BZOJ2821 作诗

黄四郎：三天之后，一定让县长过了作诗！
张麻子：汤师爷，他是原来过不了作诗的你现在也过不了作诗，你给翻译翻译，什么叫常数？
张麻子：翻译翻译，什么叫常数！
汤师爷：这还用翻译？都说了
张麻子：我让你翻译给我听，什么叫常数！
汤师爷：不用翻译，就是常数啊难道你听不懂什么叫常数？
张麻子：我就想让你翻译翻译，什么叫常数！
汤师爷：常数嘛！
张麻子：翻译出来给我听！什么他妈的叫常数！什么他妈的叫他妈的常数！
汤师爷：什么他妈的叫常数啊？
黄四郎：常数就是三天之后，你依然过不了作诗！明白了吗？
汤师爷：这就是常数啊！

#include <cstdio>
#include <cstring>
#include <cmath>
#include <iostream>
using namespace std;
const int N = 101000, M = 400;
int n, m, a[N], c[N], bg[N], en[N], col, st[M], ed[M], l, p, b[N], d[M][M], v[N], q[N];
void prework ()
{
    for (int i = 1; i <= n; i ++) c[a[i]] ++;
    for (int i = 1, tot = 0; i <= col; i ++) bg[i] = tot + 1, en[i] = tot + c[i], tot += c[i];
    memset (c, 0, sizeof c);
    for (int i = 1; i <= n; i ++) b[bg[a[i]] + c[a[i]]] = i, c[a[i]] ++;
    p = (int)sqrt (n * 1.0); l = n / p;
    for (int i = 1; i <= p; i ++)
        st[i] = (i - 1) * l + 1, ed[i] = i * l;
    if (ed[p] < n) st[p + 1] = p * l + 1, ed[p + 1] = n, p ++;
    for (int i = 1, now; i <= p; i ++)
    {
        memset (c, 0, sizeof c);now = 0;
        for (int j = i; j <= p; j ++)
        {
            for (int k = st[j]; k <= ed[j]; k ++)
            {
                c[a[k]] ++;
                if (c[a[k]] == 1) continue;
                if ((c[a[k]] & 1) == 1) now --;
                else if ((c[a[k]] & 1) == 0) now ++;
            }
            d[i][j] = now;
            //printf ("%d ", now);
        }
    }
}
inline int calc (int x, int st, int ed)
{
    int l = bg[x], r = en[x] + 1, m;
    while (l < r - 1)
    {
        m = l + r >> 1;
        if (b[m] <= st) l = m;
        else r = m;
    }
    if (b[l] < st)
        l ++;
    int t = l;
    l = bg[x], r = en[x] + 1;
    while (l < r - 1)
    {
        m = l + r >> 1;
        if (b[m] <= ed) l = m;
        else r = m;
    }
    if (b[l] > ed)
        l --;
    return l - t + 1;
}
int main ()
{
    freopen ("a.in", "r", stdin);
    freopen ("a.out", "w", stdout);
    scanf ("%d%d%d", &n, &col, &m);
    for (int i = 1; i <= n; i ++)
        scanf ("%d", &a[i]);
    prework ();
    for (int i = 1, L, R, ans (0), l, r, cnt; i <= m; i ++)
    {
        scanf ("%d%d", &l, &r);
        l = (l + ans) % n + 1;
        r = (r + ans) % n + 1;
        if (l > r)
            swap (l, r);
        for (L = 1; L <= p; L ++) if (st[L] >= l) break;
        for (R = p; R >= 1; R --) if (ed[R] <= r) break;
        if (L <= R)
        {
            ans = d[L][R];cnt = 0;
            for (int j = l; j <= st[L] - 1; j ++)
                if (v[a[j]] != i) v[a[j]] = i, c[a[j]] = 1, q[++ cnt] = a[j];
                else c[a[j]] ++;
            for (int j = ed[R] + 1; j <= r; j ++)
                if (v[a[j]] != i) v[a[j]] = i, c[a[j]] = 1, q[++ cnt] = a[j];
                else c[a[j]] ++;
            for (int i = 1; i <= cnt; i ++)
            {
                int tmp = calc (q[i], st[L], ed[R]);
                if (tmp == 0 && c[q[i]] && (c[q[i]] & 1) == 0) ans ++;
                else if (tmp && c[q[i]] && (tmp & 1) == 0 && (c[q[i]] & 1) == 1) ans --;
                else if (tmp && c[q[i]] && (tmp & 1) == 1 && (c[q[i]] & 1) == 1) ans ++;
            }
        }
        else
        {
            ans = 0;
            for (int j = l; j <= r; j ++)
                if (v[a[j]] != i) v[a[j]] = i, c[a[j]] = 1;
                else {
                    c[a[j]] ++;
                    if ((c[a[j]] & 1) == 1) ans --;
                    else ans ++;
                }
        }
        printf ("%d\n", ans);
    }
    return 0;
}