BZOJ4571
Description
给定n个数, m次询问, 每次询问[l,r]范围内的数加上x后异或b的最大值, x, b给出.
[n,m <= 2e5, ai, b, x leq 1e5
]
Solution
考虑不用加上x的做法, 那么直接从高到低位贪心.
但是在加上了x后, 就不那么好搞了. 同样考虑按位处理, 令ans为确定了前几位的答案,那么如果b的某一位是1, 最好在[ans, ans | ((1 << j) - 1)]取值. 我们只要看在这个区间内是否有值就可以了, 因为要加上x, 我们处理时反着减去x即可
Code
#include<bits/stdc++.h>
using namespace std;
#define rep(i, a, b) for(int i = (a), i##_end_ = (b); i <= i##_end_; ++i)
#define drep(i, a, b) for(int i = (a), i##_end_ = (b); i >= i##_end_; --i)
#define clar(a, b) memset((a), (b), sizeof(a))
#define debug(...) fprintf(stderr, __VA_ARGS__)
#define Debug(s) debug("The massage in line %d, Function %s: %s
", __LINE__, __FUNCTION__, s)
typedef long long LL;
typedef long double LD;
const int BUF_SIZE = (int)1e6 + 10;
struct fastIO {
char buf[BUF_SIZE], buf1[BUF_SIZE];
int cur, cur1;
FILE *in, *out;
fastIO() {
cur = BUF_SIZE, in = stdin, out = stdout;
cur1 = 0;
}
inline char getchar() {
if(cur == BUF_SIZE) fread(buf, BUF_SIZE, 1, in), cur = 0;
return *(buf + (cur++));
}
inline void putchar(char ch) {
*(buf1 + (cur1++)) = ch;
if (cur1 == BUF_SIZE) fwrite(buf1, BUF_SIZE, 1, out), cur1 = 0;
}
inline int flush() {
if (cur1 > 0) fwrite(buf1, cur1, 1, out);
return cur1 = 0;
}
}IO;
#define getchar IO.getchar
#define putchar IO.putchar
int read() {
char ch = getchar();
int x = 0, flag = 1;
for(;!isdigit(ch); ch = getchar()) if(ch == '-') flag *= -1;
for(;isdigit(ch); ch = getchar()) x = x * 10 + ch - 48;
return x * flag;
}
void write(int x) {
if(x < 0) putchar('-'), x = -x;
if(x >= 10) write(x / 10);
putchar(x % 10 + 48);
}
void putString(char s[], char EndChar = '
') {
rep(i, 0, strlen(s) - 1) putchar(*(s + i));
if(~EndChar) putchar(EndChar);
}
#define Maxn 200009
int n, m, a[Maxn], rt[Maxn];
namespace ChairmanTree {
struct Node {
int son[2], val;
}tree[Maxn * 30];
int amt;
int build(int l, int r) {
if(l > r) return 0;
int u = ++amt, mid = (l + r) >> 1;
tree[u] = (Node){0, 0, 0};
if(l == r) return u; /**/
tree[u].son[0] = build(l, mid);
tree[u].son[1] = build(mid + 1, r);
return u;
}
int modify(int sou, int l, int r, int v) {
if(l > r) return 0;
int u = ++amt, mid = (l + r) >> 1;
tree[u] = tree[sou]; ++tree[u].val;
if(l == r) return u;
if(v <= mid) tree[u].son[0] = modify(tree[sou].son[0], l, mid, v);
else tree[u].son[1] = modify(tree[sou].son[1], mid + 1, r, v);
return u;
}
int query(int Lr, int Rr, int l, int r, int q1, int q2) {
if(q1 <= l && r <= q2) return tree[Rr].val - tree[Lr].val;
int mid = (l + r) >> 1;
if(q2 <= mid) return query(tree[Lr].son[0], tree[Rr].son[0], l, mid, q1, q2);
else if(q1 > mid) return query(tree[Lr].son[1], tree[Rr].son[1], mid + 1, r, q1, q2);
else return query(tree[Lr].son[0], tree[Rr].son[0], l, mid, q1, mid) + query(tree[Lr].son[1], tree[Rr].son[1], mid + 1, r, mid + 1, q2);
}
}
namespace INIT {
void Main() {
n = read(); m = read();
rt[0] = ChairmanTree :: build(1, Maxn - 1);
rep(i, 1, n) a[i] = read(), rt[i] = ChairmanTree :: modify(rt[i - 1], 1, Maxn - 1, a[i]);
}
}
namespace SOLVE {
void Main() {
rep(i, 1, m) {
int b = read(), x = read(), l = read(), r = read();
int ans = 0;
drep(j, 17, 0)
if(b & (1 << j)) {
int L = ans, R = ans | ((1 << j) - 1);
L -= x, R -= x;
if(R <= 0 || !ChairmanTree :: query(rt[r], rt[l - 1], 1, Maxn - 1, L, R)) ans ^= (1 << j);
}else {
int L = ans | (1 << j), R = ans | ((1 << (j + 1)) - 1);
L -= x, R -= x;
if(R <= 0 || ChairmanTree :: query(rt[r], rt[l - 1], 1, Maxn - 1, L, R)) ans ^= (1 << j);
}
write(ans ^ b), putchar('
');
}
}
}
int main() {
#ifdef Qrsikno
freopen("BZOJ4571.in", "r", stdin);
freopen("BZOJ4571.out", "w", stdout);
#endif
INIT :: Main();
SOLVE :: Main();
#ifdef Qrsikno
debug("
Running time: %.3lf(s)
", clock() * 1.0 / CLOCKS_PER_SEC);
#endif
return IO.flush();
}