牛客小白月赛53
2022/7/8 23:52:42
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牛客小白月赛53
第二次打妞妞月赛
三题下班,呜呜呜我好菜orz
https://ac.nowcoder.com/acm/contest/11230
A. Raining
按照题意模拟即可
#include <bits/stdc++.h> using namespace std; int main () { int a, b, c, d, x; cin >> a >> b >> c >> d >> x; a = max (x-a, 0), d = max (x-d, 0), c = max (x-c, 0), b = max (x-b, 0); cout << a << ' ' << b << ' ' << c << ' ' << d << endl; }
B. Kissing
结论题, 先对通项化简:\(i^2-((i+1)^2-4i)=i^2-(i-2)^2=2i-1\)
然后是等差数列求和公式,得\(n^2\)
会爆long long, 所以要随时取模
#include <bits/stdc++.h> using namespace std; const int mod = 998244353; typedef long long ll; int main () { ll n; cin >> n; cout << ((n%mod)*(n%mod))%mod; } //2*i-1
C. Missing
按照题意模拟+结构体排序输出
(一开始前面写的while(n--),结果一直没更新答案,看了半天,蠢死了呜呜呜)
#include <bits/stdc++.h> using namespace std; typedef pair<int, string> psi; int main () { string s; int n; cin >> s >> n; vector <psi> v; vector <string> ss; for (int i = 0; i < n; i ++) { string t; cin >> t; ss.push_back (t); } sort (ss.begin (), ss.end ()); //for (auto i : ss) cout << i << ' '; cout << endl; for (int i = 0; i < n; i ++) { string t = ss[i]; if (t.size() != s.size()) v.push_back ({0, t}); else { int cnt = 0; for (int i = 0; i < s.size (); i ++) if (s[i] == t[i]) cnt ++; v.push_back ({cnt, t}); } } //for (auto i : v) cout << i.first << ' ' << ss[i.second] << endl; cout << endl; sort (v.begin (), v.end (), greater<psi>()); int maxn = v[0].first; //cout << maxn << endl; ss.clear(); for (auto i : v) { if (i.first != maxn) break; ss.push_back (i.second); } sort (ss.begin (), ss.end()); for (auto i : ss) cout << i << endl; } //不除 //如果「相似度」都为 0,请仍然按字典序输出所有字符串
D. Breezing
显然,a[i]取1或b[i]的时候是最优的
那么就可以dp(我连最简单的dp都不会)
定义一个二维dp数组f[N][2]:
f[i][0]表示以为i结尾,当前位置选取a[i]=1,时的最大可爱值
f[i][1]表示以为i结尾,当前位置选取a[i]=b[i],时的最大可爱值
正解:
#include <bits/stdc++.h> using namespace std; const int N = 1e5 + 5; int f[N][2], a[N]; int main () { int n; cin >> n; for (int i = 1; i <= n; i ++) cin >> a[i]; for (int i = 2; i <= n; i ++) { f[i][0] = max (f[i-1][0], f[i-1][1] + abs (a[i-1] - 1)); f[i][1] = max (f[i-1][0] + abs (a[i] - 1), f[i-1][1] + abs (a[i-1] - a[i])); } cout << max(f[n][0], f[n][1]); }
原来的错误写法:贪心,一大一小
贪心有风险,要慎重www
#include <bits/stdc++.h> #define int long long using namespace std; signed main () { int n; cin >> n; vector <int> a(n+1); for (int i = 1; i <= n; i ++) cin >> a[i]; int ans1 = 0, ans2 = 0; //偶数 if (n % 2 == 0) { for (int i = 2; i <= n; i += 2) ans1 += (a[i] - 1) * 2, ans2 += (a[i-1] - 1) * 2; ans1 -= (a[n] - 1), ans2 -= (a[1] - 1); } else { for (int i = 2; i <= n; i += 2) ans1 += (a[i] - 1) * 2, ans2 += (a[i-1] - 1) * 2; ans2 -= (a[1] - 1), ans2 -= (a[n] - 1); if (n == 3) ans2 = a[1] - 1 + a[3] - 1; } //cout << ans1 << ' ' << ans2 << endl; cout << max(max (ans1, ans2), 0ll); } //1 b[i] 1 b[i].... //b[i] 1 b[i] 1...
E. Calling
原来的错误写法:嗯模拟
#include <bits/stdc++.h> using namespace std; void solve () { int n; int num[7]; cin >> n; for (int i = 1; i <= 6; i ++) cin >> num[i]; // if ((n - num[4] - num[5] - num[6]) < 0) {cout << "No\n"; return ;} int res[7] = {0, 36*n, 9*n, 4*n, n, n, n}; n -= num[6], res[5] = res[4] = n, res[3] -= num[6]*4, res[2] -= num[6]*9, res[1] -= num[6]*36; if (n < 0) {cout << "No\n"; return ;} n -= num[5], res[4] -= n, res[3] -= num[5]*4, res[2] -= num[5]*9, res[1] -= num[5]*25; if (n < 0) {cout << "No\n"; return ;} n -= num[4], res[3] -= num[4]*4, res[2] -= num[4]*4, res[1] -= num[4]*16; if (n < 0) {cout << "No\n"; return ;} if (res[3] < num[3]) {cout << "No\n"; return ;} res[1] -= num[3]*9; int mod = num[3] % 4, cnt = num[3]/4; if (mod == 0) res[2] -= cnt * 9; else if (mod == 3) res[2] -= cnt * 8; else if (mod == 2) res[2] -= cnt * 6; else if (mod == 1) res[2] -= cnt * 4; if (res[2] < num[2]) {cout << "No\n"; return ;} res[1] -= num[2]*4; if (res[1] < num[1]) {cout << "No\n"; return ;} cout << "Yes\n"; } int main () { int t; cin >> t; while (t --) solve (); }
F. Freezing
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