Codeforces Round #238 (Div. 2) D. Toy Sum 暴搜

题目链接：

题目

D. Toy Sum

time limit per test：1 second

memory limit per test：256 megabytes

问题描述

Little Chris is very keen on his toy blocks. His teacher, however, wants Chris to solve more problems, so he decided to play a trick on Chris.

There are exactly s blocks in Chris's set, each block has a unique number from 1 to s. Chris's teacher picks a subset of blocks X and keeps it to himself. He will give them back only if Chris can pick such a non-empty subset Y from the remaining blocks, that the equality holds:

"Are you kidding me?", asks Chris.

For example, consider a case where s = 8 and Chris's teacher took the blocks with numbers 1, 4 and 5. One way for Chris to choose a set is to pick the blocks with numbers 3 and 6, see figure. Then the required sums would be equal: (1 - 1) + (4 - 1) + (5 - 1) = (8 - 3) + (8 - 6) = 7.

However, now Chris has exactly s = 106 blocks. Given the set X of blocks his teacher chooses, help Chris to find the required set Y!

输入

The first line of input contains a single integer n (1 ≤ n ≤ 5·105), the number of blocks in the set X. The next line contains n distinct space-separated integers x1, x2, ..., xn (1 ≤ xi ≤ 106), the numbers of the blocks in X.

Note: since the size of the input and output could be very large, don't use slow output techniques in your language. For example, do not use input and output streams (cin, cout) in C++.

输出

In the first line of output print a single integer m (1 ≤ m ≤ 106 - n), the number of blocks in the set Y. In the next line output m distinct space-separated integers y1, y2, ..., ym (1 ≤ yi ≤ 106), such that the required equality holds. The sets X and Y should not intersect, i.e. xi ≠ yj for all i, j (1 ≤ i ≤ n; 1 ≤ j ≤ m). It is guaranteed that at least one solution always exists. If there are multiple solutions, output any of them.

样例

input

3

1 4 5

output

2

999993 1000000

input

1

1

output

1

1000000

题意

给你一个大小为n的X集合x1,x2,...,xn，问你能不能选定一个集合大小S(S<=10^6)，使得从S包含X，并且从属于S但不属于X的元素组成的集合里，选出一个大小为k的非空子集Y，使得等式sigma(xi-1)==sigma(s-yj),其中1<=i<=n,1<=j<=k。

题解

1、暴搜，在属于S但不属于X的元素组成的集合里暴搜出一个满足答案的解。跑了717ms。(暴搜方案，每个数选或不选）

#include<iostream>

#include<cstdio>

#include<map>

#include<vector>

#include<algorithm>

using namespace std;

typedef __int64 LL;

const int maxn=5e5+10;

const int INF=1e6;

int arr[maxn];

int n;

map<int,int> mp;

vector<int> ans;

vector<int> re;

bool dfs(int cur,LL sum){

	if(sum==0) return true;

	int pos=lower_bound(re.begin(),re.end(),sum)-re.begin();

	if(pos>cur) pos=cur;

	if(pos<=0) return false;

	ans.push_back(INF-re[pos]);

	if(dfs(pos-1,sum-re[pos])) return true;

	ans.pop_back();

	if(dfs(pos-1,sum)) return true;

	return false;

}

int main(){

	scanf("%d",&n);

	LL sum=0;

	for(int i=0;i<n;i++){

		int x; scanf("%d",&x); mp[x]=1;

		sum+=x-1;

	}

	re.clear();

	re.push_back(-1);

	for(int i=1;i<=INF;i++){

		if(!mp[i]){

			re.push_back(INF-i);

		}

	}

	sort(re.begin(),re.end());

	dfs(re.size()-1,sum);

	if(!mp[INF]) ans.push_back(INF);

	printf("%d\n",ans.size());

	for(int i=0;i<ans.size()-1;i++) printf("%d ",ans[i]);

	printf("%d\n",ans[ans.size()-1]);

	return 0;

}

2、找对称的数，对于x,有y=S+1-i，使得x-1=S-y;所以对于xi，如果与它对称的数yi不在X里面，则吧yi放到答案里面，如果在，则这两个数相加为S，我们只要另找一个数不在X里面，并且它对称的数也不在X里面，然后吧这两个数都加到答案里面就可以了。

#include<iostream>

#include<vector>

#include<cstdio>

#include<algorithm>

#include<cstring>

using namespace std;

const int maxn = 1e6 + 10;

const int S = 1e6;

int used[maxn];

int main() {

	memset(used, 0, sizeof(used));

	int n;

	scanf("%d", &n);

	for (int i = 0; i < n; i++) {

		int x; scanf("%d", &x); used[x] = 1;

	}

	vector<int> ans;

	//cnt统计一个数和与它对称的数都在X里面的数对

	int cnt = 0;

	for (int i = 1; i <= S; i++) {

		if (used[i]) {

			int j = S + 1 - i;

			if (!used[j]) {

				ans.push_back(j);

				used[j] = 1;

			}

			else {

				if(i<=j) cnt++;

			}

		}

	}

	for (int i = 1; i <= S&&cnt>0; i++) {

		if (!used[i]) {

			int j = S + 1 - i;

			ans.push_back(i);

			ans.push_back(j);

			used[i] = used[j] = 1;

			cnt--;

		}

	}

	sort(ans.begin(), ans.end());

	printf("%d\n", ans.size());

	for (int i = 0; i < ans.size() - 1; i++) printf("%d ", ans[i]);

	printf("%d\n",ans[ans.size()-1]);

	return 0;

}

Codeforces Round #238 (Div. 2) D. Toy Sum 暴搜的更多相关文章

Codeforces Round &num;238 (Div&period; 2) D&period; Toy Sum
D. Toy Sum time limit per test:1 second memory limit per test:256 megabytes input:standard input o ...
Codeforces Round &num;238 (Div&period; 2) D&period; Toy Sum（想法题）
传送门 Description Little Chris is very keen on his toy blocks. His teacher, however, wants Chris to s ...
水题 Codeforces Round &num;303 (Div&period; 2) A&period; Toy Cars
题目传送门 /* 题意:5种情况对应对应第i或j辆车翻了没水题:其实就看对角线的上半边就可以了,vis判断,可惜WA了一次 3: if both cars turned over during th ...
Codeforces Round &num;556 (Div&period; 2) - C&period; Prefix Sum Primes（思维）
Problem Codeforces Round #556 (Div. 2) - D. Three Religions Time Limit: 1000 mSec Problem Descripti ...
Codeforces Round &num;238 (Div&period; 1)
感觉这场题目有种似曾相识感觉,C题还没看,日后补上.一定要坚持做下去. A Unusual Product 题意: 给定一个n*n的01矩阵,3种操作, 1 i 将第i行翻转 2 i 将第i列翻转 3 ...
Codeforces Codeforces Round &num;319 (Div&period; 2) B&period; Modulo Sum 背包dp
B. Modulo Sum Time Limit: 1 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/577/problem/ ...
Codeforces Round &num;303 (Div&period; 2) A&period; Toy Cars 水题
A. Toy Cars Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/545/problem ...
Codeforces Round &num;344 (Div&period; 2) E&period; Product Sum 维护凸壳
E. Product Sum 题目连接: http://www.codeforces.com/contest/631/problem/E Description Blake is the boss o ...
Codeforces Round &num;232 (Div&period; 2) D&period; On Sum of Fractions
D. On Sum of Fractions Let's assume that v(n) is the largest prime number, that does not exceed n; u ...

随机推荐

SpringBoot相关
快速构建项目第 1 步:将这个 Spring Boot 项目的打包方式设置为 war. <packaging>war</packaging> SpringBoot 默认有内嵌 ...
The shortest problem
The shortest problem Time Limit: 3000/1500 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others ...
solrnet - document
Overview and basic usage Mapping Initialization Create/Update/Delete Querying Faceting Highlightin ...
ZRender源码分析5：Shape绘图详解
回顾上一篇说到:ZRender源码分析4:Painter(View层)-中,这次,来补充一下具体的shape 关于热区的边框以圆形为例: document.addEventListener('DO ...
maven实战&lowbar;测试覆盖率插件使用
原文:http://www.cnblogs.com/yucongblog/p/5297051.html 1.环境准备 <project> ... <reporting> &lt ...
error and solve
1.缺少对应的jar包出错信息: Multiple markers at this line - The type org.springframework.beans.factory.Aware c ...
tf&period;transpose()的用法
一.tensorflow官方文档内容 transpose( a, perm=None, name='transpose' ) Defined in tensorflow/python/ops/arra ...
前端开发 - JavaScript 词法分析
JavaScript代码运行前有一个类似编译的过程即词法分析,词法分析主要有三个步骤: 1.分析函数的参数 2.分析函数的变量声明 3.分析函数的函数声明表达式具体步骤如下: 函数在运行的瞬间,生成 ...
python学习之老男孩python全栈第九期&lowbar;day002知识点总结
1. 格式化输出: (1) %(占位符) s(str字符串) d(digit数字) (2) 想单纯输入%,需要输入两个%(%和占位符冲突),前面的%相当于转义. 2. while else循环: (1 ...
Java远程调试 java -Xdebug各参数说明
JAVA自身支持调试功能,并提供了一个简单的调试工具--JDB,类似于功能强大的GDB,JDB也是一个字符界面的调试环境,并支持设置断点,支持线程线级的调试 JAVA的调试方法如下: 1.首先支持J ...