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Shiroha白羽的博客

Golang 踩坑 —— interface 为参数的时候传 nil 指针 Codeforces Round 925 (Div. 3) Codeforces Round 924 (Div. 2) Codeforces Round 923 (Div. 3) Codeforces Round 922 (Div. 2) Codeforces Round 921 (Div. 2) Educational Codeforces Round 161 (Rated for Div. 2) Codeforces Round 920 (Div. 3) Codeforces Round 919 (Div. 2) Hello 2024 Good Bye 2023 Codeforces Round 918 (Div. 4) 个人备份的常用 macOS 清理命令 Codeforces Round 917 (Div. 2) Pinely Round 3 (Div. 1 + Div. 2) Codeforces Round 915 (Div. 2) Codeforces Round 914 (Div. 2) Codeforces Round 913 (Div. 3) Educational Codeforces Round 159 (Rated for Div. 2) Codeforces Round 912 (Div. 2) Codeforces Round 911 (Div. 2) CodeTON Round 7 (Div. 1 + Div. 2, Rated, Prizes!) Educational Codeforces Round 158 (Rated for Div. 2) Codeforces Round 910 (Div. 2) Codeforces Round 909 (Div. 3) Codeforces Round 908 (Div. 2) Educational Codeforces Round 157 (Rated for Div. 2) C++自定义的字面量 Codeforces Round 907 (Div. 2) Codeforces Round 916 (Div. 3) 关于 LRU map 的一些灵感 2023 杭州站 ICPC 现场赛 反复横跳的 Clang-Tidy(cert-dcl21-cpp) Codeforces Round 906 (Div. 2) 一段奇怪的 CPP 代码 Codeforces Round 905 (Div. 3) Codeforces Round 904 (Div. 2) Codeforces Round 903 (Div. 3) Educational Codeforces Round 156 (Rated for Div. 2) Codeforces Round 902 (Div. 2, based on COMPFEST 15 - Final Round) Codeforces Round 901 (Div. 2) Codeforces Round 900 (Div. 3) Codeforces Round 899 (Div. 2) Educational Codeforces Round#155 (Div. 2) Codeforces Round 898 (Div. 4) CodeTON Round 6 (Div. 2) Codeforces Round 897 (Div. 2) Codeforces Round 896 (Div. 2) Codeforces Round 887 (Div. 2) Codeforces Round 895 (Div. 3) 左值-右值-将亡值 blog.mauve.icu Pinely Round 2 (Div. 1 + Div. 2) Harbour.Space Scholarship Contest 2023-2024 (Div. 1 + Div. 2) Codeforces Round 894 (Div. 3) Codeforces Round 888 (Div. 3) Educational Codeforces Round#153 (Div. 2) Codeforces Round 893 (Div. 2) OTPAUTH,两步验证中的通用协议 Codeforces Round 892 (Div. 2) Codeforces Round 891 (Div. 3) Codeforces Round 890 (Div. 2) Educational Codeforces Round#152 (Div. 2) blog.mauve.icu Java Script 的 null 和 undefined 随想 记一次 SQL LEFT JOIN 没有得到预期结果的错误 Codeforces Round#789(Div. 2) GCC/G++ 预编译头性能优化 使用 Junit5 和 Mockito 实现 SpringBoot 的单元测试最优美的解决方案 centOS 防火墙 docker-compse 的问题 C++ 语言实现动态变化的线程池 Codeforces Round#744 (Div. 3) 计算机图形学 Windows 通过网络访问 WSL2 原生 JavaScript 实现图片裁剪 面试复习(计算机图形学) 面试复习(算法) Codeforces Round#706(Div. 2)-Let's Go Hiking 面试复习(Java) 面试复习(Git) 面试复习(Linux) 面试复习(数据库) 面试复习(计算机网络) 面试复习(操作系统) 面试复习(C++) Codeforces Round#699 (Div. 2) 清理 WSL2 的磁盘占用 Codeforces Round#697 (Div. 3) Windows 下的 NTFS 驱动器索引 BUG 计算机网络复习 记一次 Navicat 连接 MySQL 一直报认证错误(Access denied) 计算机网络实验复习 WSL1 使用 Docker 一直无法启动 我的ACM脚印 2020牛客暑期多校训练营(第三场)D-Points Construction Problem——构造 2020牛客暑期多校训练营(第三场)E-Two Matchings——复杂思维与简单dp 2020牛客暑期多校训练营(第二场)I-Interval——最大流转对偶图求最短路 Educational Codeforces Round 80 D. Minimax Problem——二分+二进制处理 Codeforces Round 606 E. Two Fairs——图论 Codeforces Round 612 (Div. 2) C. Garland——DP
Educational Codeforces Round 160 (Rated for Div. 2)
Shiroha · 2024-02-17 · via Shiroha白羽的博客

A. Rating Increase

大致题意

有两个分数,并列写在一起了,已知第一个分数一定小于第二个分数,问是否可能,并给出一种拆法

思路

找到第二个非 0 的值前面拆开就行,就是最优的情况

AC code

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void solve() {
int _;
cin >> _;
for (int tc = 0; tc < _; ++tc) {
string str;
str.reserve(10);
cin >> str;
int a[2] = {str.front() - '0', 0}, cur = 0;
for (int i = 1; i < str.size(); ++i) {
if (cur == 0 && str[i] != '0') {
cur = 1;
}
a[cur] *= 10;
a[cur] += str[i] - '0';
}
if (a[0] < a[1]) cout << a[0] << ' ' << a[1] << endl;
else cout << -1 << endl;
}
}

B. Swap and Delete

大致题意

有一个 $01$ 字符串,允许选择一个字符进行删除(并消耗一点成本),或者交换两个值(不消耗成本),
问是否可以经过任意次数操作后,使得新的字符串和原来的字符串没有一个字符相同

思路

从头开始尽力使用交换即可,如果遇到一个字符不能靠交换解决了,那么其后面的字符都得删掉

因为是要与原始字符串不同,仅删掉这个字符,后面的字符就到这个字符的位置了

AC code

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void solve() {
int _;
cin >> _;
string str;
str.reserve(2e5 + 10);
for (int tc = 0; tc < _; ++tc) {
cin >> str;
int cnt[2] = {};
for (const auto& c: str) ++cnt[c - '0'];
int ans = 0;
for (int i = 0; i < str.size(); ++i) {
if (cnt[(str[i] - '0') ^ 1]) --cnt[(str[i] - '0') ^ 1];
else {
ans = static_cast<int>(str.size()) - i;
break;
}
}
cout << ans << endl;
}
}

C. Game with Multiset

大致题意

有一个有 $2^n$ 组成的集合,每次允许往里面添加值,问是否可以靠这几个值相加得到某个具体的值

思路

从二进制角度考虑即可,为每一个位置进行凑,不足就让下面的位置进上来

AC code

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void solve() {
int n;
cin >> n;
int cnt[30] = {};
for (int q = 0; q < n; ++q) {
int op, v;
cin >> op >> v;
if (op == 1) ++cnt[v];
else {
int last = 0;
for (int i = 29; i >= 0; --i) {
last <<= 1;
int cur = last + ((v & (1 << i)) ? 1 : 0);
last = max(0, cur - cnt[i]);
}
cout << (last == 0 ? "YES" : "NO") << endl;
}
}
}