首先要知道选择行列操作时顺序是无关的 用两个数组row[i],col[j]分别表示仅选择i行能得到的最大值和仅选择j列能得到的最大值 这个用优先队列维护,没选择一行(列)后将这行(列)的和减去对应的np (mp)又一次增加队列 枚举选择行的次数为i,那么选择列的次数为k - i次,ans = row[i] + col[k - i] - (k - i) * i * p; 既然顺序无关,能够看做先选择完i次行,那么每次选择一列时都要减去i * p,选择k - i次列,即减去(k - i) * i *…

题目地址:http://codeforces.com/contest/447/problem/C C. DZY Loves Sequences time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output DZY has a sequence a, consisting of n integers. We'll call a sequence…

题意:给你一个矩阵,每次选某一行或者某一列,得到的价值为那一行或列的和,然后该行每个元素减去p.问连续取k次能得到的最大总价值为多少. 解法: 如果p=0,即永远不减数,那么最优肯定是取每行或每列那个最大的取k次,所以最优解由此推出. 如果不管p,先拿,最后再减去那些行列交叉点,因为每个点的值只能取一次,而交叉点的值被加了两次,所以要减掉1次,如果取行A次,取列B次,那么最后答案为: res = dp1[A] + dp2[B] - B*(k-A)*p,可以细细体会一下后面那部分. 其中: dp1…

B. DZY Loves Modification 题目连接: http://www.codeforces.com/contest/446/problem/B Description As we know, DZY loves playing games. One day DZY decided to play with a n × m matrix. To be more precise, he decided to modify the matrix with exactly k opera…

D. DZY Loves Modification time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output As we know, DZY loves playing games. One day DZY decided to play with a n × m matrix. To be more precise, he decid…

枚举行取了多少次,如行取了i次,列就取了k-i次,假设行列单独贪心考虑然后相加,那么有i*(k-i)个交点是多出来的:dpr[i]+dpc[k-i]-i*(k-i)*p 枚举i取最大值.... B. DZY Loves Modification time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output As we know, DZY l…

D - DZY Loves Modification As we know, DZY loves playing games. One day DZY decided to play with a n × mmatrix. To be more precise, he decided to modify the matrix with exactly koperations. Each modification is one of the following: Pick some row of…

447D - DZY Loves Modification 思路:将行和列分开考虑.用优先队列,计算出行操作i次的幸福值r[i],再计算出列操作i次的幸福值c[i].然后将行取i次操作和列取k-i次操作,那么多加的幸福值就是i*(k-i)*p,因为无论先操作行还是列,每操作一次一个格子只减一次p.这样记录下最大的幸福值. 代码: #include<bits/stdc++.h> using namespace std; #define ll long long ; ; const ll INF=…

D. DZY Loves Modification time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output As we know, DZY loves playing games. One day DZY decided to play with a n × m matrix. To be more precise, he decid…

B. DZY Loves Modification time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output As we know, DZY loves playing games. One day DZY decided to play with a n × m matrix. To be more precise, he decid…

參考:http://www.cnblogs.com/chanme/p/3843859.html 然后我看到在别人的AC的方法里还有这么一种神方法,他预先设定了一个阈值K,当当前的更新操作数j<K的时候,它就用一个类似于树状数组段更的方法,用一个 d数组去存内容,譬如它要在区间 [3,6]上加一段fibonacci 原来: id 0 1 2 3 4 5 6 7 8 9 10 d  0 0 0 0 0 0 0 0 0 0 0 更新: id 0 1 2 3 4 5 6  7  8  9 10 d  0…

B. DZY Loves FFT 题目连接: http://codeforces.com/contest/444/problem/B Description DZY loves Fast Fourier Transformation, and he enjoys using it. Fast Fourier Transformation is an algorithm used to calculate convolution. Specifically, if a, b and c are s…

As we know, DZY loves playing games. One day DZY decided to play with a n × m matrix. To be more precise, he decided to modify the matrix with exactly k operations. Each modification is one of the following: Pick some row of the matrix and decrease e…

链接:http://codeforces.com/problemset/problem/447/D 题意:一个n*m的矩阵.能够进行k次操作,每次操作室对某一行或某一列的的数都减p,获得的得分是这一行或列原来的数字之和.求N次操作之后得到的最高得分是多少. 思路:首先分别统计每行和每列的数字和. 进行的k次操作中,有i次操作是对行进行操作,剩余k-i次操作是对列进行操作. 首先在操作中忽略每次操作中行对列的影响,然后计算列的时候,最后能够计算出,总共的影响是i*(k-i)*p. 找出对于每一个i…

题意: k次操作  每次选择一行或一列  得到所选数字的和  并将所选数字同一时候减去p  问最多得到多少 思路: 重点在消除行列间的相互影响 因为每选一行全部列所相应的和都会-p  那么假设选了i次行  则列会-i*p  同理选列 那么影响就能够这样表示 -p*i*(k-i)  把影响提出来  这样行列就不影响了 对于行或列  单独处理时相当于一维的东西  贪心就可以 代码: #include<cstdio> #include<cstring> #include<algor…

题目传送门 题目大意:给一个 \(n*m\) 的矩阵,并进行 \(k\) 次操作,每次操作将矩阵的一行或一列的所有元素的值减 \(p\) ,得到的分数为这次修改之前这一列/一行的元素和,求分数最大值. 我开始的意识流想法是用一个优先队列维护,先把所有元素插入,然后\(k\)次每次取出堆顶,减去乘\(p\)的什么东西,再塞回队中.但是...行与列是会互相影响的鸭,那么怎么搞呢?然后就不会了hh. 正解是努力打破了行与列之间的相互影响,把行与列分开计算.我们考虑行与列是怎么互相影响的:选择\(i\)…

题目传送门 /* DP:先用l,r数组记录前缀后缀上升长度,最大值会在三种情况中产生: 1. a[i-1] + 1 < a[i+1],可以改a[i],那么值为l[i-1] + r[i+1] + 1 2. l[i-1] + 1 3. r[i+1] + 1 //修改a[i] */ #include <cstdio> #include <algorithm> #include <cstring> using namespace std; ; const int INF…

A. DZY Loves Sequences 题目连接: http://www.codeforces.com/contest/446/problem/A Description DZY has a sequence a, consisting of n integers. We'll call a sequence ai, ai + 1, ..., aj (1 ≤ i ≤ j ≤ n) a subsegment of the sequence a. The value (j - i + 1) d…

A. DZY Loves Hash time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output DZY has a hash table with p buckets, numbered from 0 to p - 1. He wants to insert n numbers, in the order they are given, i…

C. DZY Loves Sequences time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output DZY has a sequence a, consisting of n integers. We'll call a sequence ai, ai + 1, ..., aj (1 ≤ i ≤ j ≤ n) a subsegment…

预处理出每一个数字能够向后延伸多少,然后尝试将两段拼起来. C. DZY Loves Sequences time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output DZY has a sequence a, consisting of n integers. We'll call a sequence ai, ai + 1, ..., a…

B. DZY Loves Strings time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output DZY loves collecting special strings which only contain lowercase letters. For each lowercase letter c DZY knows its val…

DZY Loves Chemistry Time Limit:1000MS     Memory Limit:262144KB     64bit IO Format:%I64d & %I64u Submit Status Practice CodeForces 445B Description DZY loves chemistry, and he enjoys mixing chemicals. DZY has n chemicals, and m pairs of them will re…

题目链接: http://codeforces.com/problemset/problem/444/C J. DZY Loves Colors time limit per test:2 secondsmemory limit per test:256 megabytes 问题描述 DZY loves colors, and he enjoys painting. On a colorful day, DZY gets a colorful ribbon, which consists of…

题目大意:Codeforces 444C DZY Loves Colors 题目大意:两种操作,1是改动区间上l到r上面德值为x,2是询问l到r区间总的改动值. 解题思路:线段树模板题. #include <cstdio> #include <cstring> #include <cstdlib> #include <algorithm> using namespace std; const int maxn = 5*1e5; typedef long lo…

D - DZY Loves Strings 思路:感觉这种把询问按大小分成两类解决的问题都很不好想.. https://codeforces.com/blog/entry/12959 题解说得很清楚啦. #include<bits/stdc++.h> #define LL long long #define fi first #define se second #define mk make_pair #define PLL pair<LL, LL> #define PLI pai…

D. DZY Loves Strings 题目连接: http://codeforces.com/contest/444/problem/D Description DZY loves strings, and he enjoys collecting them. In China, many people like to use strings containing their names' initials, for example: xyz, jcvb, dzy, dyh. Once DZ…

C. DZY Loves Colors 题目连接: http://codeforces.com/contest/444/problem/C Description DZY loves colors, and he enjoys painting. On a colorful day, DZY gets a colorful ribbon, which consists of n units (they are numbered from 1 to n from left to right). T…

A. DZY Loves Physics 题目连接: http://codeforces.com/contest/444/problem/A Description DZY loves Physics, and he enjoys calculating density. Almost everything has density, even a graph. We define the density of a non-directed graph (nodes and edges of th…

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