24h購物| | PChome| 登入
2014-01-24 11:14:57| 人氣4,616| 回應0 | 上一篇 | 下一篇

[UVA][dp] 10559 - Blocks

推薦 0 收藏 0 轉貼0 訂閱站台

Problem A

Blocks

Input: Standard Input

Output: Standard Output

Time Limit: 10 Seconds

 

Some of you may have played a game called 'Blocks'. There are n blocks in a row, each box has a color. Here is an example: Gold, Silver, Silver, Silver, Silver, Bronze, Bronze, Bronze, Gold.

 

The corresponding picture will be as shown below:

 

 

Figure 1

 

If some adjacent boxes are all of the same color, and both the box to its left(if it exists) and its right(if it exists) are of some other color, we call it a 'box segment'. There are 4 box segments. That is: gold, silver, bronze, gold. There are 1, 4, 3, 1 box(es) in the segments respectively.

 

Every time, you can click a box, then the whole segment containing that box DISAPPEARS. If that segment is composed of k boxes, you will get k*k points. for example, if you click on a silver box, the silver segment disappears, you got 4*4=16 points.

 

Now let’s look at the picture below:

 

Figure 2

 

The first one is OPTIMAL.

 

Find the highest score you can get, given an initial state of this game.

 

Input

The first line contains the number of tests t(1<=t<=15). Each case contains two lines. The first line contains an integer n(1<=n<=200), the number of boxes. The second line contains n integers, representing the colors of each box. The integers are in the range 1~n.

 

Output

For each test case, print the case number and the highest possible score.

 

Sample Input                             Output for Sample Input

2

9

1 2 2 2 2 3 3 3 1

1

1

Case 1: 29

Case 2: 1


Problemsetter: Rujia Liu, Member of Elite Problemsetters' Panel

Special Thanks: Cailiang Liu & Rongjing Xiang from IOI2003 China National Training Team


題目描述:

一維空間的消去遊戲,每次消去時都會將鄰近相同的消去,並且將剩餘的合併。

消去時獲得的分數為個數的平方。

求最大得分。

題目解法:

// 這題相當地難設計狀態,非常有挑戰性。

1. 先將輸入壓縮成連續的區段個數與顏色 A[], B[] // A : 顏色, B : 個數

2. 考慮最左邊的連續區段要消還是不消,如果不消的話,則將會與另一個串接之後消去。

dp[i][j][k] 表示區段 [i, j] 這時左邊接了 k 個與 A[i] 相同顏色的最大得分。

3. 如果消去最左邊,則得分 = (B[i] + k)^2 + dp[i+1][j][0]

4. 如果不消的話,得分 = max(dfs(i+1, pos-1, 0) + dfs(pos, j, k + B[i]))

則會與 A[pos] == A[i] // 顏色相同的那一串接在一起消去。

#include <stdio.h>
#include <algorithm>
using namespace std;
int A[205], B[205];
int dp[205][205][205]; //[l][r][___{l, r}]
char used[205][205][205] = {}, usedcases = 0;
int dfs(int l, int r, int sl) {
    if(l > r)    return 0;
    if(used[l][r][sl] == usedcases)
        return dp[l][r][sl];
    int &ret = dp[l][r][sl];
    ret = 0;
    used[l][r][sl] = usedcases;
    ret = dfs(l+1, r, 0) + (B[l] + sl)*(B[l] + sl);
    for(int i = l+1; i <= r; i++) {
        if(A[i] == A[l]) {
            ret = max(ret, dfs(l+1, i-1, 0) + dfs(i, r, sl + B[l]));
        }
    }
    return ret;
}
int main() {
    int testcase, n, m;
    int i, j, k, cases = 0;
    scanf("%d", &testcase);
    while(testcase--) {
        scanf("%d", &n);
        for(i = 0; i < n; i++)
            scanf("%d", &A[i]);
        for(i = 1, B[0] = 1, m = 0; i < n; i++) {
            if(A[m] == A[i])
                B[m]++;
            else {
                A[++m] = A[i], B[m] = 1;
            }
        }
        usedcases++;
        printf("Case %d: %d\n", ++cases, dfs(0, m, 0));
    }
    return 0;
}
/*
2
9
1 2 2 2 2 3 3 3 1
1
1
*/

台長: Morris
人氣(4,616) | 回應(0)| 推薦 (0)| 收藏 (0)| 轉寄
全站分類: 教育學習(進修、留學、學術研究、教育概況) | 個人分類: UVA |
此分類下一篇:[UVA] 10535 - Shooter
此分類上一篇:[UVA] 10504 - Hidden squares

是 (若未登入"個人新聞台帳號"則看不到回覆唷!)
* 請輸入識別碼:
請輸入圖片中算式的結果(可能為0) 
(有*為必填)
TOP
詳全文