[Bzoj 2724] [Violet 6] Dandelion "sub-block"

Source: Internet
Author: User

Title Link: BZOJ-2724

Problem analysis

This problem and BZOJ-2821 poetry that the problem is almost the same, is directly divided into blocks, each size sqrt (n), and then the number according to the first keyword, the position of the second keyword sorting, convenient after two points to find a value in a range of occurrences of the number of times.

Pre-F[I][J] is the answer from Block I to block J.

For each query, the whole block in the middle is done directly with the number of SQRTN levels that are preprocessed, at both ends, to find the number of occurrences of them in two points.

The complexity of each query is SQRTN * Logn.

Note: When writing code, there is a Cmp () that does not guarantee a two-way consistent error!! warning! Note that the Cmp_num () function in the code, even if you do not need a second keyword, because Num may have the same, you must add a second keyword to ensure that the results of the comparison are two-way consistent!

Code
#include <iostream> #include <cstdlib> #include <cstdio> #include <algorithm> #include < Cstring> #include <cmath>using namespace std;inline void Read (int &num) {char c; c = GetChar (); while (C < ' 0 ' | | C > ' 9 ') c = GetChar (); Num = C-' 0 '; c = GetChar (); while (c >= ' 0 ' && C <= ' 9 ') {num = num * + C-' 0 '; c = GetChar ();}} const int MAXN = 40000 + 5, maxblk = + 5;int N, M, Blksize, Totblk;int A[MAXN], TL[MAXN], T[MAXN], CNT[MAXN], l[maxblk ], r[maxblk], FIRST[MAXN], Last[maxn];int f[maxblk][maxblk], g[maxblk][maxblk];struct es{int Pos, Num, V;} e[maxn];inline bool Cmp_num (es e1, es E2) {if (E1. Num = = E2. Num) return E1. Pos < E2. Pos;return E1. Num < E2. Num;} inline bool Cmp_pos (es e1, es E2) {return e1. Pos < E2. Pos;} int getnum (int Num, int x, int y) {if (x > Y | | x > E[last[num]]. Pos | | Y < E[first[num]]. Pos) return 0;int L, R, Mid, p1, p2;l = First[num]; r = Last[num];while (L <= r) {mid = (L + r) >> 1;if(E[mid]. Pos >= x) {p1 = Mid;r = mid-1;} else L = mid + 1;} L = First[num]; r = Last[num];while (L <= r) {mid = (L + R) >> 1;if (E[mid]. Pos <= y) {P2 = Mid;l = mid + 1;} else R = mid-1;} return P2-P1 + 1;} int main () {Read (n); Read (m); for (int i = 1; I <= n; ++i) {Read (E[i]. Num); E[i]. Pos = i;} Sort (e + 1, e + n + 1, cmp_num), int v_index = 0;for (int i = 1; I <= n; ++i) {if (i = = 1 | | E[i]. Num > E[i-1]. Num) ++v_index; E[I].V = V_index; Tl[v_index] = E[i]. Num;}  Sort (e + 1, e + n + 1, Cmp_pos), for (int i = 1; I <= n; ++i) A[i] = E[i].v;sort (e + 1, e + n + 1, cmp_num); for (int i = 1; I <= N; ++i) {if (first[e[i].v] = = 0) FIRST[E[I].V] = i; LAST[E[I].V] = i;} blksize = (int) sqrt ((double) n); TOTBLK = (n-1)/blksize + 1;for (int i = 1; I <= totblk; ++i) {L[i] = (i-1) * blksize + 1; R[i] = i * blksize;} R[TOTBLK] = n;for (int i = 1; I <= totblk; ++i) {for (int j = 1; j <= N; ++j) cnt[j] = 0;f[i][i-1] = 0; g[i][i-1 ] = 0;for (int j = i; j <= totblk; + +)j) {F[i][j] = f[i][j-1];g[i][j] = g[i][j-1];for (int k = l[j]; k <= r[j]; ++k) {++cnt[a[k]];if (Cnt[a[k]] > F[i] [J] | | (Cnt[a[k] [= F[i][j] && a[k] < g[i][j])) {F[i][j] = cnt[a[k]]; G[i][j] = A[k];}}} memset (CNT, 0, sizeof (CNT)), for (int i = 1; I <= n; ++i) t[i] = -1;int L, r, X, Y, Ct, Ans, Cu; Ans = 0;for (int i = 1; I <= m; ++i) {Read (L); Read (r); l = (l + Ans-1)% n + 1; R = (r + Ans-1)% n + 1;if (L > R) Swap (L, r); x = (L-1)/blksize + 1; if (l! = l[x]) ++x;y = (r-1)/blksize + 1; if (r = r[y])--y;if (x > Y) {Ct = 0; Ans = 0;for (int j = l; J <= R; ++j) {++cnt[a[j]];if (Cnt[a[j]] > Ct | | (Cnt[a[j]] = = Ct && A[j] < Ans) {Ct = cnt[a[j]]; Ans = A[j];}} for (int j = l; J <= R; ++j)--cnt[a[j];} else {Ct = f[x][y]; Ans = g[x][y];for (int j = l; j < l[x]; ++j) {++cnt[a[j]];if (t[a[j]] = = 1) t[a[j]] = Getnum (A[j], l[x], r[y]); CU = Cnt[a[j]] + t[a[j]];if (cu > Ct | | (Cu = = Ct && A[j] < Ans)) {Ct = Cu; Ans =A[J];}} for (int j = r; j > R[y];--j) {++cnt[a[j]];if (t[a[j]] = = 1) t[a[j]] = Getnum (A[j], l[x], r[y]); CU = Cnt[a[j]] + t[a[j]];if (cu > Ct | | (Cu = = Ct && A[j] < Ans)) {Ct = Cu; Ans = A[j];}} for (int j = l; j < l[x]; ++j) {--cnt[a[j]]; T[A[J]] =-1;} for (int j = r; j > R[y];--j) {--cnt[a[j]]; T[A[J]] =-1;}} ans = Tl[ans];p rintf ("%d\n", ans); return 0;}

  

[Bzoj 2724] [Violet 6] Dandelion "sub-block"

Contact Us

The content source of this page is from Internet, which doesn't represent Alibaba Cloud's opinion; products and services mentioned on that page don't have any relationship with Alibaba Cloud. If the content of the page makes you feel confusing, please write us an email, we will handle the problem within 5 days after receiving your email.

If you find any instances of plagiarism from the community, please send an email to: info-contact@alibabacloud.com and provide relevant evidence. A staff member will contact you within 5 working days.

A Free Trial That Lets You Build Big!

Start building with 50+ products and up to 12 months usage for Elastic Compute Service

  • Sales Support

    1 on 1 presale consultation

  • After-Sales Support

    24/7 Technical Support 6 Free Tickets per Quarter Faster Response

  • Alibaba Cloud offers highly flexible support services tailored to meet your exact needs.