Codeforces Round #485 (Div. 2) C - Three displays (DP)987C

It is the middle of 2018 and Maria Stepanovna, who lives outside Krasnokamensk (a town in Zabaikalsky region), wants to rent three displays to highlight an important problem.

There are $n$ displays placed along a road, and the $i$ -th of them can display a text with font size $s_{i}$ only. Maria Stepanovna wants to rent such three displays with indices $i < j < k$ that the font size increases if you move along the road in a particular direction. Namely, the condition $s_{i} < s_{j} < s_{k}$ should be held.

The rent cost is for the $i$ -th display is $c_{i}$ . Please determine the smallest cost Maria Stepanovna should pay.

Input

The first line contains a single integer $n$ ( $3 \leq n \leq 3000$ ) — the number of displays.

The second line contains $n$ integers $s_{1}, s_{2}, \dots, s_{n}$ ( $1 \leq s_{i} \leq 10^{9}$ ) — the font sizes on the displays in the order they stand along the road.

The third line contains $n$ integers $c_{1}, c_{2}, \dots, c_{n}$ ( $1 \leq c_{i} \leq 10^{8}$ ) — the rent costs for each display.

Output

If there are no three displays that satisfy the criteria, print -1. Otherwise print a single integer — the minimum total rent cost of three displays with indices $i < j < k$ such that $s_{i} < s_{j} < s_{k}$ .

    Examples 
  
      input 
     
       Copy 
     
5
2 4 5 4 10
40 30 20 10 40

      output 
     
       Copy 
     
90

      input 
     
       Copy 
     
3
100 101 100
2 4 5

      output 
     
       Copy 
     
-1

      input 
     
       Copy 
     
10
1 2 3 4 5 6 7 8 9 10
10 13 11 14 15 12 13 13 18 13

      output 
     
       Copy 
     
33

Note

In the first example you can, for example, choose displays $1$ , $4$ and $5$ , because $s_{1} < s_{4} < s_{5}$ ( $2 < 4 < 10$ ), and the rent cost is $40 + 10 + 40 = 90$ .

In the second example you can't select a valid triple of indices, so the answer is -1.

一、原题地址

传送门

二、大致题意

取i<j<k,使得a[i]+a[j]+a[k]的值最小，求最小值。

三、思路

先处理n2处理出取两个数的时候的最小情况，接着再跑一个n2处理取第三个数和前两个数加和最小的情况相加。

四、代码

#include<iostream>
#include<cstdio>
#include<cstdlib>
#include<cstring>
#include<cmath>
#include<string>
#include<algorithm>
#include<vector>
#include<queue>
#include<set>
#include<map>
#include<stack>
using namespace std;
const int inf = 0x3f3f3f3f;
#define LL long long int 
long long  gcd(long long  a, long long  b) { return a == 0 ? b : gcd(b % a, a); }



int n;
int c[3005], v[3005];
int dp[3005];
bool vis[3005];
int main()
{
	scanf("%d", &n);
	for (int i = 1; i <= n; i++)
		scanf("%d", &c[i]);
	for (int i = 1; i <= n; i++)
		scanf("%d", &v[i]);
	memset(vis, false, sizeof(vis));
	for (int i = 1; i <= n; i++)
	{
		int minn = inf;
		for (int j = i - 1; j >= 1; j--)
		{
			if (c[i] > c[j])
				minn = min(minn, v[j]);
		}
		if (minn != inf)
		{
			vis[i] = true;
			dp[i] = minn + v[i];
		}
	}
	int ans = inf;
	for (int i = 1; i <= n; i++)
	{
		for (int j = i - 1; j >= 1; j--)
		{
			if (vis[j] && c[i] > c[j])
			{
				ans = min(ans, dp[j] + v[i]);
			}
		}
	}
	if (ans != inf)
		printf("%d\n", ans);
	else
		printf("-1\n");
	getchar();
	getchar();
}