"모듈라 군, j-invariant and the singular moduli"의 두 판 사이의 차이

2009년 11월 17일 (화) 11:16 판

\(k=k(\tau)=\frac{\theta_2^2(\tau)}{\theta_3^2(\tau)}\)

\(k'=\sqrt{1-k^2}=\frac{\theta_4^2(\tau)}{\theta_3^2(\tau)}\)

\(\lambda(\tau)=k^2(\tau)=\frac{\theta_2^4(\tau)}{\theta_3^4(\tau)}\)

\(J(\tau)=\frac{4}{27}\frac{(1-\lambda+\lambda^2)^3}{\lambda^2(1-\lambda)^2}\)

\(j(\tau)=1728J(\tau)\)

\(\lambda(\tau)=k^2(\tau)\) 는 modulus라고 불렸으며, 아벨, 자코비와 후학들(에르미트)에 의해 많이 연구됨
- \(\Gamma(2)\)에 의해 불변임
- 기본적인 내용은 [AHL1979] 7.3.4를 참고
가장 기본적인 모듈라함수로 여겨졌으나, 나중에 \(j\)-불변량에 그 자리를 내줌

일종타원적분 K
\(\frac{K'}{K}(\frac{1}{\sqrt{2}})= 1\)
\(\frac{K'}{K}(\sqrt{2}-1)= \sqrt{2}\)
\(\frac{K'}{K}\left(\frac{\sqrt{6}+\sqrt{2}}{4}\right)= \sqrt{3}\)
\(\frac{K'}{K}\left(3-2\sqrt{2}}\right)= \sqrt{4}\)
singular values
\(k(i)=\frac{1}{\sqrt{2}}\)
\(k(\sqrt{2}i)=\sqrt{2}-1\)
\(k(\sqrt{3}i)=\frac{\sqrt{6}+\sqrt{2}}{4}\)
\(k(2i)=3-2\sqrt{2}\)

타원적분 , 자코비 세타함수, 라마누잔의 class invariants, 참조
\(q=e^{2\pi i \tau}\)
\(\theta_{2}(\tau)= \sum_{n=-\infty}^\infty q^{(n+\frac{1}{2})^2/2}\)
\(\theta_3(\tau)=\sum_{n=-\infty}^\infty q^{n^2/2}\)

\(\theta_{4}(\tau)= \sum_{n=-\infty}^\infty (-1)^n q^{n^2/2}\)

\(k=k(\tau)=\frac{\theta_2^2(\tau)}{\theta_3^2(\tau)}\)

\(K(k) = \int_0^{\frac{\pi}{2}} \frac{d\theta}{\sqrt{1-k^2 \sin^2\theta}}\)

\(E(k) = \int_0^{\frac{\pi}{2}} \sqrt{1-k^2 \sin^2\theta}}d\theta}{\)

\(k'=\sqrt{1-k^2}=\frac{\theta_4^2(\tau)}{\theta_3^2(\tau)}\)

\(K'(k) = K(k')\)

\(E'(k) = E(k')\)

\(\lambda^{*}(r):=k(i\sqrt{r})\)

Fundamental Domain drawer
- Java applet
- H. A. Verrill
The Action of the Modular Group on the Fundamental Domain
- Wolfram
Modular Miracles
- John Stillwell, The American Mathematical Monthly, Vol. 108, No. 1 (Jan., 2001), pp. 70-76
Rationals and the Modular Group
- Roger C. Alperin, The American Mathematical Monthly, Vol. 106, No. 8 (Oct., 1999), pp. 771-773
On singular moduli.
- Gross, B.H.; Zagier, Don B, J. Rcinc Angew. Math. 355, 191-220

@@ 22번째 줄: / 22번째 줄: @@
-<h5>메모</h5>
+<h5>타원적분과 singular moduli</h5>
-<math>\lambda(i)=k^2(i)=\frac{1}{2}</math>
+* [[제1종타원적분 K (complete elliptic integral of the first kind)|일종타원적분 K]]<br><math>\frac{K'}{K}(\frac{1}{\sqrt{2}})= 1</math><br><math>\frac{K'}{K}(\sqrt{2}-1)= \sqrt{2}</math><br><math>\frac{K'}{K}\left(\frac{\sqrt{6}+\sqrt{2}}{4}\right)= \sqrt{3}</math><br><math>\frac{K'}{K}\left(3-2\sqrt{2}}\right)= \sqrt{4}</math><br>
+*  singular values<br><math>k(i)=\frac{1}{\sqrt{2}}</math><br><math>k(\sqrt{2}i)=\sqrt{2}-1</math><br><math>k(\sqrt{3}i)=\frac{\sqrt{6}+\sqrt{2}}{4}</math><br><math>k(2i)=3-2\sqrt{2}</math><br>
+*  singular moduli<br><math>\lambda(i)=k^2(i)=\frac{1}{2}</math><br><br>
-[[제1종타원적분 K (complete elliptic integral of the first kind)|일종타원적분 K]]
-<math>K(k) = \int_0^{\frac{\pi}{2}} \frac{d\theta}{\sqrt{1-k^2 \sin^2\theta}}</math>
-<math>\frac{K'}{K}(\frac{1}{\sqrt{2}})= 1</math>
-<math>\frac{K'}{K}(\sqrt{2}-1)= \sqrt{2}</math>
-<math>\frac{K'}{K}\left(\frac{\sqrt{6}+\sqrt{2}}{4}\right)= \sqrt{3}</math>
-<math>\frac{K'}{K}\left(3-2\sqrt{2}}\right)= \sqrt{4}</math>