| Cutting Sticks |
You have to cut a wood stick into pieces. The most affordable company, The Analog Cutting Machinery, Inc. (ACM), charges money according to the length of the stick being cut. Their procedure of work requires that they only make one cut at a time.
It is easy to notice that different selections in the order of cutting can led to different prices. For example, consider a stick of length 10 meters that has to be cut at 2, 4 and 7 meters from one end. There are several choices. One can be cutting first at 2, then at 4, then at 7. This leads to a price of 10 + 8 + 6 = 24 because the first stick was of 10 meters, the resulting of 8 and the last one of 6. Another choice could be cutting at 4, then at 2, then at 7. This would lead to a price of 10 + 4 + 6 = 20, which is a better price.
Your boss trusts your computer abilities to find out the minimum cost for cutting a given stick.
Input
The input will consist of several input cases. The first line of each test case will contain a positive number l that represents the length of the stick to be cut. You can assume l < 1000. The next line will contain the number n ( n < 50) of cuts to be made.
The next line consists of n positive numbers ci ( 0 < ci < l) representing the places where the cuts have to be done, given in strictly increasing order.
An input case with l = 0 will represent the end of the input.
Output
You have to print the cost of the optimal solution of the cutting problem, that is the minimum cost of cutting the given stick. Format the output as shown below.
Sample Input
100 3 25 50 75 10 4 4 5 7 8 0
Sample Output
The minimum cutting is 200. The minimum cutting is 22.
题意:给定一段len长的木棍,有n个切割点,每个切割点切掉的花费是当前切割点所在木棍的长度,求最少的花费。
思路:这题我是把每个木棍分成已经切割好的状态,在从切割好进行复原,复原过程中用区间dp的方法记录花费。
状态转移方程为dp[i][j] = min{dp[i][k] + dp[k + 1][j] + he(当前要复原的长度)}。
代码:
#include <stdio.h>
#include <string.h>
#include <algorithm>
using namespace std;
int len, n, strick[55], i, j, k, l, sb, sbb, dp[55][55];
int min(int a, int b) {
return a < b ? a : b;
}
int main() {
while (~scanf("%d", &len) && len) {
sbb = 0;
memset(dp, 0, sizeof(dp));
scanf("%d", &n);
for (i = 1; i <= n; i ++) {
scanf("%d", &sb);
strick[i] = sb - sbb;
sbb = sb;
}
strick[++ n] = len - sb;
for (l = 1; l < n; l ++) {
for (i = 1; i <= n - l; i ++) {
j = i + l;
int sb = 999999999;
int he = 0;
for (k = i; k <= j; k ++)
he += strick[k];
for (k = i; k < j; k ++) {
sb = min(dp[i][k] + dp[k + 1][j] + he, sb);
}
dp[i][j] = sb;
}
}
printf("The minimum cutting is %d.
", dp[1][n]);
}
return 0;
}