研究一下建树 :
/*
HDU 6044 - Limited Permutation [ 读入优化,笛卡尔树 ] | 2017 Multi-University Training Contest 1
题意:
给出两组序列 l[i], r[i], 代表以 p[i] 为最小值所在的区间的边界
问 满足这些条件的序列 p 的个数
分析:
必定能找到一个p[i] 使得 l[i] == 1, r[i] == n ,其将数组分成两块[1, i-1], [i+1, n]
以之为根节点,将区间为[1, i-1] 和 [i+1, n] 的节点作为左右儿子,再在每一块上递归地进行划分,则构成一棵笛卡尔树
能构成的笛卡尔树的形状是唯一的,若不能构成,则 ans = 0
若能构成,则 以i为根的子树的方案数 f(i) = C(size_l+size_r, size_l) * f(l) * f(r)
数据很多用fread读入
*/
#include <bits/stdc++.h>
using namespace std;
#define LL long long
const int N = 1e6+5;
const LL MOD = 1e9+7;
namespace IO {
const int MX = 4e7; //1e7 占用内存 11000kb
char buf[MX]; int c, sz;
void begin() {
c = 0;
sz = fread(buf, 1, MX, stdin);//一次性全部读入
}
inline bool read(int &t) {
while (c < sz && buf[c] != '-' && (buf[c] < '0' || buf[c] > '9')) c++;
if (c >= sz) return false;//若读完整个缓冲块则退出
bool flag = 0; if(buf[c] == '-') flag = 1, c++;
for(t = 0; c < sz && '0' <= buf[c] && buf[c] <= '9'; c++) t = t * 10 + buf[c] - '0';
if(flag) t = -t;
return true;
}
}
namespace COMB {
int F[N], Finv[N], inv[N];//F是阶乘,Finv是逆元的阶乘
void init(){
inv[1] = 1;
for(int i = 2; i < N; i ++){
inv[i] = (MOD - MOD / i) * 1LL * inv[MOD % i] % MOD;
}
F[0] = Finv[0] = 1;
for(int i = 1; i < N; i ++){
F[i] = F[i-1] * 1LL * i % MOD;
Finv[i] = Finv[i-1] * 1LL * inv[i] % MOD;
}
}
int comb(int n, int m){//comb(n, m)就是C(n, m)
if(m < 0 || m > n) return 0;
return F[n] * 1LL * Finv[n - m] % MOD * Finv[m] % MOD;
}
}
struct Node
{
int f, l, r;
}T[N];
int l[N], r[N];
int n;
int q[N], top;
inline bool cmp(const int& a,const int& b) {
return (r[a] - l[a]) < (r[b] - l[b]);
}
int Build()
{
top = 0;
for (int i = 1; i <= n; i++)
{
int k = top;
while (k && cmp(q[k-1], i)) --k;
if (k != 0)
{
T[i].f = q[k-1];
T[q[k-1]].r = i;
}
if (k != top)
{
T[q[k]].f = i;
T[i].l = q[k];
}
q[k++] = i;
top = k;
}
return q[0];
}
bool flag;
LL ans;
LL dfs(int x, int L, int R)
{
if (!x) return 1;
if (!flag) return 0;
if (l[x] != L || r[x] != R) return 0;
LL res = COMB::comb(R-L, R-x);
res = res * dfs(T[x].l, L, x-1) % MOD;
res = res * dfs(T[x].r, x+1, R) % MOD;
if (res == 0) flag = 0;
return res;
}
int main()
{
COMB::init();
IO::begin();
for (int tt = 1; IO::read(n); ++tt)
{
for (int i = 1; i <= n; i++) T[i].l = T[i].r = T[i].f = 0;
for (int i = 1; i <= n; i++) IO::read(l[i]);
for (int i = 1; i <= n; i++) IO::read(r[i]);
int root = Build();
flag = 1;
ans = dfs(root, 1, n);
printf("Case #%d: %lld
", tt, ans);
}
}
要么直接 map
#include <bits/stdc++.h>
using namespace std;
#define LL long long
const int N = 1e6+5;
const LL MOD = 1e9+7;
namespace fastIO {
#define BUF_SIZE 100000
//fread -> read
bool IOerror = 0;
inline char nc() {
static char buf[BUF_SIZE], *p1 = buf + BUF_SIZE, *pend = buf + BUF_SIZE;
if(p1 == pend) {
p1 = buf;
pend = buf + fread(buf, 1, BUF_SIZE, stdin);
if(pend == p1) {
IOerror = 1;
return -1;
}
}
return *p1++;
}
inline bool blank(char ch) {
return ch == ' ' || ch == '
' || ch == '
' || ch == ' ';
}
inline void read(int &x) {
char ch;
while(blank(ch = nc()));
if(IOerror)
return;
for(x = ch - '0'; (ch = nc()) >= '0' && ch <= '9'; x = x * 10 + ch - '0');
}
#undef BUF_SIZE
}
namespace COMB {
int F[N], Finv[N], inv[N];//F是阶乘,Finv是逆元的阶乘
void init(){
inv[1] = 1;
for(int i = 2; i < N; i ++){
inv[i] = (MOD - MOD / i) * 1LL * inv[MOD % i] % MOD;
}
F[0] = Finv[0] = 1;
for(int i = 1; i < N; i ++){
F[i] = F[i-1] * 1LL * i % MOD;
Finv[i] = Finv[i-1] * 1LL * inv[i] % MOD;
}
}
int comb(int n, int m){//comb(n, m)就是C(n, m)
if(m < 0 || m > n) return 0;
return F[n] * 1LL * Finv[n - m] % MOD * Finv[m] % MOD;
}
}
typedef pair<int, int> P;
using namespace fastIO;
map<P, int> mp;
int t, n;
int l[N], r[N];
LL dfs(int l, int r)
{
if (l > r) return 1;
int x = mp[P(l, r)];
if (!x) return 0;
LL ans = COMB::comb(r-l, r-x);
ans = ans * dfs(l, x-1) % MOD;
ans = ans * dfs(x+1, r) % MOD;
return ans;
}
int main()
{
COMB::init();
for (int tt = 1; read(n), !IOerror; ++tt)
{
mp.clear();
for (int i = 1; i <= n; i++) read(l[i]);
for (int i = 1; i <= n; i++) read(r[i]);
for (int i = 1; i <= n; i++)
mp[P(l[i], r[i])] = i;
LL ans = dfs(1, n);
printf("Case #%d: %lld
", tt, ans);
}
}