http://codeforces.com/problemset/problem/743/D 题意:求最大两个的不相交子树的点权和,如果没有两个不相交子树,那么输出Impossible. 思路:之前好像也做过这种类型的题目啊,知道是树形DP,但是不知道怎么保证两个不相交.看别人代码之后, 在DFS回溯的时候, void dfs(int u, int fa) { sum[u] = w[u]; for(int i = head[u]; ~i; i = edge[i].nxt) { int v = e…

D - Chloe and pleasant prizes 链接 http://codeforces.com/contest/743/problem/D 题面 Generous sponsors of the olympiad in which Chloe and Vladik took part allowed all the participants to choose a prize for them on their own. Christmas is coming, so sponso…

time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Generous sponsors of the olympiad in which Chloe and Vladik took part allowed all the participants to choose a prize for them on their own. Chri…

题目链接 可以发现 十进制4 对应 二进制100 十进制16 对应 二进制10000 十进制64 对应 二进制1000000 可以发现每多两个零,4的次幂就增加1. 用string读入题目给定的二进制数字,求出其长len,当len为奇数时,第一位为1,后面的位数如果都为0,则输出len,如果有一个不为0,则输出len+1: 当len为偶数时,则输出len.(之所以这样输出是因为题目给定4的次幂是从0开始的) #include<iostream> #include<string> #…

题目链接:http://codeforces.com/contest/743/problem/D 大致思路挺简单的就是找到一个父节点然后再找到其两个字节点总值的最大值. 可以设一个dp[x]表示x节点及以下节点能得到的最大值,由于dfs的顺序我们 可以边dfs边求解ans=max(dp[x]+dp[v],ans)(由于dfs是先查询完dp[v]的 左边的树,所以得到的dp[x]是在v节点左边的最大值),顺便记录一下每个节 点的sum值因为一个节点要么整个子树包括自己都要算或者不算. #inclu…

                                                            D. Chloe and pleasant prizes                                                            time limit per test 2 seconds                                                      memory limit per te…

Chloe and pleasant prizes time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Generous sponsors of the olympiad in which Chloe and Vladik took part allowed all the participants to choose a pri…

time limit per test3 seconds memory limit per test256 megabytes inputstandard input outputstandard output Anton is growing a tree in his garden. In case you forgot, the tree is a connected acyclic undirected graph. There are n vertices in the tree, e…

time limit per test1 second memory limit per test256 megabytes inputstandard input outputstandard output Kevin Sun has just finished competing in Codeforces Round #334! The round was 120 minutes long and featured five problems with maximum point valu…

time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Ari the monster is not an ordinary monster. She is the hidden identity of Super M, the Byteforces' superhero. Byteforces is a country that consi…

time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Spongebob is already tired trying to reason his weird actions and calculations, so he simply asked you to find all pairs of n and m, such that t…

time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output People do many crazy things to stand out in a crowd. Some of them dance, some learn by heart rules of Russian language, some try to become a…

time limit per test2.5 seconds memory limit per test256 megabytes inputstandard input outputstandard output One tradition of welcoming the New Year is launching fireworks into the sky. Usually a launched firework flies vertically upward for some peri…

time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Every Codeforces user has rating, described with one integer, possibly negative or zero. Users are divided into two divisions. The first divisio…

time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Mr. Funt now lives in a country with a very specific tax laws. The total income of mr. Funt during this year is equal to n (n ≥ 2) burles and th…

[CodeForces - 1225D]Power Products [数论] [分解质因数] 标签:题解 codeforces题解 数论 题目描述 Time limit 2000 ms Memory limit 524288 kB Source Technocup 2020 - Elimination Round 2 Tags hashing math number theory *1900 Site https://codeforces.com/problemset/problem/1225…

time limit per test2 seconds memory limit per test256 megabytes inputstandard input outputstandard output Every Codeforces user has rating, described with one integer, possibly negative or zero. Users are divided into two divisions. The first divisio…

[codeforces 415D]Mashmokh and ACM 题意:美丽数列定义:对于数列中的每一个i都满足:arr[i+1]%arr[i]==0 输入n,k(1<=n,k<=2000),问满足[数列长度是k && 数列中每一个元素arr[i]在1~n之间 && 数列中元素可以重复]的数列有多少个?结果对10^9+7取余 解题思路:dp[i][j]表示长度是j,最后一位是i的种数 if(kk%i==0) dp[kk][j+1]+=dp[i][j] #inc…

题目链接: http://codeforces.com/problemset/problem/691/D 题目大意: 给一个1到N的排列,M个操作(1<=N,M<=106),每个操作可以交换X Y位置上的数字,求可以得到的最大字典序的数列. 题目思路: [搜索][并查集] 这题可以用搜索或者并查集写,都能过. 把位置分成若干块,每一块里面的位置都是可以被这一块里另一个位置经过若干次调换的(类似强连通,位置可达). 然后把每一块位置里的 位置按从小到大排序,位置上的值按从大到小排序,依次填入位置…

题目链接: http://codeforces.com/gym/100526 http://acm.hunnu.edu.cn/online/?action=problem&type=show&id=11674&courseid=0 题目大意: N个学生M道题(1<=N<=12,1<=M<=30),每道题只有正误两种选项(0 1),每个学生的答题情况和正确题数已知,求标准答案可能有多少种. 如果标准答案只有一种则输出标准答案,否则输出解的个数. 题目思路: […

题目链接: http://codeforces.com/problemset/problem/706/E 题目大意: 给一个N*M的矩阵,Q个操作,每次把两个同样大小的子矩阵交换,子矩阵左上角坐标分别为(a,b)和(c,d),高度h,宽度w. (2 ≤ n, m ≤ 1000, 1 ≤ q ≤ 10 000) 题目思路: [链表][模拟] 这一看如果直接模拟的话时间复杂度是N*M*Q,肯定T了. 把矩阵看成链表,链表的方向有上下左右四种,其实每次交换两个子矩阵只改变的外围一圈的链表值,而内部的链…

题目链接: http://codeforces.com/problemset/problem/710/D 题目大意: 两个等差数列a1x+b1和a2x+b2,求L到R区间内重叠的点有几个. 0 < a1, a2 ≤ 2·109,  - 2·109 ≤ b1, b2, L, R ≤ 2·109, L ≤ R). 题目思路: [数论][扩展欧几里得] 据题意可得同余方程组 x=b1(mod a1) 即 x=k1*a1+b1 x=b2(mod a2) x=k2*a2+b2 化简,k1*a1=k2*a2…

题目链接: http://codeforces.com/problemset/problem/710/E 题目大意: 问写N个字符的最小花费,写一个字符或者删除一个字符花费A,将当前的字符数量翻倍花费B. 题目思路: [动态规划][最短路] [动态规划]: 如果当前x不是2的倍数,那么一定需要单个字符增加或删除,而这个单个操作越靠后答案越优. dp(x)=a+min(dp(x-1),dp(x+1)) 如果当前x是2的倍数,那么有两种情况,一种是通过翻倍的方式获得,一种是通过累加的方式获得.只要比…

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…

题目链接: http://codeforces.com/problemset/problem/698/B http://codeforces.com/problemset/problem/699/D 题目大意: 通过给定当前节点的父亲给你一棵有错的树,可能有多个根和环,输出改成正确的一棵树至少要修改几个节点的父亲和修改后所有点的父亲值 题目思路: [并查集][模拟] 用并查集把成环的归在一起(类似强连通分量),然后统计分量数并修改. 第一个出现的当作根,其余的每一块连通分量都去掉一条边改为连接到…

题目链接: http://codeforces.com/problemset/problem/696/A 题目大意: 一个满二叉树,深度无限,节点顺序编号,k的儿子是k+k和k+k+1,一开始树上的边权都为0 N(N<=1000)个操作,操作两种,1是从u到v的路径上的所有边权+w,2是求u到v的边权和.(1 ≤ v, u ≤ 1018, v ≠ u, 1 ≤ w ≤ 109) 题目思路: [STL][模拟] 用map写很快,第一次用很生疏.现学只看了一点点. 因为是满二叉树所以直接暴力求LCA…

题目链接: http://codeforces.com/contest/706/problem/D 题目大意: 三种操作,1.添加一个数,2.删除一个数,3.查询现有数中与x异或最大值.(可重复) 题目思路: [字典树][贪心] 维护一个字典树,左0右1.查询时从上往下走. // //by coolxxx // #include<iostream> #include<algorithm> #include<string> #include<iomanip>…

27. Remove Element[leetcode] Given an array and a value, remove all instances of that value in place and return the new length. Do not allocate extra space for another array, you must do this in place with constant memory. The order of elements can b…

27. Remove Element[easy] Given an array and a value, remove all instances of that value in place and return the new length. Do not allocate extra space for another array, you must do this in place with constant memory. The order of elements can be ch…

[题目链接]:http://codeforces.com/contest/707/problem/E [题意] 给你一个n*m的方阵; 里面有k个联通块; 这k个联通块,每个连通块里面都是灯; 给你q个操作; 有以下两种类型 ①将第i个连通块里面灯取反 ②询问你(x1,y1)(x2,y2)这个矩形区域内灯的权值的和; [题解] 要用到二维的树状数组; 取反操作只要O(1)就能完成; 即先不管它是什么,取反就是了; 然后在询问的时候,直接用二维树状数组累加; 这里的累加可能是减也可能是加; 也可能…