value of ax

From the last time: gcd( a , b ) can be characterized in two different ways: It is the least positive value of ax + by where x and y range over integers. It is the positive common divisor of a and b which is divisible by every common divisor. .

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From the last time: gcd( a , b ) can be characterized in two different ways: It is the least positive value of ax

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  1. From the last time: • gcd(a, b) can be characterized in two different ways: • It is the least positive value of ax + by where x and y range over • integers. • It is the positive common divisor of a and b which is divisible by • every common divisor.

  2. Consider now positive integers Z+ = {1, 2, 3, …}. • Any positive integer n >1 has at least two dividers, 1 and n . • An integer p >1, that does not have any other dividers except • 1 and itself, is called a prime. • An integer n >1, that is not a prime, is composite. • Theorem. Any composite integer n Z+ has a prime factor. Proof by contradiction. Assume there exists some positive integer, that has no prime factors. Then the set of such integers S  and we can find the smallest element n S  Z+. Since n is composite, n = k m, with 1< k, m < n, so k, m S , so they are eitherprimes or have prime factors. In either case n has a prime factor.

  3. The first primes: 2, 3, 5, 7, 11, 13, 17, 19, 23, 29, … • Does this sequence has an end? This question is not as trivial as it seems! • Theorem (Euclid) There are infinitely many primes. Proof. Suppose there were only a finite number of primes p1, p2, …pk. Then form a number n = p1p2  … pk +1=2357…  pk +1. n is not divisible by 2, for then both n and 2357…  pk would be divisible by 2, and therefore their difference would be divisible by 2. This difference is 1, and is not divisible by 2. In the same way, n is not divisible by 3 or by 5 or … or pk. But n is either a prime or has a prime factor. In any case it is divisible by some prime p that is not among the list 2, 3, 5,…pk. It implies that there is a prime distinct from 2, 3, 5…pk, and so greater then pk. Consequently, the list of primes can never end.

  4. Fundamental Theorem of Arithmetic. Any integer n > 1 can be written as a product of prime numbers. Further, this product is unique except for rearrangement of factors. For example, take number 666. It is not a prime, because it has a factor 2, so we get 666=2333. Now 333 has an obvious factor 3, so 333=2111. Again 111 has a factor 3, and 111=337, hence: 666=23337 is a representation of the composite number 666 as a product of primes. Other examples: 12=223=223; 120 = 22235=23 3 5; But is there any another representation of 666 as a product of primes (we don’t distinguish different orders of factors)?

  5. Proof that a prime factorization exists for any integer n >1. Prove by strong induction on n >1. Basis.n =2 is prime itself, so the proposition is true. Inductive Hypothesis. Assume that for some k >1 there exists prime factorization for all integers 1<nk. Inductive Step Consider n=k+1. We can have two cases: either n is a prime, or n is composite. In the first case we have nothing to prove. In the second case n = m1 m2 and 1< m1, m2 <n. By IH both m1, m2 have prime factorization, so n has a prime factorization as well.

  6. If p | a we are done, so consider the case p | a Lemma 1. If a prime p divides the product of two numbers, p | ab, it must divide at least one of them. Proof. Assume p | ab to prove that p | a or p | b. gcd(p, a)=1 What can be implied about gcd(p, a)? Then the only common factor of p and a is 1. It implies that there exist integers x0and y0 such that p x0+ay0=1 Then b =b(px0+ay0) = p (b x0)+(ba) y0 is divisible by p because bothp(b x0) and (ba) y0 are divisible by p. Suppose now that some number c divides the product ab, c | ab. Can we imply that c divides either a or b ?

  7. Proof of the uniqueness of the prime factorization Prove it by contradiction. For this assume that there exists some integer that has non-unique prime factorization. By Well-Ordering Principle we can find the smallest such integer, let it be n. So we have n =p1 p2…pk = q1 q2… qs , where all pi, qj are primes.

  8. Note that p1 divides q1(q2… qs), so it either divides q1 or (q2… qs). If p1| q1 then p1= q1 , both are primes. If p1| (q2… qs), we repeat the argument, and ultimately reach the conclusion, that p1 equals one of the primes q1,q2,… qs . Then we can cancel the common prime from the two representations and find another integer n/p1 <n that has non-unique prime factorization in contradiction with assumption, that n is the smallest one.

  9. Suppose that the prime factorizations of the integers a and b are: (ai, bi 0 ) where all primes occurring in either factorization are included in both factorizations with zero exponent if necessary. Then The least common multiple of two integers: Now we can find another form for gcd(a, b). • This integer does divide both a and b. • No larger integer can divide both a and b.

  10. Lemma. For any two integers x and y we have: x + y = max(x, y)+min(x, y) Theorem. For any two integers a and b ab= gcd (a, b) lcm(a, b)

  11. The same value can be found from Euclid Algorithm as follows: 500 = 1204 + 20 120 =206 So, the last nonzero remainder is 20. Example. Find gcd(120, 500) using prime factorization. We have 120=23 3 5 and 500=22 53 , then gcd(120, 500)= 2min(3, 2) 3min(1, 0) 5min(1, 3) =22 30 51=20. What is the lcm(120, 500)? 120500 = 60,000 = gcd(120, 500) lcm(120, 500) =20 lcm(120, 500) lcm(120,500)= 3000

  12. Theorem. If n is a composite integer, it has a prime factor less than or equal to Proof.If n is composite, it has a factor a with 0<a<n. Hence, n = ab, where both a and b are positive integers greater then 1. So, either a or b , since otherwise ab > Hence, n has a divisor less or equal . It may be either prime or composite, but in any case n has a prime factor less or equal . The contrapositive of this theorem: If an integer n does not have a prime factor less or equal to , then n is prime. Given an integer n how can we decide is it a prime or not? How many factors we need to check? Obviously we don’t need to check factors above n. But there exists better restriction.

  13. Sieve of Eratosthenes 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 We need to consider only primes less or equal 10: 2, 3, 5, 7

  14. The only primes not exceeding are : 2, 3, 5, 7. So we check that 101 is not divisible by 2, not divisible by 3, by 5 and by 7. So, 101 is prime. Example. Show that 101 is a prime.

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