BZOJ 2724: [Violet 6]蒲公英( 分块 )
虽然AC了但是时间惨不忍睹...不科学....怎么会那么慢呢...
无修改的区间众数..分块, 预处理出Mode[i][j]表示第i块到第j块的众数, sum[i][j]表示前i块j出现次数(前缀和,事实上我是写后缀和..因为下标从0开始..), cnt[i][j][k]表示第i块中的前j个数中,k出现次数。预处理O(N1.5), 询问每次O(N0.5), 总O((N+M)N0.5)
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#include<cstdio>
#include<cstring>
#include<algorithm>
#include<cmath>
#include<cctype>
using namespace std;
typedef pair<int, int> pii;
const int maxb = 209;
const int maxn = 40009;
struct HASH {
int h[maxn], n;
HASH() : n(0) {
}
void Add(int v) {
h[n++] = v;
}
void Work() {
sort(h, h + n);
n = unique(h, h + n) - h;
}
inline int Hash(int v) {
return lower_bound(h, h + n, v) - h;
}
inline int _Hash(int v) {
return h[v];
}
} H;
int read() {
char c = getchar();
int ret = 0;
for(; !isdigit(c); c = getchar()) c = getchar();
for(; isdigit(c); c = getchar()) ret = ret * 10 + c - '0';
return ret;
}
int seq[maxn];
int sum[maxb][maxn], cnt[maxb][maxb][maxb], c[maxn], Id[maxb][maxn];
int N, Q, B, n;
pii Mode[maxb][maxb]; // <numId, cnt>
void Init() {
N = read(); Q = read();
B = (int) sqrt(N);
n = N / B;
if(N % B) n++;
for(int i = 0; i < N; i++)
H.Add(seq[i] = read());
H.Work();
for(int i = 0; i < N; i++)
seq[i] = H.Hash(seq[i]);
memset(sum, 0, sizeof sum);
for(int i = 0; i < N; i++)
sum[i / B][seq[i]]++;
for(int i = n; i--; )
for(int j = 0; j < H.n; j++)
sum[i][j] += sum[i + 1][j];
for(int i = 0; i < n; i++) {
memset(c, 0, sizeof c);
int Max = 0, numId;
for(int j = i; j < n; j++) {
int p = j * B;
for(int k = 0; k < B; k++, p++) if(++c[seq[p]] > Max) {
numId = seq[p];
Max = c[seq[p]];
} else if(c[seq[p]] == Max) {
numId = min(numId, seq[p]);
}
Mode[i][j] = make_pair(numId, Max);
}
}
memset(cnt, 0, sizeof cnt);
memset(Id, -1, sizeof Id);
for(int i = 0; i < n; i++) {
Id[i][H.n] = 0;
int p = i * B;
for(int j = 0; j < B; j++, p++) {
int v = seq[p];
if(!~Id[i][v])
Id[i][v] = Id[i][H.n]++;
cnt[i][j][Id[i][v]]++;
}
for(int j = B; j--; )
for(int k = 0; k < Id[i][H.n]; k++)
cnt[i][j][k] += cnt[i][j + 1][k];
}
}
inline int getSum(int l, int r, int v) {
return sum[l][v] - sum[r + 1][v];
}
inline int getCnt(int Block, int l, int r, int numId) {
return cnt[Block][l][Id[Block][numId]] - cnt[Block][r + 1][Id[Block][numId]];
}
int solve(int l, int r) {
if(l > r) swap(l, r);
int lb = l / B, rb = r / B, ans, CNT = 0;
memset(c, 0, sizeof c);
if(rb - lb > 1) {
pii &t = Mode[lb + 1][rb - 1];
ans = t.first;
CNT = t.second;
for(int i = l; i / B == lb; i++) {
int v = seq[i], Cnt = getCnt(lb, l % B, B - 1, v) + getCnt(rb, 0, r % B, v);
Cnt += getSum(lb + 1, rb - 1, v);
if(Cnt > CNT)
ans = v, CNT = Cnt;
else if(Cnt == CNT)
ans = min(ans, v);
}
for(int i = rb * B; i <= r; i++) {
int v = seq[i], Cnt = getCnt(lb, l % B, B - 1, v) + getCnt(rb, 0, r % B, v);
Cnt += getSum(lb + 1, rb - 1, v);
if(Cnt > CNT)
ans = v, CNT = Cnt;
else if(Cnt == CNT)
ans = min(ans, v);
}
} else if(lb + 1 == rb) {
for(int i = l; i / B == lb; i++) {
int v = seq[i], Cnt = getCnt(lb, l % B, B - 1, v) + getCnt(rb, 0, r % B, v);
if(Cnt > CNT)
ans = v, CNT = Cnt;
else if(Cnt == CNT)
ans = min(ans, v);
}
for(int i = rb * B; i <= r; i++) {
int v = seq[i], Cnt = getCnt(lb, l % B, B - 1, v) + getCnt(rb, 0, r % B, v);
if(Cnt > CNT)
ans = v, CNT = Cnt;
else if(Cnt == CNT)
ans = min(ans, v);
}
} else if(lb == rb) {
for(; l <= r; l++) {
int v = seq[l], Cnt = getCnt(lb, l % B, r % B, v);
if(Cnt > CNT)
ans = v, CNT = Cnt;
else if(Cnt == CNT)
ans = min(ans, v);
}
}
return H._Hash(ans);
}
void Work() {
int ans = 0;
while(Q--) {
int l = read(), r = read();
printf("%d\n", ans = solve((l + ans - 1) % N, (r + ans - 1) % N));
}
}
int main() {
Init();
Work();
return 0;
}
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2724: [Violet 6]蒲公英
Time Limit: 40 Sec Memory Limit: 512 MBSubmit: 1140 Solved: 373
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Description
.gif)
Input
.gif)
修正一下
l = (l_0 + x - 1) mod n + 1, r = (r_0 + x - 1) mod n + 1
Output
.gif)
Sample Input
6 3
1 2 3 2 1 2
1 5
3 6
1 5
1 2 3 2 1 2
1 5
3 6
1 5
Sample Output
1
2
1
2
1
HINT
.gif)
修正下:
n <= 40000, m <= 50000
Source
