가우스와 정17각형의 작도

개요

• 가우스는 정17각형이 자와 컴파스로 작도가능함을 증명함
• 대수적으로, \(z^{16}+z^{15}+\cdots+z+1=0\)의 풀이를 반복적인 2차방정식의 풀이로 환원할 수 있는가의 문제
• 16차 방정식을 2차방정식 네번 푸는 문제로 바꾸는 것
  • 이 아이디어를 좀더 간단한 예를 통해 이해하기 위해서는 정오각형 항목 중 꼭지점의 평면좌표를 참조

증명

• \(\zeta=e^{2\pi i \over 17}\) 로 두자. 이 값을 대수적으로 구하는 것이 목표.
• \((3^1, 3^2,3^3, 3^4, 3^5, 3^7, 3^8, 3^9, 3^{10}, 3^{11}, 3^{12}, 3^{13}, 3^{14}, 3^{15}, 3^{16}) \equiv (3, 9, 10, 13, 5, 15, 11, 16, 14, 8, 7, 4,12, 2, 6, 1) \pmod {17}\)
• 이 순서대로 2로 나눈 나머지에 따라서 분류
  • \(A_0 = \zeta^{9} + \zeta^{13} + \zeta^{15} + \zeta^{16}+\zeta^{8} + \zeta^{4} + \zeta^{2} +\zeta^{1}\)
  • \(A_1 = \zeta^3 + \zeta^{10} + \zeta^{5} + \zeta^{11}+\zeta^{14} + \zeta^{7} + \zeta^{12} +\zeta^{6}\)
  • \(A_0+A_1= -1\), \(A_{0}A_{1} = -4\), \(A_0>A_1\)
  • \(A_0 = \frac{-1 + \sqrt{17}}{2}\) , \(A_1= \frac{-1 - \sqrt{17}}{2}\)
• 이번에는 4로 나눈 나머지에 따라서 분류
  • \(B_0 = \zeta^{13}+ \zeta^{16}+ \zeta^4 + \zeta^1 \)
  • \(B_1= \zeta^3 + \zeta^5 + \zeta^{14} + \zeta^{12}\)
  • \(B_2= \zeta^9 + \zeta^{15} + \zeta^8 +\zeta^2\)
  • \(B_3 =\zeta^{10} + \zeta^{11} + \zeta^{7} +\zeta^{6}\)
  • \(B_0+B_2=A_0\), \(B_0B_2= -1\), \(B_0>0\)
  • \(B_0 = \frac{-1 + \sqrt{17} + \sqrt{34 - 2\sqrt{17}}}{4}\), \(B_2 = \frac{-1 + \sqrt{17} - \sqrt{34 - 2\sqrt{17}}}{4}\)
  • \(B_1+B_3=A_1\), \(B_1B_3= -1\), \(B_{1}> 0\)
  • \(B_1 = \frac{-1 - \sqrt{17} + \sqrt{34 + 2\sqrt{17}}}{4}\), \(B_3 = \frac{-1 - \sqrt{17} - \sqrt{34 + 2\sqrt{17}}}{4}\)
• 이번에는 8로 나눈 나머지에 따라서 분류
  • \(C_0= \zeta^{16}+ \zeta^1\), \(C_4= \zeta^{13} +\zeta^4\), \(C_0 > C_1\)
  • \(C_0+C_4=B_0\), \(C_0C_4=B_1\)
  • \(C_0= \frac{B_0+\sqrt{B_0^2-4B_1}}{2}= \frac{-1+\sqrt{17}+\sqrt{34-2\sqrt{17}}+ \sqrt{68+12\sqrt{17}-4{\sqrt{170+38\sqrt{17}}}} }{8}\)
  • \(C_4= \frac{B_0 - \sqrt{B_0^2-4B_1}}{2}\)
• 이제 마무리
  • \(\zeta =\frac{{C_0} + \sqrt{{C_0}^2 - 4}}{2}\)
  • \(\cos \frac{2\pi}{17}= \frac{-1+\sqrt{17}+\sqrt{34-2\sqrt{17}}+ \sqrt{68+12\sqrt{17}-4{\sqrt{170+38\sqrt{17}}}} }{16}\)

가우스합과의 관계

• 참고로 위에서 \(A_0-A_1\) 은 가우스합 임을 알 수 있음.
  • \(\{3, 10, 5, 11, 14, 7, 12, 6\}\) 는 \(\pmod {17}\) 에 대하여 이차비잉여
  • \(\{9, 13, 15, 16, 8, 4, 2, 1\}\)는 \(\pmod {17}\) 에 대하여 이차잉여
  • 따라서 \(A_{0}A_{1}\)를 계산하는 대신에 \(A_0-A_1=\sqrt{17}\) 를 활용할 수도 있음.

재미있는 사실

• 17은 페르마소수이다

역사

• 1796 가우스
• 수학사 연표

메모

• http://pballew.blogspot.com/2011/04/constructructable-polygons-and-x17-1.html

관련된 학부 과목과 미리 알고 있으면 좋은 것들

• 추상대수학
  • 순환군
  • 가해군 (solvable groups)
• 초등정수론
  • 합동식과 군론
  • 원시근(primitive root)
  • 오일러의 totient 함수

관련된 항목들

• 그리스 3대 작도 불가능문제
• 정다각형의 작도
• 원시근(primitive root)
• 가우스(1777 - 1855)

매스매티카 파일 및 계산 리소스

• https://docs.google.com/leaf?id=0B8XXo8Tve1cxZGVmNzY1NmEtMThiNi00OTdkLTgxYTQtYTZhMzdlZTM4Mzkw&sort=name&layout=list&num=50

사전형태의 자료

• http://en.wikipedia.org/wiki/Heptadecagon

관련논문

• Garcia, Stephan Ramon, Trevor Hyde, and Bob Lutz. ‘Gauss’ Hidden Menagerie: From Cyclotomy to Supercharacters’. arXiv:1501.07507 [math], 29 January 2015. http://arxiv.org/abs/1501.07507.

관련도서

• Famous Problems of Elementary Geometry (Dover Phoenix Editions)
  • 펠릭스 클라인 Felix Klein
  • 얇은 책으로, 대수방정식과 함께 고대 그리스 3대 작도 불가능문제를 소개함.
• Elliptic functions and elliptic integrals
  • Viktor Prasolov, Yuri Solovyev
• Lectures on Elementary Number Theory
  • Hans Rademacher

동영상

• 정17각형의 작도 과정을 보여주는 동영상, Youtube

노트

말뭉치

1. Then, on 30 March 1796, the 19 year old Gauss discovered that it was possible to construct the regular heptadecagon (17-gon).^[1]
2. One of the nicest actual constructions of the 17-gon is Richmond's (1893), as reproduced in Stewart's "Galois Theory".^[1]
3. Gauss was clearly fond of this discovery, and there's a story that he asked to have a heptadecagon carved on his tombstone, like the sphere incribed in a cylinder on Archimedes' tombstone.^[1]
4. On the other hand, if proximity to the actual remains is not important, then the heptadecagon on the monument to Gauss in his native town of Brunswick, or even the figure above, may suffice.^[1]
5. Gauss's "heptadecagon', a 17-sided polygon that showed the relationship between geometry and algebra.^[2]
6. But what’s widely considered his first important discovery is his construction of a 17-sided polygon called a heptadecagon, using only a ruler and a compass.^[2]
7. A regular heptadecagon is represented by the Schläfli symbol {17}.^[3]
8. Constructing a regular heptadecagon thus involves finding the cosine of 2 π / 17 {\displaystyle 2\pi /17} in terms of square roots, which involves an equation of degree 17—a Fermat prime.^[3]
9. The explicit construction of a heptadecagon was given by Herbert William Richmond in 1893.^[3]
10. These 4 symmetries can be seen in 4 distinct symmetries on the heptadecagon.^[3]
11. Gauss proved in 1796 (when he was 19 years old) that the heptadecagon is constructible with a compass and straightedge.^[4]
12. The first explicit construction of a heptadecagon was given by Erchinger in about 1800.^[4]
13. You now have points and of a heptadecagon.^[4]
14. Connect the adjacent points for to 17, forming the heptadecagon.^[4]
15. A regular heptadecagon, or 17 sided polygon, was known to have existed by mathematicians for many years, but creating one proved to be a greater challenge.^[5]
16. A regular heptadecagon was first created by 19-year-old Carl Friedrich Gauss in 1796 in a groundbreaking proof.^[5]
17. The proof in regards to this 17-gon's construction marked the first major breakthrough in polygon construction in over 2,000 years.^[5]
18. Apart from a heptadecagon, there are also heptadecagrams, which are 17 sided star polygons.^[5]
19. A regular heptadecagon has internal angles each measuring 158.823529411765 degrees.^[6]
20. The regular heptadecagon is a constructible polygon, as was shown by Carl Friedrich Gauss in 1796.^[6]
21. Gauß proved in 1796 (when he was 19 years old) that the heptadecagon is Constructible with a Compass and Straightedge.^[7]
22. The following elegant construction for the heptadecagon (Yates 1949, Coxeter 1969, Stewart 1977, Wells 1992) was first given by Richmond (1893).^[7]
23. The following animation of a heptadecagon editing.^[8]
24. Go to google.com and search about Gauss' 17-gon construction.^[9]
25. He described in his Disquitiones Arithmeticae, a major work on number theory, how to construct a regular 17-gon with Euclidean tools.^[10]
26. The eighteen year old Gauss began his scientific diary with his construction of the regular 17-gon.^[11]
27. The regular 17-sided polygon (heptadecagon) can be constructed with the help of a compass and a ruler.^[12]
28. This document presents Gausss insight that it is possible to construct a heptadecagon a regular polygon with 17 sideswith straightedge and compass.^[13]
29. 3 Gausss proof that a heptadecagon is constructable What Gauss saw is the one need not work with the roots in the natural order r, r2, . . .^[13]
30. The Regular Polygon of 17 sides is called the Heptadecagon, or sometimes the Heptakaidecagon.^[7]
31. In 1796, a 19 years old Gauss showed how to construct a heptadecagon using only a compass and an unmarked straightedge.^[14]
32. Key Words: constructing a regular heptadecagon, theory of cyclotonic equa- tions, modulo, prime number and primitive root, Constructing roots and frac- tions 1.^[15]
33. til recently I did not know the proof supporting Gauss method for constructing a regular heptadecagon - a polygon with 17 sides.^[15]
34. Gauss Theory of Cyclotomic Equations We have seen how the value of cos needed for the construction of a regular heptadecagon can be obtained, but this calculation was just a conrmation.^[15]
35. That all changed in 1796 when a teenage Carl Friedrich Gauss proved the constructibility of the regular seventeen-sided polygon, or heptadecagon.^[16]
36. This allows for the construction of the rest of the heptadecagon as shown bellow.^[16]
37. However, on March 30th, 1796, a 19 year old Carl Gauss rose from bed and was struck by an idea regarding how to prove that the regular 17-gon was constructable.^[17]
38. We can now use these results to prove the main theorem, that the regular heptadecagon is constructable.^[17]
39. Upon seeing the number 17, I immediately thought of the Gauss construction of the heptadecagon.^[18]
40. In any case, by just following the method of Gauss through the rst stage of the heptadecagon construction, I was able to solve the problem.^[18]
41. I have just completed my first construction of the regular heptadecagon — a construction that even the ancient Greeks were never able to figure out.^[19]
42. The regular heptadecagon construction, however, I did not figure out independently.^[19]
43. As a result, the regular heptadecagon is one of the few prime sided figures constructable using an unmarked ruler and pair of compasses - that is using a classical construction.^[20]
44. 1 2 HUGO TAVARES AND PEDRO J. FREITAS Gauss proved, in his early years, that the 17-gon is constructible.^[21]

소스

메타데이터

위키데이터

• ID : Q542476

Spacy 패턴 목록

• [{'LEMMA': 'heptadecagon'}]
• [{'LOWER': '17'}, {'OP': '*'}, {'LEMMA': 'gon'}]
• [{'LOWER': 'heptakaidecagon'}]