1 second
256 megabytes
standard input
standard output
Vasiliy lives at point (a, b) of the coordinate plane. He is hurrying up to work so he wants to get out of his house as soon as possible. New app suggested n available Beru-taxi nearby. The i-th taxi is located at point (xi, yi) and moves with a speed vi.
Consider that each of n drivers will move directly to Vasiliy and with a maximum possible speed. Compute the minimum time when Vasiliy will get in any of Beru-taxi cars.
The first line of the input contains two integers a and b ( - 100 ≤ a, b ≤ 100) — coordinates of Vasiliy's home.
The second line contains a single integer n (1 ≤ n ≤ 1000) — the number of available Beru-taxi cars nearby.
The i-th of the following n lines contains three integers xi, yi and vi ( - 100 ≤ xi, yi ≤ 100, 1 ≤ vi ≤ 100) — the coordinates of the i-th car and its speed.
It's allowed that several cars are located at the same point. Also, cars may be located at exactly the same point where Vasiliy lives.
Print a single real value — the minimum time Vasiliy needs to get in any of the Beru-taxi cars. You answer will be considered correct if its absolute or relative error does not exceed 10 - 6.
Namely: let's assume that your answer is a, and the answer of the jury is b. The checker program will consider your answer correct, if 
.
0 0
2
2 0 1
0 2 2
1.00000000000000000000
1 3
3
3 3 2
-2 3 6
-2 7 10
0.50000000000000000000
In the first sample, first taxi will get to Vasiliy in time 2, and second will do this in time 1, therefore 1 is the answer.
题意:起始点为(a,b) 给n辆出租车的位置以及速度 问你最短的时间出租车到达(a,b)
题解:暴力 注意精度
/******************************
code by drizzle
blog: www.cnblogs.com/hsd-/
^ ^ ^ ^
O O
******************************/
#include<bits/stdc++.h>
#include<iostream>
#include<cstring>
#include<cstdio>
#include<map>
#include<algorithm>
#include<queue>
#define ll __int64
using namespace std;
double a,b;
int n;
struct node
{
double x,y,v;
}N[];
double ans=;
int main()
{
ans=;
scanf("%lf %lf",&a,&b);
scanf("%d",&n);
for(int i=;i<=n;i++)
scanf("%lf %lf %lf",&N[i].x,&N[i].y,&N[i].v);
for(int i=;i<=n;i++)
{
double exm=0.0;
exm=sqrt((a-N[i].x)*(a-N[i].x)+(b-N[i].y)*(b-N[i].y))/N[i].v;
if((ans-exm)>0.000001)
ans=exm;
}
printf("%.15f\n",ans);
return ;
}
In the second sample, cars 2 and 3 will arrive simultaneously.
2 seconds
256 megabytes
standard input
standard output
Vasiliy likes to rest after a hard work, so you may often meet him in some bar nearby. As all programmers do, he loves the famous drink "Beecola", which can be bought in n different shops in the city. It's known that the price of one bottle in the shop i is equal to xi coins.
Vasiliy plans to buy his favorite drink for q consecutive days. He knows, that on the i-th day he will be able to spent mi coins. Now, for each of the days he want to know in how many different shops he can buy a bottle of "Beecola".
The first line of the input contains a single integer n (1 ≤ n ≤ 100 000) — the number of shops in the city that sell Vasiliy's favourite drink.
The second line contains n integers xi (1 ≤ xi ≤ 100 000) — prices of the bottles of the drink in the i-th shop.
The third line contains a single integer q (1 ≤ q ≤ 100 000) — the number of days Vasiliy plans to buy the drink.
Then follow q lines each containing one integer mi (1 ≤ mi ≤ 109) — the number of coins Vasiliy can spent on the i-th day.
Print q integers. The i-th of them should be equal to the number of shops where Vasiliy will be able to buy a bottle of the drink on the i-th day.
5
3 10 8 6 11
4
1
10
3
11
0
4
1
5
On the first day, Vasiliy won't be able to buy a drink in any of the shops.
On the second day, Vasiliy can buy a drink in the shops 1, 2, 3 and 4.
On the third day, Vasiliy can buy a drink only in the shop number 1.
Finally, on the last day Vasiliy can buy a drink in any shop.
题意:给你n个值 q组查询m 输出这n个值中小于等于m的数量
题解:排序之后 二分
/******************************
code by drizzle
blog: www.cnblogs.com/hsd-/
^ ^ ^ ^
O O
******************************/
#include<bits/stdc++.h>
#include<iostream>
#include<cstring>
#include<cstdio>
#include<map>
#include<algorithm>
#include<queue>
#define ll __int64
using namespace std;
int n;
int a[];
int q,m;
int main()
{
scanf("%d",&n);
for(int i=;i<n;i++)
scanf("%d",&a[i]);
sort(a,a+n);
scanf("%d",&q);
for(int i=;i<=q;i++)
{
scanf("%d",&m);
int pos=;
pos=upper_bound(a,a+n,m)-a;
printf("%d\n",pos);
}
return ;
}
1 second
256 megabytes
standard input
standard output
Vasiliy is fond of solving different tasks. Today he found one he wasn't able to solve himself, so he asks you to help.
Vasiliy is given n strings consisting of lowercase English letters. He wants them to be sorted in lexicographical order (as in the dictionary), but he is not allowed to swap any of them. The only operation he is allowed to do is to reverse any of them (first character becomes last, second becomes one before last and so on).
To reverse the i-th string Vasiliy has to spent ci units of energy. He is interested in the minimum amount of energy he has to spent in order to have strings sorted in lexicographical order.
String A is lexicographically smaller than string B if it is shorter than B (|A| < |B|) and is its prefix, or if none of them is a prefix of the other and at the first position where they differ character in A is smaller than the character in B.
For the purpose of this problem, two equal strings nearby do not break the condition of sequence being sorted lexicographically.
The first line of the input contains a single integer n (2 ≤ n ≤ 100 000) — the number of strings.
The second line contains n integers ci (0 ≤ ci ≤ 109), the i-th of them is equal to the amount of energy Vasiliy has to spent in order to reverse the i-th string.
Then follow n lines, each containing a string consisting of lowercase English letters. The total length of these strings doesn't exceed 100 000.
If it is impossible to reverse some of the strings such that they will be located in lexicographical order, print - 1. Otherwise, print the minimum total amount of energy Vasiliy has to spent.
2
1 2
ba
ac
1
3
1 3 1
aa
ba
ac
1
2
5 5
bbb
aaa
-1
2
3 3
aaa
aa
-1
In the second sample one has to reverse string 2 or string 3. To amount of energy required to reverse the string 3 is smaller.
In the third sample, both strings do not change after reverse and they go in the wrong order, so the answer is - 1.
In the fourth sample, both strings consists of characters 'a' only, but in the sorted order string "aa" should go before string "aaa", thus the answer is - 1.
题意:给你n个字符串 对于每个字符串进行反转操作会有一个权值 为了使得这n个字符串的字典升序
输出的最小的权值和 ,如果不存在则输出-1
题解:dp[i][1]表示第i个字符串反转的最优解
dp[i][0]表示第i个字符串不反转的最优解
/******************************
code by drizzle
blog: www.cnblogs.com/hsd-/
^ ^ ^ ^
O O
******************************/
#include<bits/stdc++.h>
#include<iostream>
#include<cstring>
#include<cstdio>
#include<map>
#include<algorithm>
#include<queue>
#define ll __int64
using namespace std;
int n;
ll w[];
string c[],s[];
ll dp[][];
ll ans;
int main()
{
scanf("%d",&n);
for(int i=;i<=n;i++)
scanf("%I64d",&w[i]);
for(int i=;i<=n;i++){
cin>>c[i];
s[i]=c[i];
reverse(s[i].begin(),s[i].end());
}
memset(dp,,sizeof(dp));
dp[][]=;
dp[][]=w[];
for(int i=;i<=n;i++)
{
dp[i][]=1e18;
dp[i][]=1e18;
if(c[i]>=c[i-]) {
dp[i][]=dp[i-][];
}
if(c[i]>=s[i-]){
dp[i][]=min(dp[i][],dp[i-][]);
}
if(s[i]>=c[i-]){
dp[i][]=dp[i-][]+w[i];
}
if(s[i]>=s[i-]){
dp[i][]=min(dp[i][],dp[i-][]+w[i]);
}
}
ans=min(dp[n][],dp[n][]);
if(ans==1e18)
cout<<"-1"<<endl;
else
cout<<ans<<endl;
return ;
}
Codeforces Round #367 (Div. 2) A B C 暴力 二分 dp(字符串的反转)的更多相关文章
-
Codeforces Round #345 (Div. 2) D. Image Preview 暴力 二分
D. Image Preview 题目连接: http://www.codeforces.com/contest/651/problem/D Description Vasya's telephone ...
-
Codeforces Round #367 (Div. 2) D. Vasiliy&#39;s Multiset (0/1-Trie树)
Vasiliy's Multiset 题目链接: http://codeforces.com/contest/706/problem/D Description Author has gone out ...
-
Codeforces Round #367 (Div. 2) C. Hard problem(DP)
Hard problem 题目链接: http://codeforces.com/contest/706/problem/C Description Vasiliy is fond of solvin ...
-
Codeforces Round #367 (Div. 2) B. Interesting drink (模拟)
Interesting drink 题目链接: http://codeforces.com/contest/706/problem/B Description Vasiliy likes to res ...
-
Codeforces Round #367 (Div. 2) A. Beru-taxi (水题)
Beru-taxi 题目链接: http://codeforces.com/contest/706/problem/A Description Vasiliy lives at point (a, b ...
-
Codeforces Round #367 (Div. 2) D. Vasiliy&#39;s Multiset
题目链接:Codeforces Round #367 (Div. 2) D. Vasiliy's Multiset 题意: 给你一些操作,往一个集合插入和删除一些数,然后?x让你找出与x异或后的最大值 ...
-
Codeforces Round #367 (Div. 2) C. Hard problem
题目链接:Codeforces Round #367 (Div. 2) C. Hard problem 题意: 给你一些字符串,字符串可以倒置,如果要倒置,就会消耗vi的能量,问你花最少的能量将这些字 ...
-
Codeforces Round #367 (Div. 2) (A,B,C,D,E)
Codeforces Round 367 Div. 2 点击打开链接 A. Beru-taxi (1s, 256MB) 题目大意:在平面上 \(n\) 个点 \((x_i,y_i)\) 上有出租车,每 ...
-
Codeforces Round #365 (Div. 2) C - Chris and Road 二分找切点
// Codeforces Round #365 (Div. 2) // C - Chris and Road 二分找切点 // 题意:给你一个凸边行,凸边行有个初始的速度往左走,人有最大速度,可以停 ...
随机推荐
-
poj	3614
http://poj.org/problem?id=3614 题意:有n头奶牛想要晒太阳,但他们每个人对太阳都有不同的耐受程度,也就是说,太阳不能太大也不能太小,现在有一种防晒霜,涂抹这个防晒霜可以把 ...
-
【swift学习笔记】三.使用xib自定义UITableViewCell
使用xib自定义tableviewCell看一下效果图 1.自定义列 新建一个xib文件 carTblCell,拖放一个UITableViewCell,再拖放一个图片和一个文本框到tableviewc ...
-
Linux下后台程序完成自动输入密码等交互行为的例子
今天要开发一个定时任务,然后加入cron列表中.但是有个问题摆在眼前,脚本的执行中需要输入数据库密码: mysql -u root -p << SQL use db; set names ...
-
linux之pid文件
在命令行中经常看到*.pid文件 其实这些文件是在启动进程的时候系统给这个进程的master进程分配的进程号 比如/usr/local/nginx/logs/nginx.pid文件 打开这个文件会发现 ...
-
trove,测试,db小解析
# Copyright 2014 Tesora Inc.# All Rights Reserved.## Licensed under the Apache License, Version 2.0 ...
-
shell 之时间戳
vim 1.sh #/bin/bash##by cc read -p "Please input yourtime:" timea=$timeif [ $a != 0 ] then ...
-
PyCharm 项目删除
Pycharm 删除项目具体操作如下: 1.选择菜单 File close project 2.选择要删除的项目右上角选择× 3.找到项目所在目录,删除相应文件夹 之后再次打开pycharm 发现 ...
-
[Swift]LeetCode747. 至少是其他数字两倍的最大数 | Largest Number At Least Twice of Others
In a given integer array nums, there is always exactly one largest element. Find whether the largest ...
-
WPF效果(GIS三维篇)
二维的GIS已经被我玩烂了,紧接着就是三维了,哈哈!先来看看最简单的效果:
-
C++中数组定义及初始化
一.一维数组 静态 int array[100]; 定义了数组array,并未对数组进行初始化 静态 int array[100] = {1,2}: 定义并初始化了数组array 动态 int* ar ...