这一场打的又很差(掉分预定),D题想不出来。
这题首先判断字符串是否全由 a 组成,如果是的话输出 NO
int main() {
ios_base::sync_with_stdio(false), cin.tie(0);
int _;
for (cin >> _; _--;) {
string s;
cin >> s;
int N = s.length();
// find_first_not_of
auto i = s.find_first_not_of(‘a‘);
if (i == string::npos) {
cout << "NO\n";
continue;
}
int j = (i < N / 2 ? N - i : N - i - 1);
cout << "YES\n";
cout << s.substr(0, j) << ‘a‘ << s.substr(j) << "\n";
}
return 0;
}
题意:给你一个 01 初始序列和目标序列,每次可以选择前 \(2\times x\) 个位置异或1(前提是选择区域的0和1个数相等),问你有没有办法变成目标序列。
思路:待补
int main() {
ios_base::sync_with_stdio(false), cin.tie(0);
int _;
for (cin >> _; _--;) {
int n;
string a, b;
cin >> n >> a >> b;
int sa = 0, sb = 0;
bool f = true;
for (int i = 0; i < n; ++i) {
sa += 2 * (a[i] - ‘0‘) - 1;
sb += 2 * (b[i] - ‘0‘) - 1;
// cout << sa << " " << sb << "\n";
f = f && abs(sa) == abs(sb);
}
// cout << sa << " " << sb << "\n";
f = f && sa == sb;
cout << (f ? "YES\n" : "NO\n");
}
return 0;
}
题意:给你一个01序列,问你能不能构造两个合法的括号序列a,b,使得当 \(s[i] = 1\) 时,\(a[i] = b[i]\) ,当 \(s[i] = 0\) 时,\(a[i] != b[i]\)
思路:首先,两个字符串序列必须以( 开头,) 结尾,其实,由于 ( 和)的个数和 \(n\) 为偶数所以 \(s\) 序列中 1 的个数也必为偶数。
接下来就是模拟条件了
AC 代码
int main() {
ios_base::sync_with_stdio(false), cin.tie(0);
int _;
for (cin >> _; _--;) {
int n, t = 0;
string s;
cin >> n >> s;
int cnt = count(s.begin(), s.end(), ‘1‘);
if (s[0] != ‘1‘ || s[n - 1] != ‘1‘ || cnt & 1) {
cout << "NO\n";
continue;
}
cnt /= 2;
string a(n, ‘*‘), b(n, ‘*‘);
for (int i = 0; i < n; ++i) {
if (s[i] == ‘0‘) {
if (t == 0) a[i] = ‘)‘, b[i] = ‘(‘;
else
a[i] = ‘(‘, b[i] = ‘)‘;
t ^= 1;
} else {
if (cnt) {
a[i] = b[i] = ‘(‘;
cnt--;
} else
a[i] = b[i] = ‘)‘;
}
}
cout << "YES\n";
cout << a << "\n"
<< b << ‘\n‘;
}
return 0;
}
Codeforces Round #712 (Div. 2) 个人题解
原文:https://www.cnblogs.com/RioTian/p/14616918.html