HDU 1501 Zipper [DFS+剪枝] Problem Description Given three strings, you are to determine whether the third string can be formed by combining the characters in the first two strings. The first two strings can be mixed arbitrarily, but each must stay in…

HDOJ 1501 Zipper [DP][DFS+剪枝] Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 10886 Accepted Submission(s): 3925 Problem Description Given three strings, you are to determine whether the third str…

HDOJ 1501 Zipper [简单DP] Problem Description Given three strings, you are to determine whether the third string can be formed by combining the characters in the first two strings. The first two strings can be mixed arbitrarily, but each must stay in i…

意甲冠军  是否可以由串来推断a,b字符不改变其相对为了获取字符串的组合c 本题有两种解法  DP或者DFS 考虑DP  令d[i][j]表示是否能有a的前i个字符和b的前j个字符组合得到c的前i+j个字符  值为0或者1  那么有d[i][j]=(d[i-1][j]&&a[i]==c[i+j])||(d[i][j-1]&&b[i]==c[i+j])   a,b的下标都是从1開始的  注意0的初始化 #include<cstdio> #include<cs…

Tempter of the Bone http://acm.hdu.edu.cn/showproblem.php?pid=1010 #include <stdio.h> #include <stdlib.h> ][]; ,,-,}; ,,,-}; bool flag; int n,m,xd,yd,t; void DFS(int x,int y,int t) { ) //到时间了符合条件flag=true再退出,不符合条件直接退出. { if(x==xd&&y==y…

Problem Description Given three strings, you are to determine whether the third string can be formed by combining the characters in the first two strings. The first two strings can be mixed arbitrarily, but each must stay in its original order. For e…

P3959 宝藏 题目描述 参与考古挖掘的小明得到了一份藏宝图,藏宝图上标出了 n 个深埋在地下的宝藏屋, 也给出了这 n 个宝藏屋之间可供开发的m  条道路和它们的长度. 小明决心亲自前往挖掘所有宝藏屋中的宝藏.但是,每个宝藏屋距离地面都很远, 也就是说,从地面打通一条到某个宝藏屋的道路是很困难的,而开发宝藏屋之间的道路 则相对容易很多. 小明的决心感动了考古挖掘的赞助商,赞助商决定免费赞助他打通一条从地面到某 个宝藏屋的通道,通往哪个宝藏屋则由小明来决定. 在此基础上,小明还需要考虑如何开凿…

题目传送门 /* 题意:告诉一个区间[L,R],问根节点的n是多少 DFS+剪枝:父亲节点有四种情况:[l, r + len],[l, r + len - 1],[l - len, r],[l - len -1,r]; */ #include <cstdio> #include <algorithm> #include <cstring> #include <cmath> #include <queue> using namespace std;…

Lotto [从零开始DFS(0)] 点我挑战题目 从零开始DFS HDOJ.1342 Lotto [从零开始DFS(0)] - DFS思想与框架/双重DFS HDOJ.1010 Tempter of the Bone [从零开始DFS(1)] -DFS四向搜索/奇偶剪枝 HDOJ(HDU).1015 Safecracker [从零开始DFS(2)] -DFS四向搜索变种 HDOJ(HDU).1016 Prime Ring Problem (DFS) [从零开始DFS(3)] -小结:做DFS题…

HDOJ(HDU).1015 Safecracker [从零开始DFS(2)] 从零开始DFS HDOJ.1342 Lotto [从零开始DFS(0)] - DFS思想与框架/双重DFS HDOJ.1010 Tempter of the Bone [从零开始DFS(1)] -DFS四向搜索/奇偶剪枝 HDOJ(HDU).1015 Safecracker [从零开始DFS(2)] -DFS四向搜索变种 HDOJ(HDU).1016 Prime Ring Problem (DFS) [从零开始DFS…

题目链接:http://acm.split.hdu.edu.cn/showproblem.php?pid=5887 题解:这题一看像是背包但是显然背包容量太大了所以可以考虑用dfs+剪枝,贪心得到的不一定是正确答案.当然这题还可以用背包来写,其实这就用到了dp的一些优化就是存状态,递推过程中有些状态是多余的没必要计算这样就可以大大减少空间的利用和时间的浪费 第一份是dfs+剪枝的写法第二份是背包+map存状态的写法. #include <iostream> #include <cstri…

题意:       给你一个n*m的格子,然后给你一个起点,让你遍历所有的垃圾,就是终点不唯一,问你最小路径是多少? 思路:       水题,方法比较多,最省事的就是直接就一个BFS状态压缩暴搜就行了,时间复杂度20*20*1024的,完全可以接受,但是被坑了,一开始怎么交都TLE,后来又写了一个BFS+DFS优化,就是跑之前先遍历一遍图,看看是不是所有的垃圾点都能遍历到,这样还是超时,无奈看了下讨论,有人说用G++交就行了,我用G++交了结果两个方法都AC了,哎!下面是两个方法的代码,比较简…

Sticks Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 9779    Accepted Submission(s): 2907 Problem Description George took sticks of the same length and cut them randomly until all parts became…

POJ3009 DFS+剪枝 原题: Curling 2.0 Time Limit: 1000MS Memory Limit: 65536K Total Submissions: 16280 Accepted: 6725 Description On Planet MM-21, after their Olympic games this year, curling is getting popular. But the rules are somewhat different from our…

ROADS Time Limit: 1000MS   Memory Limit: 65536K Total Submissions: 10777   Accepted: 3961 Description N cities named with numbers 1 ... N are connected with one-way roads. Each road has two parameters associated with it : the road length and the toll…

Va爷的胡策题T2 E. Fairy time limit per test1.5 seconds memory limit per test256 megabytes inputstandard input outputstandard output Once upon a time there lived a good fairy A. One day a fine young man B came to her and asked to predict his future. The fa…

题目传送门 /* 记忆化搜索(DP+DFS):dp[i][j] 表示第i到第j个字符,最少要加多少个括号 dp[x][x] = 1 一定要加一个括号:dp[x][y] = 0, x > y; 当s[x] 与 s[y] 匹配,则搜索 (x+1, y-1); 否则在x~y-1枚举找到相匹配的括号,更新最小值 */ #include <cstdio> #include <algorithm> #include <cmath> #include <iostream&…

题目传送门 /* 题意:若干小木棍,是由多条相同长度的长木棍分割而成,问最小的原来长木棍的长度: DFS剪枝:剪枝搜索的好题!TLE好几次,终于剪枝完全! 剪枝主要在4和5:4 相同长度的木棍不再搜索:5 若新的搜索连第一条都没组合出来,直接break: 详细解释:http://blog.csdn.net/lyy289065406/article/details/6647960 http://www.cnblogs.com/devil-91/archive/2012/08/03/2621787.…

Counting Cliques Time Limit: 8000/4000 MS (Java/Others)    Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 539    Accepted Submission(s): 204 Problem Description A clique is a complete graph, in which there is an edge between every pair…

Equation Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 92    Accepted Submission(s): 24 Problem Description Little Ruins is a studious boy, recently he learned addition operation! He was rewa…

题目链接 Solution DFS+剪枝 对于一个走过点k,如果有必要再走一次,那么一定是走过k后在k点的最大弹药数增加了.否则一定没有必要再走. 记录经过每个点的最大弹药数,对dfs进行剪枝. #include <iostream> #include <cstring> #include <algorithm> #include <cstdio> #include <map> using namespace std; map<string…

Sticks Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 127771   Accepted: 29926 Description George took sticks of the same length and cut them randomly until all parts became at most 50 units long. Now he wants to return sticks to the or…

Sum It Up Time Limit : 2000/1000ms (Java/Other)   Memory Limit : 65536/32768K (Java/Other) Total Submission(s) : 4   Accepted Submission(s) : 1 Font: Times New Roman | Verdana | Georgia Font Size: ← → Problem Description Given a specified total t and…

求最久时间即在无环有向图里求最远路径 dfs+剪枝优化 从0节点(自己添加的)出发,0到1~n个节点之间的距离为1.mt[i]表示从0点到第i个节点眼下所得的最长路径 #include<iostream> #include<cstdio> #include<cstring> #include<string> #include<algorithm> #include<vector> using namespace std; const…

思路: 用状压DP+DFS遍历查找是否可行.假设一个数为x,那么他最远可以消去的点为x+9,因为x+1~x+4都能被他前面的点消去,所以我们将2进制的范围设为2^10,用0表示已经消去,1表示没有消去.dp[i][j]表示栈顶是i当前状态为j时能不能消去栈顶,-1代表不知道,0不行,1行.所以我们只需DFS到i==n时j是否为0,就可以知道能不能消除.更新状态时,只有栈顶到栈底元素>10才更新新的元素进栈. 代码: #include<cstdio> #include<map>…

Annoying problem 题目连接: http://acm.hdu.edu.cn/showproblem.php?pid=5293 Description Coco has a tree, whose vertices are conveniently labeled by 1,2,-,n. There are m chain on the tree, Each chain has a certain weight. Coco would like to pick out some ch…

题目大意:原题链接 给定n个节点,任意两个节点之间有权值,把这n个节点分成A,B两个集合,使得A集合中的每一节点与B集合中的每一节点两两结合(即有|A|*|B|种结合方式)权值之和最大. 标记:A集合:true  B集合:false 解法一:dfs+剪枝 #include<iostream> #include<cstring> using namespace std; int n,ans; ]; ][]; void dfs(int i,int cursum) { in[i]=tru…

HDU 1078 FatMouse and Cheese ( DP, DFS) 题目大意 给定一个 n * n 的矩阵, 矩阵的每个格子里都有一个值. 每次水平或垂直可以走 [1, k] 步, 从 (0, 0) 点开始, 下一步的值必须比现在的值大. 问所能得到的最大值. 解题思路 一般的题目只允许 向下 或者 向右 走, 而这个题允许走四个方向, 所以状态转移方程为 dp(x, y) = dp(nextX, nextY) + arr(x, y); dp 代表在 x, y 的最大值. 由于 下一…

D. Valid Sets time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output As you know, an undirected connected graph with n nodes and n - 1 edges is called a tree. You are given an integer d and a tree…

题意:给出n根小棒的长度stick[i],已知这n根小棒原本由若干根长度相同的长木棒(原棒)分解而来.求出原棒的最小可能长度. 思路:dfs+剪枝.蛮经典的题目,重点在于dfs剪枝的设计.先说先具体的实现:求出总长度sum和小棒最长的长度max,则原棒可能的长度必在max~sum之间,然后从小到大枚举max~sum之间能被sum整除的长度len,用dfs求出所有的小棒能否拼凑成这个长度,如果可以,第一个len就是答案. 下面就是关键的了,就是这道题dfs的实现和剪枝的设计: 1.以一个小棒为开头…