3.7 KB | 3803 chars
/*
[17407: 괄호 문자열과 쿼리](https://www.acmicpc.net/problem/17407)
Tier: Platinum 3
Category: data_structures, lazyprop, segtree
*/
#include <bits/stdc++.h>
using namespace std;
#define for1(s, e) for(int i = s; i < e; i++)
#define for1j(s, e) for(int j = s; j < e; j++)
#define forEach(k) for(auto i : k)
#define forEachj(k) for(auto j : k)
#define sz(vct) vct.size()
#define all(vct) vct.begin(), vct.end()
#define sortv(vct) sort(vct.begin(), vct.end())
#define uniq(vct) sort(all(vct));vct.erase(unique(all(vct)), vct.end())
#define fi first
#define se second
#define INF 987654321
typedef unsigned long long ull;
typedef long long ll;
typedef ll llint;
typedef unsigned int uint;
typedef unsigned long long int ull;
typedef ull ullint;
typedef pair<int, int> pii;
typedef pair<ll, ll> pll;
typedef pair<double, double> pdd;
typedef pair<double, int> pdi;
typedef pair<string, string> pss;
typedef vector<int> iv1;
typedef vector<iv1> iv2;
typedef vector<ll> llv1;
typedef vector<llv1> llv2;
typedef vector<pii> piiv1;
typedef vector<piiv1> piiv2;
typedef vector<pll> pllv1;
typedef vector<pllv1> pllv2;
typedef vector<pdd> pddv1;
typedef vector<pddv1> pddv2;
const double EPS = 1e-8;
const double PI = acos(-1);
template<typename T>
T sq(T x) { return x * x; }
int sign(ll x) { return x < 0 ? -1 : x > 0 ? 1 : 0; }
int sign(int x) { return x < 0 ? -1 : x > 0 ? 1 : 0; }
int sign(double x) { return abs(x) < EPS ? 0 : x < 0 ? -1 : 1; }
int tree[440000]; // prefix sum의 min value
int lazy[440000];
int ar[110000];
int state[110000];
int n;
void propagate(int node, int s, int e) {
if(lazy[node] == 0) return;
tree[node] += lazy[node];
if(s != e) {
lazy[node * 2] += lazy[node];
lazy[node * 2 + 1] += lazy[node];
}
lazy[node] = 0;
}
void build(int node, int start, int end) {
if(start == end) {
tree[node] = ar[start];
return;
}
int mid = (start + end) / 2;
build(node * 2, start, mid);
build(node * 2 + 1, mid + 1, end);
tree[node] = min(tree[node * 2], tree[node * 2 + 1]);
}
void update(int x, int node, int left, int right, int start, int end) {
propagate(node, start, end);
if(right < start || end < left) return;
if(left <= start && end <= right) {
lazy[node] += x;
propagate(node, start, end);
return;
}
int mid = (start + end) / 2;
update(x, node * 2, left, right, start, mid);
update(x, node * 2 + 1, left, right, mid + 1, end);
tree[node] = min(tree[node * 2], tree[node * 2 + 1]);
}
int query(int node, int left, int right, int start, int end) {
propagate(node, start, end);
if(right < start || end < left) return INF;
if(left <= start && end <= right) return tree[node];
int mid = (start + end) / 2;
return min(query(node * 2, left, right, start, mid), query(node * 2 + 1, left, right, mid + 1, end));
}
void update(int x, int left, int right) {
update(x, 1, left, right, 1, n);
}
int query(int left, int right) {
return query(1, left, right, 1, n);
}
void solve() {
int ans = 0;
string s; cin >> s;
int crt = 0;
n = s.size();
for1(0, n) {
if(s[i] == '(') {
crt++;
state[i + 1] = 1;
}
else {
crt --;
state[i + 1] = -1;
}
ar[i + 1] = crt;
}
for1(0, 440000) tree[i] = INF;
build(1, 1, n);
int q; cin >> q;
while(q--) {
int idx;
cin >> idx;
int nxt = -state[idx];
int diff = nxt - state[idx];
state[idx] = nxt;
update(diff, 1, idx, n, 1, n);
if(query(1, n) >= 0 && query(n, n) == 0) ans++;
// for(int i = 1; i <= n; i++) {
// cout << query(i, i) << " ";
// }
// cout << query(1, n) << " " << query(n, n) << "\n";
}
cout << ans << "\n";
}
int main() {
ios::sync_with_stdio(0);
cin.tie(NULL);cout.tie(NULL);
int tc = 1; // cin >> tc;
while(tc--) solve();
}