코스트카 다항식 (Kostka polynomial)

수학노트
Pythagoras0 (토론 | 기여)님의 2020년 11월 16일 (월) 05:22 판
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개요

  • 코스트카 수 (Kostka number)의 q-버전
  • 갈고리 공식
  • 라스꾸-슈첸베르제 (Lascoux-Schützenberger) 공식
  • 대수적 조합수학의 중요한 연구대상


코스트카 수

\[s_\lambda(\mathbb{x})= \sum_\mu K_{\lambda\mu}m_\mu(\mathbb{x})\]


코스트카 다항식

\[ s_\lambda(\mathbb{x})= \sum_\mu K_{\lambda\mu}(q)P_\mu(\mathbb{x};q) \]

  • \(K_{\lambda\mu}(1)=K_{\lambda\mu}\)이 성립


라스꾸-슈첸베르제 (Lascoux-Schützenberger) 공식

  • 1978년에 라스꾸와 슈첸베르제는 \(K_{\lambda,\mu}(q)\)가 음이 아닌 정수 계수 다항식임을 증명
  • They proved this by showing that \(K_{\lambda,\mu}(q)=\sum q^{c(T)}\), where \(T\) varies over all semi-standard tableaux of shape \(\lambda\) and weight \(\mu\) and \(c(T)\) is an integer-valued function, called the charge of the tableau \(T\), which is still a mysterious object in combinatorics.


테이블

  • \(n\geq d\)를 가정하면, 코스트카 다항식 \(K_{\lambda,\mu}(\mathbb{x})\)는 \(n\)에 의존하지 않고, \(d\)에만 의존


\(d=1\)

\begin{array}{c|c} \text{} & \{1\} \\ \hline \{1\} & 1 \\ \end{array}

\(d=2\)

\begin{array}{c|cc} \text{} & \{2\} & \{1,1\} \\ \hline \{2\} & 1 & q \\ \{1,1\} & 0 & 1 \\ \end{array}

\(d=3\)

\begin{array}{c|ccc} \text{} & \{3\} & \{2,1\} & \{1,1,1\} \\ \hline \{3\} & 1 & q & q^3 \\ \{2,1\} & 0 & 1 & q^2+q \\ \{1,1,1\} & 0 & 0 & 1 \\ \end{array}


\(d=4\)

\begin{array}{c|cccc} \text{} & \{4\} & \{3,1\} & \{2,2\} & \{2,1,1\} & \{1,1,1,1\} \\ \hline \{4\} & 1 & q & q^2 & q^3 & q^6 \\ \{3,1\} & 0 & 1 & q & q^2+q & q^5+q^4+q^3 \\ \{2,2\} & 0 & 0 & 1 & q & q^4+q^2 \\ \{2,1,1\} & 0 & 0 & 0 & 1 & q^3+q^2+q \\ \{1,1,1,1\} & 0 & 0 & 0 & 0 & 1 \\ \end{array}


\(d=5\)

\begin{array}{c|ccccccc} \text{} & \{5\} & \{4,1\} & \{3,2\} & \{3,1,1\} & \{2,2,1\} & \{2,1,1,1\} & \{1,1,1,1,1\} \\ \hline \{5\} & 1 & q & q^2 & q^3 & q^4 & q^6 & q^{10} \\ \{4,1\} & 0 & 1 & q & q^2+q & q^3+q^2 & q^5+q^4+q^3 & q^9+q^8+q^7+q^6 \\ \{3,2\} & 0 & 0 & 1 & q & q^2+q & q^4+q^3+q^2 & q^8+q^7+q^6+q^5+q^4 \\ \{3,1,1\} & 0 & 0 & 0 & 1 & q & q^3+q^2+q & q^7+q^6+2 q^5+q^4+q^3 \\ \{2,2,1\} & 0 & 0 & 0 & 0 & 1 & q^2+q & q^6+q^5+q^4+q^3+q^2 \\ \{2,1,1,1\} & 0 & 0 & 0 & 0 & 0 & 1 & q^4+q^3+q^2+q \\ \{1,1,1,1,1\} & 0 & 0 & 0 & 0 & 0 & 0 & 1 \\ \end{array}


관련된 항목들


리뷰, 에세이, 강의노트


관련논문

  • Shoji, Toshiaki. ‘Enhanced Variety of Higher Level and Kostka Functions Associated to Complex Reflection Groups’. arXiv:1507.01240 [math], 5 July 2015. http://arxiv.org/abs/1507.01240.
  • Takeyama, Yoshihiro. “A Deformation of Affine Hecke Algebra and Integrable Stochastic Particle System.” arXiv:1407.1960 [cond-Mat, Physics:math-Ph], July 8, 2014. http://arxiv.org/abs/1407.1960.
  • Okado, Masato, Anne Schilling, and Mark Shimozono. “A Crystal to Rigged Configuration Bijection for Nonexceptional Affine Algebras.” arXiv:math/0203163, March 15, 2002. http://arxiv.org/abs/math/0203163.
  • Schilling, Anne, and Mark Shimozono. 2001. “Fermionic Formulas for Level-Restricted Generalized Kostka Polynomials and Coset Branching Functions.” Communications in Mathematical Physics 220 (1): 105–164. doi:10.1007/s002200100443.
  • Kirillov, Anatol N., Anne Schilling, and Mark Shimozono. 1999. “Various Representations of the Generalized Kostka Polynomials.” Séminaire Lotharingien de Combinatoire 42: Art. B42j, 19 pp. (electronic). http://www.emis.de/journals/SLC/wpapers/s42schil.pdf
  • Feigin, B., and S. Loktev. 1999. “On Generalized Kostka Polynomials and the Quantum Verlinde Rule.” In Differential Topology, Infinite-Dimensional Lie Algebras, and Applications, 194:61–79. Amer. Math. Soc. Transl. Ser. 2. Providence, RI: Amer. Math. Soc.
  • Kirillov, A. N. 1988. “On the Kostka-Green-Foulkes Polynomials and Clebsch-Gordan Numbers.” Journal of Geometry and Physics 5 (3): 365–389. doi:10.1016/0393-0440(88)90030-7.
  • Nakayashiki, Atsushi, and Yasuhiko Yamada. 1997. “Kostka Polynomials and Energy Functions in Solvable Lattice Models.” Selecta Mathematica. New Series 3 (4): 547–599. doi:10.1007/s000290050020.
  • Lascoux, Alain, and Marcel-Paul Schützenberger. 1978. “Sur Une Conjecture de H. O. Foulkes.” C. R. Acad. Sci. Paris Sér. A-B 286 (7): A323–A324.