串行的矩阵相乘

已经一整数n，求1！+2!+3!+4！+5！+6！+……+n！，n

本程序适用于求解形如f(x)=1/2*x Ax+bx+c二次函数的稳定点-This procedure applies to solution of the form f (x) = 1/2* x" Ax+ bx+ c quadratic function of the stable point

unix环境下计算符合常用概率分布的随机变量的集合-unix environment commonly used terms with the probability distribution of random variables pool

单源最短路径求解-single source shortest path Solution

近似法主要用于测量图像中的无条件细节数据.he伪最近邻法是一种获得相空间重构最佳嵌入维数的方法。通过检查嵌入在增维投影流形中的点的邻域，该算法消除了“假邻域”：这意味着由于投影而明显靠在一起的点在较高的嵌入维中被分离。

"Radar_eq.m"函数实现方程 (1.61）。输出是 dB 中的信噪比或在 Km 范围内不同的地方输入的设置用于每个案例。

一个排序过程的演示- A arrangement process demonstration

acm.zju.edu.cn第1234题（动态规划）-acm.zju.edu.cn that resolution 1234 (dynamic programming)

附有多个典型的聚类算法，可执行文件全集。-with more typical clustering algorithm, The Complete Works of executable files.

旅行家问题 一个旅行家想驾驶汽车以最少的费yi 用从一个城市到另一个城市（假设出发时油箱是空的）。给定两个城市之间的距离为D1、汽车油箱的容量为C(以升为单位），每升汽油能行驶的距离为 D2，出发点每升汽油价格P和沿途油站数N（N可以为零），油站i离出发点距离Di,每升汽油价格Pi(i=1,2...N)。计算结果四舍五入至小数点后两位。 如果无法到达目的地，则输出“No Solution"。-issue a travel home to travel home to drive a car with the minimum of cost yi used from one city to another city (assuming starting at the fuel tank was empty). Given the two cities for the distance between D1, car fuel tank capacity of the C (in liters) per liter petrol traveling distance to the D2, the starting point liter gasoline prices P and several petrol stations along the N (N can be zero), PFS i distance from the starting point Di per liter Steam oil prices Pi (i = 1,2 ... N). Calculation results rounded to two decimal places. If unable to reach their destination, the export of "No Solution."