一个简单的基于VC6.0的印刷体数字识别系统

#include #include #define LEN sizeof(struct student) /*----------------数据定义----------------------*/ //定义一个学生信息的结构体,包括学号,姓名和结构体类型的指针 struct student {     long num;                //学号     char name[128];            //姓名     struct student *next;    //结构体指针 }; typedef struct student * stuNode; int n=0;                    //全局变量,记录链表的长度   /*---------------函数声明---------------------*/   stuNode Create();            //创建一个新的链表       &nbs

实用条码转换系统下载-practical barcode conversion system download

PSO智能计算java库-PSO intelligent computing for java

CKNN  Using the Citation KNN algorithm[1] to get the labels for bags in testBags, where minmum Hausdorff distance is used to measure the distances between bags %     CKNN takes, %        PBags     - an Mx1 cell array where the jth instance of ith positive bag is stored in PBags{i}(j,:) %        NBags     - an Nx1 cell array where the jth instance of ith negative bag is stored in NBags{i}(j,:) %        testBags  - a Kx1 cell array where the jth instance of ith test bag is stored in testBags{i}(j,:) %         Refs     - the number of referecnes for each test bag %        Citers    - the number of citers for each test bag %      &n

这可以作为代码，以解释如何能与 arduino 接口声纳发现。它显示的代码来传递信息的部分的工作点到点的信息。这可以有助于获得正确的工作的 sd 链接和云

arduino 云发送电子邮件和 LDR 和 LM35 的信息

Gauss-seid迭代法-Gauss- Seid iterative method

资源描述MK-V0.41无刷无感电调源码，德国的源程序写得也很好，把M8发挥到了极致

给定n 个物品, 物品i重为wi 并且价值为 vi ，背包所能承载的最大容量为 W. 0-1 背包问题即是选择含有着最大总价值的物品的子集且它的容量 ≤W ． 用动态规划实现-given n goods, items i weight of wi and value of vi, the backpack can carry a maximum capacity of W. 0-1 knapsack problem that is a choice with a maximum total value of the goods but a subset of the W capacity. Dynamic Programming

ACM比赛的成绩计算方法，自己用C编的，内附测试数据-ACM contest the results calculation method they used C series, containing test data