摘要: [SHOI2013] 超级跳马 \(tag\):矩阵乘法,前缀和 暴力\(dp\)很显然,设\(f_{i,j}\)为从\((1,1)\)跳到\((i,j)\)的方案数,那么有$f_{i,j}= \sum \limits _{j-(2k+1)>0}f _{i/i+1/i-1,j-(2k+1)} $ 发 阅读全文
posted @ 2023-10-27 22:41 Katyusha_Lzh 阅读(24) 评论(0) 推荐(0)