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#include <bits/stdc++.h>
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using namespace std;
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const int N = 410; // 准备两倍的空间
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const int INF = 0x3f3f3f3f;
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int n; // n个节点
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int s[N]; // 前缀和
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int a[N]; // 记录每个节点的石子数量
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int f[N][N]; // 区间DP的数组(最大值)
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int g[N][N]; // 区间DP的数组(最小值)
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// 环形DP:通用办法
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int main() {
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scanf("%d", &n);
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for (int i = 1; i <= n; i++) scanf("%d", &a[i]), a[i + n] = a[i]; // 复制后半段的数组,构建一个长度为2*n的数组,环形DP问题的处理技巧
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// 预处理前缀和
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for (int i = 1; i <= n * 2; i++) s[i] = s[i - 1] + a[i];
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// 预求最小,先放最大
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memset(f, 0x3f, sizeof f);
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// 预求最大,先放最小
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memset(g, -0x3f, sizeof g);
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// len=1时,代价0
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for (int i = 1; i <= 2 * n; i++) f[i][i] = g[i][i] = 0;
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// 区间DP的迭代式经典写法
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for (int len = 2; len <= n; len++) // 枚举区间长度
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for (int l = 1; l + len - 1 <= n * 2; l++) { // 枚举左端点
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// 计算出右端点
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int r = l + len - 1;
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// 枚举分界点k
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for (int k = l; k < r; k++) {
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f[l][r] = min(f[l][r], f[l][k] + f[k + 1][r] + s[r] - s[l - 1]);
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g[l][r] = max(g[l][r], g[l][k] + g[k + 1][r] + s[r] - s[l - 1]);
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}
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}
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// 因为从哪个位置断开环都是可行的,所以,我们依次检查一下
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int Min = INF, Max = -INF;
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for (int i = 1; i <= n; i++) {
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Min = min(Min, f[i][i + n - 1]);
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Max = max(Max, g[i][i + n - 1]);
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}
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// 输出
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printf("%d\n%d\n", Min, Max);
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return 0;
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}
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