Codeforces Round #342 (Div. 2)
先买塑料和先买玻璃两者取最大值
#include <bits/stdc++.h> typedef long long ll; int main(void) { ll n, a, b, c; std::cin >> n >> a >> b >> c; ll ans = 0; if (n >= a) { ll cnt1 = n / a; ll res = n % a; if (res >= b) { cnt1 += (res - b) / (b - c) + 1; } ans = std::max (ans, cnt1); } if (n >= b) { ll cnt2 = (n - b) / (b - c) + 1; cnt2 += (n - cnt2 * (b - c)) / a; ans = std::max (ans, cnt2); } std::cout << ans << '\n'; return 0; }
暴力 B - War of the Corporations
#include <bits/stdc++.h> const int N = 1e5 + 5; char str1[N], str2[33]; int main(void) { scanf ("%s%s", &str1, &str2); int len1 = strlen (str1); int len2 = strlen (str2); int ans = 0; for (int i=0; i<len1; ++i) { if (str1[i] == str2[0]) { bool flag = true; for (int ii=i+1, j=1; j<len2; ++ii, ++j) { if (str1[ii] != str2[j]) { flag = false; break; } } if (flag) { ans++; i += len2 - 1; } } } printf ("%d\n", ans); return 0; }
#include <bits/stdc++.h> int a[502][502]; int main(void) { int n, k; std::cin >> n >> k; int now = n * n; int mx = 0; for (int i=1; i<=n; ++i) { for (int j=n; j>=k; --j) { a[i][j] = now--; if (j == k) mx += a[i][j]; } } for (int i=1; i<=n; ++i) { for (int j=k-1; j>=1; --j) { a[i][j] = now--; } } std::cout << mx << '\n'; for (int i=1; i<=n; ++i) { for (int j=1; j<=n; ++j) { std::cout << a[i][j] << ' '; } std::cout << '\n'; } return 0; }
题意:一个数字a + 反过来的ar == n (<=10^100000),已知n,求a
分析:完全看别人代码看懂的。不考虑进位的话,那么n应该是是回文的。那么处理成不进位的,每一位0~18。
#include <bits/stdc++.h> const int N = 1e5 + 5; char str[N]; char ans[N]; int s[N]; int n; bool judge(void) { for (int i=0; i<n/2;) { int l = i, r = n - 1 - i; if (s[l] == s[r]) ++i; else if (s[l] == s[r] + 1 || s[l] == s[r] + 11) { s[l]--; s[l+1] += 10; } else if (s[l] == s[r] + 10) { s[r] += 10; s[r-1]--; } else return false; } if (n % 2 == 1) { if (s[n/2] % 2 == 1 || s[n/2] > 18 || s[n/2] < 0) return false; ans[n/2] = s[n/2] / 2 + '0'; } for (int i=0; i<n/2; ++i) { if (s[i] > 18 || s[i] < 0) return false; ans[i] = (s[i] + 1) / 2 + '0'; ans[n-1-i] = s[i] / 2 + '0'; } return ans[0] > '0'; } int main(void) { scanf ("%s", str); n = strlen (str); for (int i=0; i<n; ++i) s[i] = str[i] - '0'; if (judge ()) printf ("%s\n", ans); else if (str[0] == '1' && n > 1) { for (int i=0; i<n; ++i) { s[i] = str[i+1] - '0'; } s[0] += 10; n--; if (judge ()) printf ("%s\n", ans); else puts ("0"); } else puts ("0"); return 0; }
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