哈哈,我又来了! 但是!今天我又带来了让人开心到窒息的 ----深搜dps 其实关于深搜,概念没啥可讲的,总结一句话概括就是:一直往下搜,直到满足条件的,再回来,沿着下一条路搜,直到把路全走完为止..... 关于深搜框架,我有两个: 那么,我们直接上题练练手吧: 1215:迷宫 [题目描述] 一天Extense在森林里探险的时候不小心走入了一个迷宫,迷宫可以看成是由n×nn×n的格点组成,每个格点只有22种状态,.和#,前者表示可以通行后者表示不能通行.同时当Extense处在某个格点时,他只能…

<span style="color:#330099;">/* I - 深搜 基础 Time Limit:1000MS Memory Limit:10000KB 64bit IO Format:%I64d & %I64u Submit Status Description Given a specified total t and a list of n integers, find all distinct sums using numbers from the…

这个题我看了,都是推荐的神马双向广搜,难道这个深搜你们都木有发现?还是特意留个机会给我装逼? Open the Lock Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 3014    Accepted Submission(s): 1323 Problem Description Now an emergent task for you…

利用TreeView控件加载文件,必须遍历处所有的文件和文件夹. 深搜算法用到了递归. using System; using System.Collections.Generic; using System.ComponentModel; using System.Data; using System.Drawing; using System.Linq; using System.Text; using System.Threading.Tasks; using System.Windows…

题目链接 https://acm.bnu.edu.cn/v3/problem_show.php?pid=52310 problem description Define the depth of a node in a rooted tree by applying the following rules recursively: • The depth of a root node is 0. • The depths of child nodes whose parents are with…

题目链接 https://acm.bnu.edu.cn/v3/problem_show.php?pid=52305 problem  description In ICPCCamp, there are n cities and (n−1) (bidirectional) roads between cities. The i-th road is between the ai-th and bi-th cities. It is guaranteed that cities are conne…

题目链接:HDU 5355 http://acm.split.hdu.edu.cn/showproblem.php?pid=5355 Problem Description There are m soda and today is their birthday. The 1-st soda has prepared n cakes with size 1,2,…,n. Now 1-st soda wants to divide the cakes into m parts so that th…

POJ 2676 Sudoku Time Limit: 2000MS   Memory Limit: 65536K Total Submissions: 17627   Accepted: 8538   Special Judge Description Sudoku is a very simple task. A square table with 9 rows and 9 columns is divided to 9 smaller squares 3x3 as shown on the…

codevs 1047 邮票面值设计 1999年NOIP全国联赛提高组  时间限制: 1 s  空间限制: 128000 KB  题目等级 : 钻石 Diamond 题目描述 Description 给定一个信封,最多只允许粘贴N张邮票,计算在给定K(N+K≤40)种邮票的情况下(假定所有的邮票数量都足够),如何设计邮票的面值,能得到最大值MAX,使在1-MAX之间的每一个邮资值都能得到. 例如,N=3,K=2,如果面值分别为1分.4分,则在1分-6分之间的每一个邮资值都能得到(当然还有8分.9…

http://www.wikioi.com/problem/1049/ 这题我之前写没想到迭代加深,看了题解,然后学习了这种搜索(之前我写的某题也用过,,但是不懂专业名词 囧.) 迭代加深搜索就是限制搜索深度,一旦有可行解立即跳出,优化了深搜一直搜下去的毛病. (囧,这题搜索题写了我一下午,我搜索的确很弱啊!!!) 第一次写出来的版本我没有注意到,应该是从多个点拓展下去,而不是从某个点. 第二次写出来的版本的确从所有可行点拓展下去,但是样例都tle.. 第三次看了别人的标程发现直接向右和向拓展就…

题目链接:poj1190 生日蛋糕 解题思路: 深搜,枚举:每一层可能的高度和半径 确定搜索范围:底层蛋糕的最大可能半径和最大可能高度 搜索顺序:从底层往上搭蛋糕,在同一层尝试时,半径和高度都是从大到小试 剪枝: ①已建好的面积已经超过目前求得的最优表面积,或者预见到搭完后面积一定会超过目前最优表面积,则停止搭建(最优性剪枝) ②预见到再往上搭,高度已经无法安排,或者半径无法安排,则停止搭建(可行性剪枝) ③还没搭的那些层的体积,一定会超过还缺的体积,则停止搭建(可行性剪枝) ④还没搭的那些层的…

题目 //传说中的记忆化搜索,好吧,就是用深搜//多做题吧,,这个解法是搜来的,蛮好理解的 //题目大意:给出两堆牌,只能从最上和最下取,然后两个人轮流取,都按照自己最优的策略,//问说第一个人对多的分值.//解题思路:记忆化搜索,状态出来就非常水,dp[fl][fr][sl][sr][flag],//表示第一堆牌上边取到fl,下面取到fr,同样sl,sr为第二堆牌,flag为第几个人在取.//如果是第一个人,dp既要尽量大,如果是第二个人,那么肯定尽量小. http://www.2cto.co…

[题目链接:HDOJ-2952] Counting Sheep Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 2476    Accepted Submission(s): 1621 Problem Description A while ago I had trouble sleeping. I used to lie awake,…

http://poj.org/problem?id=3249 Test for Job Time Limit: 5000MS   Memory Limit: 65536K Total Submissions: 8206   Accepted: 1831 Description Mr.Dog was fired by his company. In order to support his family, he must find a new job as soon as possible. No…

题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=5648 题意:给定n,m(1<= n,m <= 15,000),求Σgcd(i|j,i&j);(1 <= i <= n,1<=j<=m); 至多三组数据,至多两组数据max(n,m) > 2000.至多一组数据max(n,m) > 8000; 很多题解是用递推打表,将数据压缩250倍,即[i][j]:代表[1...250*i][1...250*j],之后零…

最小生成树计数 Description 现在给出了一个简单无向加权图.你不满足于求出这个图的最小生成树,而希望知道这个图中有多少个不同的最小生成树.(如果两颗最小生成树中至少有一条边不同,则这两个最小生成树就是不同的).由于不同的最小生成树 可能很多,所以你只需要输出方案数对31011的模就可以了. Input 第 一行包含两个数,n和m,其中1<=n<=100; 1<=m<=1000; 表示该无向图的节点数和边数.每个节点用1~n的整数编号.接下来的m行,每行包含两个整数:a,…

描述 http://www.lydsy.com/JudgeOnline/problem.php?id=1615 一个主动轮带着一些轮子转,轮子带着轮子转,轮子带着轮子转...一个非主动轮只会被一个轮子带着转.求从主动轮到某一个轮子的路上所有轮子的转速的绝对值之和. 分析 从起点开始,枚举相接触的轮子,只要不是之前路上的(带着当前轮子转的)轮子,就继续往下走.宽搜深搜都可以. 注意: 1.%.0lf是会四舍五入的!所以要强制转化成int. 宽搜: #include <bits/stdc++.h>…

Problem Description Angel was caught by the MOLIGPY! He was put in prison by Moligpy. The prison is described as a N * M (N, M <= 200) matrix. There are WALLs, ROADs, and GUARDs in the prison. Angel's friends want to save Angel. Their task is: approa…

Problem Description === Op tech briefing, 2002/11/02 06:42 CST === "The item is locked in a Klein safe behind a painting in the second-floor library. Klein safes are extremely rare; most of them, along with Klein and his factory, were destroyed in Wo…

1648: [Usaco2006 Dec]Cow Picnic 奶牛野餐 Time Limit: 5 Sec  Memory Limit: 64 MBSubmit: 554  Solved: 346[Submit][Status][Discuss] Description The cows are having a picnic! Each of Farmer John's K (1 <= K <= 100) cows is grazing in one of N (1 <= N <…

题目链接: http://codeforces.com/problemset/problem/707/D 题目大意: 一个N*M的书架,支持4种操作 1.把(x,y)变为有书. 2.把(x,y)变为没书. 3.把x行上的所有书状态改变,有变没,没变有. 4.回到第K个操作时的状态. 求每一次操作后书架上总共多少书. 题目思路: [离线][深搜][树] 现场有思路不过没敢写哈.还是太弱了. 总共只用保存一张图,把操作看成一棵树,一开始I操作连接在I-1操作后,如果遇到操作4的话,把I操作与I-1操…

Suppose that we have a square city with straight streets. A map of a city is a square board with n rows and n columns, each representing a street or a piece of wall. A blockhouse is a small castle that has four openings through which to shoot. The fo…

Sea and Sky are the most favorite things of iSea, even when he was a small child.  Suzi once wrote: white dew fly over the river, water and light draw near to the sky. What a wonderful scene it would be, connecting the two charming scenery. But iSea…

题目大意:有一堆木棍 由几个相同长的木棍截出来的,求那几个相同长的木棍最短能有多短? 深搜+剪枝 具体看代码 #include <cstdio> #include <cstdlib> #include <cmath> #include <cstring> #include <ctime> #include <algorithm> #include <iostream> #include <sstream> #i…

HDU 1241 是深搜算法的入门题目,递归实现. 原题目传送门: http://acm.hdu.edu.cn/showproblem.php?pid=1241 代码仅供参考,c++实现: #include <iostream> using namespace std; ][]; int p,q; void dfs(int x,int y){ land[x][y] = '*'; ][y]!= ][y] != ] != ] != ][y+]!= ][y-] != ][y-] != ][y+] !…

Hidden String Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 262144/262144 K (Java/Others) Total Submission(s): 1679    Accepted Submission(s): 591 Problem Description Today is the 1st anniversary of BestCoder. Soda, the contest manager, get…

深搜,从一点向各处搜找到全部能走的地方. Problem Description There is a rectangular room, covered with square tiles. Each tile is colored either red or black. A man is standing on a black tile. From a tile, he can move to one of four adjacent tiles. But he can't move on…

Problem D: Servicing stations A company offers personal computers for sale in N towns (3 <= N <= 35). The towns are denoted by 1, 2, ..., N. There are direct routes connecting M pairs from among these towns. The company decides to build servicing st…

题意: 给出老虎的起始点.方向和驴的起始点.方向.. 规定老虎和驴都不会走自己走过的方格,并且当没路走的时候,驴会右转,老虎会左转.. 当转了一次还没路走就会停下来.. 问他们有没有可能在某一格相遇.. 思路: 模拟,深搜.. 用类似时间戳的东西给方格标记上,表示某一秒正好走到该方格.. 最后遍历一下驴在某一格方格标记时间是否和老虎在该格标记的时间一样,一样代表正好做过这里了.. 还有一种情况就是老虎或驴一直停在那里,那就算不相等,也是可以的.. Tips: 我一直忘了老虎或驴停下来的情况,这样…

题目链接: http://acm.nyist.edu.cn/JudgeOnline/problem.php?pid=488 深搜模板: void dfs(int 当前状态) { if(当前状态为边界状态) { 记录或输出 return; } ;i<n;i++) //横向遍历解答树所有子节点 { //扩展出一个子状态. 修改了全局变量 if(子状态满足约束条件) { dfs(子状态) } 恢复全局变量//回溯部分 } } 未优化的代码: #include <stdio.h> #includ…