poj 2886 Who Gets the Most Candies?

题目链接：http://poj.org/problem?id=2886

题目大意：N个孩子顺时针坐成一个圆圈且从1到N编号，每个孩子手中有一张标有非零整数的卡片。第K个孩子先出圈，如果他手中卡片上的数字A大于零，下一个出圈的是他左手边第A个孩子。否则，下一个出圈的是他右手边第(-A)个孩子。第p个出圈的孩子会得到F(p)个糖果，F(p)为p的因子数。求得到糖果数最多的是哪个孩子及得到多少糖果。

题目分析：

代码参考：

#include<cmath>#include<vector>#include<string>#include<cstdio>#include<cstring>#include<iostream>#include<algorithm>using namespace std;typedef long long LL;const int M = 500100;int num[M], dp[M];char s[500100][20];int a[37] = {1, 2, 4, 6, 12, 24, 36, 48, 60, 120, 180, 240, 360, 720, 840, 1260, 1680, 2520, 5040, 7560, 10080, 15120, 20160, 25200, 27720, 45360, 50400,             55440, 83160, 110880, 166320, 221760, 277200, 332640, 498960, 500001            };int b[37] = {1, 2, 3, 4, 6, 8, 9, 10, 12, 16, 18, 20, 24, 30, 32, 36, 40, 48, 60, 64, 72, 80, 84, 90, 96, 100, 108, 120, 128, 144, 160, 168, 180, 192, 200, 1314521};//打表ingstruct SegNode {int left, right, delay;void init(int a, int b){delay = b - a + 1;left = a;right = b;}} seg[M << 2];int L(int n){return n << 1;}int R(int n){return n << 1 | 1;}void build(int N, int a, int b){seg[N].init(a, b);if(a == b) { return ; }int mid = (a + b) >> 1;build(L(N), a, mid);build(R(N), mid + 1, b);}int update(int N, int id){seg[N].delay--;if(seg[N].left == seg[N].right) { return seg[N].left; }//找到了所在位置if(seg[L(N)].delay >= id) { return update(L(N), id); }else { return update(R(N), id - seg[L(N)].delay); }}int main(){int n, sum, i, k;while(~scanf("%d%d", &n, &k)) {i = 0;int id = 0, mxn = 0, ki;while(a[i] <= n) {i++;}id = a[i - 1];mxn = b[i - 1];build(1, 1, n);for(i = 1; i <= n; ++i) {scanf("%s%d", s[i], &num[i]);}for(i = 0; i < id; ++i) {n--;//人数减少了一个ki = update(1, k);//走的是哪一个if(n == 0) { break; }//人都走完了就结束if(num[ki] > 0) {//如果要走的那个人手里的牌是正数k = (k + num[ki] - 2) % n + 1;} else {//如果要走的那个人手里的牌是负数k = ((k - 1 + num[ki]) % n + n) % n + 1;}}printf("%s %d\n", s[ki], mxn);}return 0;}