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AI

Sehnsucht

记一次博客换图床的过程 观《花束般的恋爱》 读《活过》 东京 旅行篇 亲人逝去 我为什么想养鱼 防止AI爬取你的博客 「monthly 」博客重构 游戏全成就 好看的小说 人生的每一步都不会是浪费-2024年终 「weekly」星期五综合征 「weekly」听播客 杂谈 读《美丽新世界》 「weekly」社交媒体 恶性事件 新世界 「weekly」认知觉醒 美丽新世界 follow 「weekly」独立博客9问题 双十一买书 读《惊呆了!原来这就是社会学》 一次聊天与自我建设 2024-09月记 补番《relife》 树状数组简单理解 lvm简单使用 博客自动发布方案 某公众号废案 fail2ban基本使用 Podman 环境使用 Nginx Proxy Manager 最佳实践 2024-07同学聚会 vps使用podman部署freshrss Gitlab CICD 实践,思考与记录 装备升级:新的PC gitlab局域网搭建流程 FastMail迁移至GMail+Cloudflare Email Routing 读《黑客与画家》 leetcode 第 391 场周赛 Astro添加过渡后DarkModeToggle按钮失效 nuxt3使用echarts5渲染中国地图 人生刻度 又到凤凰花朵开放的时候 2023-05-10 实习结束 2023-04-26 广州博物馆游记 YOASOBI「たぶん」官方音乐视频 风灵玉秀-发如雪 带我的老哥离职了 从p10k转向Starship lunarvim国内安装踩坑记录 什么是对称加密非对称加密、密钥交换、数字签名、证书 强调体验的一种思考时间的方式 ArchLinux使用vscode编写latex报错The font "FontAwesome" cannot be found ArchLinux安装(移动硬盘)流程 yay一个或多个文件没有通过有效性检查! 2022年终 hugo建站伊始 clash设置relay前置代理(校园网破解改进记录) 群青 · YOASOBI · Ayase 华为 matepad pro 11使用体验 Nginx使用acme.sh免费安装ssl证书 永远属于你的安娜 在线 童年趣事 童心,是比野心更难得的梦想 2021年终总结 基于jeeSite的软件测试课程作业 流程记录 Linux不同用户安装不同版本jdk Wifi4更换Wifi6路由器的使用体验 Flask 上传图片并灰度显示 玩客云刷机debain个人记录 jython 简单入门 Jenkins 个人搭建流程记录 集成邮件系统(qq邮箱),gitlab服务器,freestyle风格 在Web项目中配置Log4j --指南-- Codeforces Round 753 (Div. 3) ABCDE 浅谈fork函数 JavaWeb servlet 使用Cookie记录用户访问次数 Codeforces Round 2021牛客多校7 I xay loves or 2021牛客多校9 H Happy Number 2021牛客多校8 D OR 2021牛客多校5 B Boxes 2021牛客多校5 H Holding Two 2021牛客多校2 D Er Ba Game 2021牛客多校1 F Find 3-friendly Integers 2021牛客多校1 B Ball Dropping 记人生第一次投简历和笔试 原型模式 2021-2-20 雨时随记 关于一维差分数组的例子 halo个人建站 关于手机ping电脑和电脑ping手机 泛型类简单理解 CodeForces - 849C From Y to Y 2020牛客国庆集训派对day3 Leftbest 约瑟夫环问题---2020牛客国庆集训派对day2 AKU NEGARAKU mysql 5.7 忘记密码如何更改 CF 1099B Squares and Segments CF 998A Balloons CF 998B Cutting 链表应用之多项式相加 CF 1150A Stock Arbitraging CF 1199A City Day CF 1199B Water Lily CF 982A Row CF 934A A Compatible Pair CF 629B Far Relative’s Problem 651A Joysticks 651B Beautiful Paintings
Educational Codeforces Round 114 (Rated for Div. 2) ABC
2021-09-21 · via Sehnsucht

A. Regular Bracket Sequences

time limit per test

2 seconds

memory limit per test

512 megabytes

input

standard input

output

standard output

A bracket sequence is a string containing only characters ”(” and ”)”. A regular bracket sequence is a bracket sequence that can be transformed into a correct arithmetic expression by inserting characters “1” and ”+” between the original characters of the sequence. For example, bracket sequences ”()()” and ”(())” are regular (the resulting expressions are: “(1)+(1)” and “((1+1)+1)”), and ”)(”, ”(” and ”)” are not.

You are given an integer nn. Your goal is to construct and print exactly nn different regular bracket sequences of length 2n2n.

Input

The first line contains one integer tt (1≤t≤501≤t≤50) — the number of test cases.

Each test case consists of one line containing one integer nn (1≤n≤501≤n≤50).

Output

For each test case, print nn lines, each containing a regular bracket sequence of length exactly 2n2n. All bracket sequences you output for a testcase should be different (though they may repeat in different test cases). If there are multiple answers, print any of them. It can be shown that it’s always possible.

Example

input

Copy

3
3
1
3

output

Copy

()()()
((()))
(()())
()
((()))
(())()
()(())

解释与代码

简单构造,我的想法是,先存到数组里,

每次打印完,

把()()()中相邻的)(进行互换

#include <cstdio>
#include <cstdlib>
#include <cstring>
#include <cmath>
#include <algorithm>
#include <string>
#include <stack>
#include <iostream>
#include <sstream>
#include <set>
#include <map>
#include <queue>
#include <bitset>
#include <vector>
#include <limits.h>
#include <assert.h>
#include <functional>
#include <numeric>
#include <ctime>
//#include <ext/pb_ds/assoc_container.hpp>
//#include <ext/pb_ds/tree_policy.hpp>
#define pb          push_back
#define ppb         pop_back
#define lbnd        lower_bound
#define ubnd        upper_bound
#define endl        '\n'
#define mll         map<ll,ll>
#define msl         map<string,ll>
#define mls         map<ll, string>
#define rep(i,a,b)  for(ll i=a;i<b;i++)
#define repr(i,a,b) for(ll i=b-1;i>=a;i--)
#define trav(a, x)  for(auto& a : x)
#define pll         pair<ll,ll>
#define vl          vector<ll>
#define vll         vector<pair<ll, ll>>
#define vs          vector<string>
#define all(a)      (a).begin(),(a).end()
#define F           first
#define S           second
#define sz(x)       (ll)x.size()
#define hell        1000000007
#define DEBUG       cerr<<"/n>>>I'm Here<<</n"<<endl;
#define display(x)  trav(a,x) cout<<a<<" ";cout<<endl;
#define what_is(x)  cerr << #x << " is " << x << endl;
#define ini(a)      memset(a,0,sizeof(a))
#define ini2(a,b)   memset(a,b,sizeof(a))
//#define rep(i,a,b)  for(int i=a;i<=b;i++)
#define case        ll T;read(T);for(ll Q=1;Q<=T;Q++)
#define lowbit(x)   x&(-x)
#define pr          printf
#define sc          scanf
//#define _           0
#define ordered_set tree<ll, null_type,less<ll>, rb_tree_tag,tree_order_statistics_node_update>
#define FAST ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0);
#define DBG(x) \
    (void)(cout << "L" << __LINE__ \
    << ": " << #x << " = " << (x) << '\n')
#define TIE \
    cin.tie(0);cout.tie(0);\
    ios::sync_with_stdio(false);
//#define long long int

//using namespace __gnu_pbds;

using namespace std;
typedef long long ll;
typedef unsigned long long ull;
const double PI    = acos(-1.0);
const double eps   = 1e-6;
const int    INF   = 0x3f3f3f3f;
const ll     LLINF = 0x3f3f3f3f3f3f3f3f;

template <typename T>
void read(T &x) {
    x = 0;
    int f = 1;
    char ch = getchar();
    while (!isdigit(ch)) {
        if (ch == '-') f = -1;
        ch = getchar();
    }
    while (isdigit(ch)) {
        x = x * 10 + (ch ^ 48);
        ch = getchar();
    }
    x *= f;
    return;
}

inline void write(ll x) {
    if(x<0) putchar('-'), x=-x;
    if(x>9) write(x/10);
    putchar(x%10+'0');
}

const ll     LN    = 5;
const int    maxn  = 205;
const int    N     = 31;

char ch[2] = {'(',')'};
char cb[10009];

void solve() {
	int n;
	cin>>n;
	for (int i=0; i<n*2; i++) {
		cb[i] = ch[i%2];
	}
	cb[n*2] = '\0';
	for (int i=0; i<n; i++) {
		
		if (i!=0) {
			swap(cb[2*i], cb[2*i-1]);
		}
		cout<<cb<<endl;
	}
}

int main()
{
//	TIE;
//    #ifndef ONLINE_JUDGE
//    freopen ("input.txt","r",stdin);
//    #else
//    #endif
//	solve();
    case{solve();}
//    case{cout<<"Case "<<Q<<":"<<endl;solve();}
//	return ~~(0^_^0);
}

B. Combinatorics Homework

time limit per test

2 seconds

memory limit per test

256 megabytes

input

standard input

output

standard output

You are given four integer values aa, bb, cc and mm.

Check if there exists a string that contains:

  • aa letters ‘A’;
  • bb letters ‘B’;
  • cc letters ‘C’;
  • no other letters;
  • exactly mm pairs of adjacent equal letters (exactly mm such positions ii that the ii-th letter is equal to the (i+1)(i+1)-th one).

Input

The first line contains a single integer tt (1≤t≤1041≤t≤104) — the number of testcases.

Each of the next tt lines contains the description of the testcase — four integers aa, bb, cc and mm (1≤a,b,c≤1081≤a,b,c≤108; 0≤m≤1080≤m≤108).

Output

For each testcase print “YES” if there exists a string that satisfies all the requirements. Print “NO” if there are no such strings.

You may print every letter in any case you want (so, for example, the strings yEs, yes, Yes and YES will all be recognized as positive answer).

Example

input

Copy

3
2 2 1 0
1 1 1 1
1 2 3 2

output

Copy

YES
NO
YES

Note

In the first testcase strings “ABCAB” or “BCABA” satisfy the requirements. There exist other possible strings.

In the second testcase there’s no way to put adjacent equal letters if there’s no letter that appears at least twice.

In the third testcase string “CABBCC” satisfies the requirements. There exist other possible strings.

解释与代码

其实就是几种情况,if else全部写出就行

有两个边界值

例如

6 0 0 3

这样是不行的,不够也不行,超出也不行

#include <cstdio>
#include <cstdlib>
#include <cstring>
#include <cmath>
#include <algorithm>
#include <string>
#include <stack>
#include <iostream>
#include <sstream>
#include <set>
#include <map>
#include <queue>
#include <bitset>
#include <vector>
#include <limits.h>
#include <assert.h>
#include <functional>
#include <numeric>
#include <ctime>
//#include <ext/pb_ds/assoc_container.hpp>
//#include <ext/pb_ds/tree_policy.hpp>
#define pb          push_back
#define ppb         pop_back
#define lbnd        lower_bound
#define ubnd        upper_bound
#define endl        '\n'
#define mll         map<ll,ll>
#define msl         map<string,ll>
#define mls         map<ll, string>
#define rep(i,a,b)  for(ll i=a;i<b;i++)
#define repr(i,a,b) for(ll i=b-1;i>=a;i--)
#define trav(a, x)  for(auto& a : x)
#define pll         pair<ll,ll>
#define vl          vector<ll>
#define vll         vector<pair<ll, ll>>
#define vs          vector<string>
#define all(a)      (a).begin(),(a).end()
#define F           first
#define S           second
#define sz(x)       (ll)x.size()
#define hell        1000000007
#define DEBUG       cerr<<"/n>>>I'm Here<<</n"<<endl;
#define display(x)  trav(a,x) cout<<a<<" ";cout<<endl;
#define what_is(x)  cerr << #x << " is " << x << endl;
#define ini(a)      memset(a,0,sizeof(a))
#define ini2(a,b)   memset(a,b,sizeof(a))
//#define rep(i,a,b)  for(int i=a;i<=b;i++)
#define case        ll T;read(T);for(ll Q=1;Q<=T;Q++)
#define lowbit(x)   x&(-x)
#define pr          printf
#define sc          scanf
//#define _           0
#define ordered_set tree<ll, null_type,less<ll>, rb_tree_tag,tree_order_statistics_node_update>
#define FAST ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0);
#define DBG(x) \
    (void)(cout << "L" << __LINE__ \
    << ": " << #x << " = " << (x) << '\n')
#define TIE \
    cin.tie(0);cout.tie(0);\
    ios::sync_with_stdio(false);
//#define long long int

//using namespace __gnu_pbds;

using namespace std;
typedef long long ll;
typedef unsigned long long ull;
const double PI    = acos(-1.0);
const double eps   = 1e-6;
const int    INF   = 0x3f3f3f3f;
const ll     LLINF = 0x3f3f3f3f3f3f3f3f;

template <typename T>
void read(T &x) {
    x = 0;
    int f = 1;
    char ch = getchar();
    while (!isdigit(ch)) {
        if (ch == '-') f = -1;
        ch = getchar();
    }
    while (isdigit(ch)) {
        x = x * 10 + (ch ^ 48);
        ch = getchar();
    }
    x *= f;
    return;
}

inline void write(ll x) {
    if(x<0) putchar('-'), x=-x;
    if(x>9) write(x/10);
    putchar(x%10+'0');
}

const ll     LN    = 5;
const int    maxn  = 205;
const int    N     = 31;

void solve() {
	int a, b, c, m;
	cin>>a>>b>>c>>m;
	int ans = 0;
	if (a!=0)
	ans += a-1;
	if (b!=0)
	ans += b-1;
	if (c!=0)
	ans += c-1;
	if (ans >= m) {
		int d = max(a,max(b,c));
		if (d == a) {
			d -= (b+c);
		} else if (d == b) {
			d -= (a+c);
		} else if (d == c) {
			d -= (b+a);
		}
		if (d-1 <= m) {
			cout<<"YES"<<endl;
		} else {
			cout<<"NO"<<endl;
		}
	} else {
		cout<<"NO"<<endl;
	}
}

int main()
{
//	TIE;
//    #ifndef ONLINE_JUDGE
//    freopen ("input.txt","r",stdin);
//    #else
//    #endif
//	solve();
    case{solve();}
//    case{cout<<"Case "<<Q<<":"<<endl;solve();}
//	return ~~(0^_^0);
}

C. Slay the Dragon

time limit per test

2 seconds

memory limit per test

256 megabytes

input

standard input

output

standard output

Recently, Petya learned about a new game “Slay the Dragon”. As the name suggests, the player will have to fight with dragons. To defeat a dragon, you have to kill it and defend your castle. To do this, the player has a squad of nn heroes, the strength of the ii-th hero is equal to aiai.

According to the rules of the game, exactly one hero should go kill the dragon, all the others will defend the castle. If the dragon’s defense is equal to xx, then you have to send a hero with a strength of at least xx to kill it. If the dragon’s attack power is yy, then the total strength of the heroes defending the castle should be at least yy.

The player can increase the strength of any hero by 11 for one gold coin. This operation can be done any number of times.

There are mm dragons in the game, the ii-th of them has defense equal to xixi and attack power equal to yiyi. Petya was wondering what is the minimum number of coins he needs to spend to defeat the ii-th dragon.

Note that the task is solved independently for each dragon (improvements are not saved).

Input

The first line contains a single integer nn (2≤n≤2⋅1052≤n≤2⋅105) — number of heroes.

The second line contains nn integers a1,a2,…,ana1,a2,…,an (1≤ai≤10121≤ai≤1012), where aiai is the strength of the ii-th hero.

The third line contains a single integer mm (1≤m≤2⋅1051≤m≤2⋅105) — the number of dragons.

The next mm lines contain two integers each, xixi and yiyi (1≤xi≤1012;1≤yi≤10181≤xi≤1012;1≤yi≤1018) — defense and attack power of the ii-th dragon.

Output

Print mm lines, ii-th of which contains a single integer — the minimum number of coins that should be spent to defeat the ii-th dragon.

Example

input

Copy

4
3 6 2 3
5
3 12
7 9
4 14
1 10
8 7

output

Copy

1
2
4
0
2

Note

To defeat the first dragon, you can increase the strength of the third hero by 11, then the strength of the heroes will be equal to [3,6,3,3][3,6,3,3]. To kill the dragon, you can choose the first hero.

To defeat the second dragon, you can increase the forces of the second and third heroes by 11, then the strength of the heroes will be equal to [3,7,3,3][3,7,3,3]. To kill the dragon, you can choose a second hero.

To defeat the third dragon, you can increase the strength of all the heroes by 11, then the strength of the heroes will be equal to [4,7,3,4][4,7,3,4]. To kill the dragon, you can choose a fourth hero.

To defeat the fourth dragon, you don’t need to improve the heroes and choose a third hero to kill the dragon.

To defeat the fifth dragon, you can increase the strength of the second hero by 22, then the strength of the heroes will be equal to [3,8,2,3][3,8,2,3]. To kill the dragon, you can choose a second hero.

解释与代码

贪心加二分

不二分会超时

贪心情况:找到第一个大于等于龙攻击力的人,然后判断金额,然后找这个人的前一个人(因为贪心),再次判断即可

#include <cstdio>
#include <cstring>
#include <cstdlib>
#include <cstring>
#include <cmath>
#include <algorithm>
#include <string>
#include <iostream>
#include <sstream>
#include <set>
#include <map>
#include <queue>
#include <bitset>
#include <vector>
#include <limits.h>
#include <assert.h>
#include <functional>
#include <numeric>
#include <ctime>
//#include <ext/pb_ds/assoc_container.hpp>
//#include <ext/pb_ds/tree_policy.hpp>
#define pb          push_back
#define ppb         pop_back
#define lbnd        lower_bound
#define ubnd        upper_bound
#define endl        '\n'
#define trav(a, x)  for(auto& a : x)
#define all(a)      (a).begin(),(a).end()
#define F           first
#define S           second
#define sz(x)       (ll)x.size()
#define hell        1000000007
#define DEBUG       cerr<<"/n>>>I'm Here<<</n"<<endl;
#define display(x)  trav(a,x) cout<<a<<" ";cout<<endl;
#define what_is(x)  cerr << #x << " is " << x << endl;
#define ini(a)      memset(a,0,sizeof(a))
#define case        ll T;read(T);for(ll Q=1;Q<=T;Q++)
#define lowbit(x)   x&(-x)
#define pr          printf
#define sc          scanf
#define _           0
#define FAST ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0);
#define DBG(x) \
    (void)(cout << "L" << __LINE__ \
    << ": " << #x << " = " << (x) << '\n')
#define TIE \
    cin.tie(0);cout.tie(0);\
    ios::sync_with_stdio(false);
//#define long long int

//using namespace __gnu_pbds;

template <typename T>
void read(T &x) {
    x = 0;
    int f = 1;
    char ch = getchar();
    while (!isdigit(ch)) {
        if (ch == '-') f = -1;
        ch = getchar();
    }
    while (isdigit(ch)) {
        x = x * 10 + (ch ^ 48);
        ch = getchar();
    }
    x *= f;
    return;
}

inline void write(long long x) {
    if(x<0) putchar('-'), x=-x;
    if(x>9) write(x/10);
    putchar(x%10+'0');
    putchar('\n');
}

using namespace std;
typedef long long ll;
typedef unsigned long long ull;
const double PI    = acos(-1.0);
const double eps   = 1e-6;
const int    INF   = 0x3f3f3f3f;
const ll     LLINF = 0x3f3f3f3f3f3f3f3f;
const int    maxn  = 200009;
const ll     N     = 5;

ll arr[maxn];

void solve(){
	ll n, m, x, y, sum = 0, ans = LLINF;
	cin>>n;
	for (int i=0; i<n; i++) cin>>arr[i], sum += arr[i];
	sort(arr, arr+n);
	cin>>m;
	while (m--) {
		ans = LLINF;
		cin>>x>>y;
		ll p = lbnd(arr, arr+n, x) - arr;
		if (p < n) {
			ll sw = sum - arr[p];
			if (y - sw > 0) {
				ans = min(ans, y - sw);
			} else {
				ans = min(ans, 0LL);
			}
		}
		if (p != 0) {
			ll sw = sum - arr[p-1];
			ll ww = x - arr[p-1];
			if (ww < 0) {
				ww = 0;
			}
			if (y - sw > 0) {
				ans = min(ans, y - sw + ww);
			} else {
				ans = min(ans, (ll)ww);
			}
		}
		cout<<ans<<endl;
	}
}

int main()
{
	TIE;
    #ifndef ONLINE_JUDGE
//    freopen ("in.txt" , "r", stdin );
//    freopen ("out.txt", "w", stdout);
    #else
    #endif
	solve();
//    case{solve();}
//    case{cout<<"Case "<<Q<<":"<<endl;solve();}
	return ~~(0^_^0);
}