ATM机模拟，可以实现存款，取款，修改密码等功能

这是一个 模拟的代码编辑器，对所有的vc 的 关键字 都有 着色功能-This is a simulation of the code editor for all of the vc keywords are coloring function

tts ，相必大家都熟悉，这个效果不错，可有可选择男声女声，音量等，效果还可以，但是比不上科大讯飞的那个，这是微软公开的-tts,well known to everybody,have a good effect.you can choise man or woman voice,it not better than the one science and technology university developed.but it s microsoft s production.

用MATLAB仿真实现卡尔曼滤波器，仿真效果非常好。-MATLAB simulation Kalman filter, the simulation results is very good.

小画板程序，模拟windows下的小画板程序-paintboard

TrueType的实现过程,很好的源码哦,可以下来-TrueType s implementation process, a very good source Oh, you can down

0-l背包问题是子集选取问题。一般情况下，0-1背包问题是NP难题。0-1背包 问题的解空间可用子集树表示。解0-1背包问题的回溯法与装载问题的回溯法十分类 似。在搜索解空间树时，只要其左儿子结点是一个可行结点，搜索就进入其左子树。当 右子树有可能包含最优解时才进入右子树搜索。否则将右子树剪去。设r是当前剩余 物品价值总和；cp是当前价值；bestp是当前最优价值。当cp+r≤bestp时，可剪去右 子树。计算右子树中解的上界的更好方法是将剩余物品依其单位重量价值排序，然后 依次装入物品，直至装不下时，再装入该物品的一部分而装满背包。由此得到的价值是 右子树中解的上界。-0-l knapsack problem is selected subset of the problem. Under normal circumstances, 0-1 knapsack problem is NP-hard. 0-1 knapsack problem the solution space available subset of the tree said. Xie 0-1 knapsack problem with the law retroactively loading the retroactive law very similar. The search solution space trees, as long as their son left node is a viable nodes, the search entered its left subtree. When the right subtree is the optimal solution may contain only son into the right tree search. It will cut right subtrees. Suppose that r is the total value of the remaining items; Cp is the current value; Bestp is currently the best value. When cp r bestp, they can cut right subtrees. Calculation right

实用Visual C++6.0教程各章节（第三章）的源代码，很好地帮助初学者熟悉VC开发平台。-Pratical Visual C++6.0 chapter examples

以深度为k的满二叉树(n=2k-1)为例，假设表中每个记录的查找概率相等，即 pi=1/n（1≤i≤n），而树的第i层上有2i-1个结点，因此，折半查找的平均查找长度为： 所以，折半查找的平均时间复杂度为O(log2n)。 -To a depth of k over the binary tree (n = 2k-1) as an example, suppose the table to find the probability of each record the same, that is, pi = 1/n (1 ≤ i ≤ n), and the tree layer of the first i There are 2i-1 nodes, therefore, to find half the average length of search as follows: Therefore, to find half the average time complexity is O (log2n).

电子文书档案管理系统源码-electronic instruments source file management system

USBEject是最好的和更快的解决办法安全删除 USB 设备不受损坏。此应用程序是由 C# 开发与 Win32 API 包装 (CM_xx API)