結果
| 問題 |
No.1674 Introduction to XOR
|
| コンテスト | |
| ユーザー |
Moss_Local
|
| 提出日時 | 2021-09-10 21:30:47 |
| 言語 | Rust (1.83.0 + proconio) |
| 結果 |
AC
|
| 実行時間 | 1 ms / 1,000 ms |
| コード長 | 9,381 bytes |
| コンパイル時間 | 11,597 ms |
| コンパイル使用メモリ | 388,408 KB |
| 実行使用メモリ | 5,376 KB |
| 最終ジャッジ日時 | 2024-06-11 22:36:22 |
| 合計ジャッジ時間 | 12,661 ms |
|
ジャッジサーバーID (参考情報) |
judge4 / judge2 |
(要ログイン)
| ファイルパターン | 結果 |
|---|---|
| sample | AC * 3 |
| other | AC * 21 |
コンパイルメッセージ
warning: unnecessary parentheses around type
--> src/main.rs:117:15
|
117 | fn readi() -> (i64) {
| ^ ^
|
= note: `#[warn(unused_parens)]` on by default
help: remove these parentheses
|
117 - fn readi() -> (i64) {
117 + fn readi() -> i64 {
|
warning: variable does not need to be mutable
--> src/main.rs:339:9
|
339 | let mut vec: Vec<usize> = read_vec();
| ----^^^
| |
| help: remove this `mut`
|
= note: `#[warn(unused_mut)]` on by default
ソースコード
// -*- coding:utf-8-unix -*-
// #![feature(map_first_last)]
#![allow(dead_code)]
#![allow(unused_imports)]
#![allow(unused_macros)]
use std::collections::*;
use std::convert::*;
use std::convert::{From, Into};
use std::f64::consts::PI;
use std::fmt::Debug;
use std::fs::File;
use std::io::prelude::*;
use std::io::*;
use std::marker::Copy;
use std::mem::*;
use std::ops::Bound::*;
use std::ops::{Add, Mul, Neg, Sub};
use std::str;
use std::vec;
use std::{cmp, process::Output};
use std::{cmp::Ordering, env::consts::DLL_PREFIX};
const INF: i64 = 1223372036854775807;
const UINF: usize = INF as usize;
const FINF: f64 = 122337203685.0;
const INF128: i128 = 1223372036854775807000000000000;
const LINF: i64 = 2147483647;
const MOD: i64 = 1000000007;
// const MOD: i64 = 998244353;
const T: bool = true;
const F: bool = false;
const MPI: f64 = 3.14159265358979323846264338327950288f64;
// const MOD: i64 = INF;
const UMOD: usize = MOD as usize;
use std::cmp::*;
use std::collections::*;
use std::io::stdin;
use std::io::stdout;
use std::io::Write;
macro_rules! p {
($x:expr) => {
println!("{}", $x);
};
}
macro_rules! d {
($x:expr) => {
println!("{:?}", $x);
};
}
macro_rules! dd {
(x:expr) => {
dbg!(x);
};
}
macro_rules! chmin {
($base:expr, $($cmps:expr),+ $(,)*) => {{
let cmp_min = min!($($cmps),+);
if $base > cmp_min {
$base = cmp_min;
true
} else {
false
}
}};
}
macro_rules! chmax {
($base:expr, $($cmps:expr),+ $(,)*) => {{
let cmp_max = max!($($cmps),+);
if $base < cmp_max {
$base = cmp_max;
true
} else {
false
}
}};
}
macro_rules! min {
($a:expr $(,)*) => {{
$a
}};
($a:expr, $b:expr $(,)*) => {{
std::cmp::min($a, $b)
}};
($a:expr, $($rest:expr),+ $(,)*) => {{
std::cmp::min($a, min!($($rest),+))
}};
}
macro_rules! max {
($a:expr $(,)*) => {{
$a
}};
($a:expr, $b:expr $(,)*) => {{
std::cmp::max($a, $b)
}};
($a:expr, $($rest:expr),+ $(,)*) => {{
std::cmp::max($a, max!($($rest),+))
}};
}
// use str::Chars;
// use str::Chars;
#[allow(dead_code)]
fn read<T: std::str::FromStr>() -> T {
let mut s = String::new();
std::io::stdin().read_line(&mut s).ok();
s.trim().parse().ok().unwrap()
}
#[allow(dead_code)]
fn readi() -> (i64) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
iter.next().unwrap().parse::<i64>().unwrap()
}
#[allow(dead_code)]
fn read_vec<T: std::str::FromStr>() -> Vec<T> {
read::<String>()
.split_whitespace()
.map(|e| e.parse().ok().unwrap())
.collect()
}
#[allow(dead_code)]
fn read_mat<T: std::str::FromStr>(n: u32) -> Vec<Vec<T>> {
(0..n).map(|_| read_vec()).collect()
}
#[allow(dead_code)]
fn readii() -> (i64, i64) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<i64>().unwrap(),
iter.next().unwrap().parse::<i64>().unwrap(),
)
}
fn readff() -> (f64, f64) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<f64>().unwrap(),
iter.next().unwrap().parse::<f64>().unwrap(),
)
}
#[allow(dead_code)]
fn readiii() -> (i64, i64, i64) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<i64>().unwrap(),
iter.next().unwrap().parse::<i64>().unwrap(),
iter.next().unwrap().parse::<i64>().unwrap(),
)
}
#[allow(dead_code)]
fn readuu() -> (usize, usize) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<usize>().unwrap(),
iter.next().unwrap().parse::<usize>().unwrap(),
)
}
fn readcc() -> (char, char) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<char>().unwrap(),
iter.next().unwrap().parse::<char>().unwrap(),
)
}
#[allow(dead_code)]
fn readuuu() -> (usize, usize, usize) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<usize>().unwrap(),
iter.next().unwrap().parse::<usize>().unwrap(),
iter.next().unwrap().parse::<usize>().unwrap(),
)
}
#[allow(dead_code)]
fn readuuuu() -> (usize, usize, usize, usize) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<usize>().unwrap(),
iter.next().unwrap().parse::<usize>().unwrap(),
iter.next().unwrap().parse::<usize>().unwrap(),
iter.next().unwrap().parse::<usize>().unwrap(),
)
}
fn readiiii() -> (i64, i64, i64, i64) {
let mut str = String::new();
let _ = stdin().read_line(&mut str).unwrap();
let mut iter = str.split_whitespace();
(
iter.next().unwrap().parse::<i64>().unwrap(),
iter.next().unwrap().parse::<i64>().unwrap(),
iter.next().unwrap().parse::<i64>().unwrap(),
iter.next().unwrap().parse::<i64>().unwrap(),
)
}
trait SEGLazyImpl {
type Monoid: Copy;
type OperatorMonoid: Copy + PartialEq;
fn m0() -> Self::Monoid;
fn om0() -> Self::OperatorMonoid;
fn f(x: Self::Monoid, y: Self::Monoid) -> Self::Monoid;
fn g(x: Self::Monoid, y: Self::OperatorMonoid, weight: usize) -> Self::Monoid;
fn h(x: Self::OperatorMonoid, y: Self::OperatorMonoid) -> Self::OperatorMonoid;
}
struct SEGLazy<T: SEGLazyImpl> {
n: usize,
data: Vec<T::Monoid>,
lazy: Vec<T::OperatorMonoid>,
weight: Vec<usize>,
}
impl<T: SEGLazyImpl> SEGLazy<T> {
pub fn new(n: usize, init: T::Monoid) -> SEGLazy<T> {
let weights = vec![1; n];
Self::with_weight(n, init, weights)
}
pub fn with_weight(n: usize, init: T::Monoid, weights: Vec<usize>) -> Self {
let mut m = 1;
while m < n {
m *= 2;
}
SEGLazy {
n: m,
data: vec![init; m * 2],
lazy: vec![T::om0(); m * 2],
weight: Self::mk_weight(&weights),
}
}
fn mk_weight(xs: &[usize]) -> Vec<usize> {
let n = xs.len();
let mut m = 1;
while m < n {
m *= 2;
}
let mut res = vec![0; 2 * m];
for i in 0..n {
res[m + i] = xs[i];
}
for k in (1..m).rev() {
let l = 2 * k;
let r = 2 * k + 1;
res[k] = res[l] + res[r];
}
res
}
fn propagate(&mut self, k: usize) {
let weight = self.weight[k];
if self.lazy[k] != T::om0() {
if k < self.n {
self.lazy[2 * k + 0] = T::h(self.lazy[2 * k + 0], self.lazy[k]);
self.lazy[2 * k + 1] = T::h(self.lazy[2 * k + 1], self.lazy[k]);
}
self.data[k] = T::g(self.data[k], self.lazy[k], weight);
self.lazy[k] = T::om0();
}
}
fn do_update(
&mut self,
a: usize,
b: usize,
x: T::OperatorMonoid,
k: usize,
l: usize,
r: usize,
) -> T::Monoid {
self.propagate(k);
if r <= a || b <= l {
self.data[k]
} else if a <= l && r <= b {
self.lazy[k] = T::h(self.lazy[k], x);
self.propagate(k);
self.data[k]
} else {
self.data[k] = T::f(
self.do_update(a, b, x, 2 * k + 0, l, (l + r) >> 1),
self.do_update(a, b, x, 2 * k + 1, (l + r) >> 1, r),
);
self.data[k]
}
}
#[doc = "[l,r)"]
pub fn update(&mut self, l: usize, r: usize, x: T::OperatorMonoid) -> T::Monoid {
let n = self.n;
self.do_update(l, r, x, 1, 0, n)
}
fn do_query(&mut self, a: usize, b: usize, k: usize, l: usize, r: usize) -> T::Monoid {
self.propagate(k);
if r <= a || b <= l {
T::m0()
} else if a <= l && r <= b {
self.data[k]
} else {
T::f(
self.do_query(a, b, 2 * k + 0, l, (l + r) >> 1),
self.do_query(a, b, 2 * k + 1, (l + r) >> 1, r),
)
}
}
#[doc = "[l,r)"]
pub fn query(&mut self, l: usize, r: usize) -> T::Monoid {
let n = self.n;
self.do_query(l, r, 1, 0, n)
}
}
fn solve() {
let n: usize = read();
let mut vec: Vec<usize> = read_vec();
let mut bit = vec![0; 64];
for i in 0..n {
let x = vec[i];
for j in 0..64 {
if (x >> j) & 1 > 0 {
bit[j] += 1;
}
}
}
for i in 0..64 {
if bit[i] == 0 {
println!("{:?}", (1 as i64) << i);
return;
}
}
return;
}
fn main() {
solve();
}
Moss_Local