卡特兰路径和q,t-enumeration 学一半的笔记
目录
前面写了这篇q-analog的博客,
这里趁热打铁 2020-08-27 18:19
下面的内容来自Handbook of Enumerative Combinatorics by Miklos Bona
的第11章 Catalan Paths and q,t-enumeration
写不完写不完看不懂看不懂 2020-09-05 20:46
卡特兰
The1st q-analogue of \(C_n\)
\[\sum_{\pi \in L_{n, n}^{+}} q^{\operatorname{maj}(\sigma(\pi))}=\frac{1}{[n+1]}\left[\begin{array}{c}
2 n \\
n
\end{array}\right]
\]
这个上篇博客写过
拿下面的图举例子,\(n=3\),000111,001011,001101,010011,010101
maj分别是0,3,4,2,6
\[\begin{aligned}
q^0+q^3+q^4+q^2+q^6
&=\frac{1}{1+q+q^2+q^3}\cdot\frac{(1-q^6)(1-q^5)(1-q^4)}{(1-q^3)(1-q^2)(1-q^1)} \\
&=\frac{1}{1+q+q^2+q^3}\cdot(1+q^2)(1+q^3)(1+q+q^2+q^3+q^4) \\
&=\frac{1}{1+q+q^2+q^3}\cdot(1+q+2q^2+3q^3+3q^4+3q^5+3q^6+2q^7+q^8+q^9) \\
&=1+q^2+q^3+q^4+q^6
\end{aligned}
\]
The 2nd q-analogue of \(C_n\) /定义\(C_n(q)\)
我理解没错的话,Carlitz-Riordan area 是说路径和\(y=x\)对角线相交区域中完整的正方形个数
这么定义\(C_n(q)=\sum_{\pi \in L_{n, n}^{+}} q^{\operatorname{area}(\pi)}\)的话,
有递归方程
\[C_{n}(q)=\sum_{k=1}^{n} q^{k-1} C_{k-1}(q) C_{n-k}(q), \quad n \geq 1
\]
这么定义的\(C_n(q)\)还能和co-inversion联系起来
The q-Vandermonde convolution/q-范特蒙德卷积
这么定义the basic 超几何级数
\[p+1 \phi_{p}\left(\begin{array}{ccc}
a_{1}, & a_{2}, & \ldots, & a_{p+1} \\
& b_{1}, & \ldots, & b_{p}
\end{array} ; q ; z\right)=\sum_{k=0}^{\infty} \frac{\left(a_{1}\right)_{k} \cdots\left(a_{p+1}\right)_{k}}{(q)_{k}\left(b_{1}\right)_{k} \cdots\left(b_{p}\right)_{k}} z^{k}
\]
其中\((a)_k\)表示升阶乘,即\((a)_k=a(a+1)...(a+k-1)\)
Cauchy's q-binomial theorem
\[{ }_{1} \phi_{0}\left(\begin{array}{ll}
a & \\
- &
\end{array} ; q ; z\right)=\sum_{k=0}^{\infty} \frac{(a)_{k}}{(q)_{k}} z^{k}=\frac{(a z)_{\infty}}{(z)_{\infty}}, \quad|z|<1,|q|<1
\]
where,
\[(a ; q)_{\infty}=(a)_{\infty}=\prod_{i=0}^{\infty}\left(1-a q^{i}\right)
\]
推论11.2.11 The q-binomial theorem
\[\sum_{k=0}^{n} q^{\left(\begin{array}{c}
k \\
2
\end{array}\right)}\left[\begin{array}{l}
n \\
k
\end{array}\right] z^{k}=(-z ; q)_{n}
\]
\[\sum_{k=0}^{\infty}\left[\begin{array}{c}
n+k \\
k
\end{array}\right] z^{k}=\frac{1}{(z ; q)_{n+1}}
\]
推论 11.2.12
\[\sum_{k=0}^{h} q^{(n-k)(h-k)}\left[\begin{array}{l}
n \\
k
\end{array}\right]\left[\begin{array}{c}
m \\
h-k
\end{array}\right]=\left[\begin{array}{c}
m+n \\
h
\end{array}\right] \text { holds. }
\]
推论11.2.13
\[\sum_{k=0}^{h} q^{(m+1) k}\left[\begin{array}{c}
n-1+k \\
k
\end{array}\right]\left[\begin{array}{c}
m+h-k \\
h-k
\end{array}\right]=\left[\begin{array}{c}
m+n+h \\
h
\end{array}\right]
\]
The q-Vandermonde convolution
。。。这个为什么是拿超几何级数来写的。。。。
剩下的空着