标签:end ret == weekly 滑动窗口 bool const tar class
最后一题比赛快结束的时候想到怎么做了(通过WA的数据猜出来的),比赛后10分钟做出来的。最终做了3题,时间1个小时左右吧。
1150. Check If a Number Is Majority Element in a Sorted Array
这道题理论应该用二分,但是数据量很小(1000),所以就直接暴力过了:
class Solution { public: bool isMajorityElement(vector<int>& nums, int target) { int count = 0; for(int i = 0;i < nums.size();i++) { if(nums[i] == target) { count++; } else if(nums[i] > target) break; } return count > (nums.size() / 2); } };
1151 Minimum Swaps to Group All 1‘s Together
这道题是滑动窗口题。找到包含最少0的窗口(窗口长度等于数组里1的个数)
class Solution { public: int minSwaps(vector<int>& data) { int count = 0; int n = data.size(); for(int i = 0;i < n;i++) { if(data[i] == 1) count++; } int begin = 0; int zeros = 0; int res = INT_MAX; for(int i = 0;i < n;i++) // end { int len = i - begin + 1; if(len > count) { if(data[begin] == 0) zeros--; begin++; len = count; } if(data[i] == 0) zeros++; if(len == count) { res = min(res, zeros); } } return res; } };
1152. Analyze User Website Visit Pattern
这道题可能是哈希和排序吧。WA了三次才过(有一次是没看清楚WA的点在哪,为了看错误点又提交了一次)。写的非常恶心。但是每次我洋洋洒洒写完100行的答案,总能在评论区看见10行搞定的 = =
class Solution { public: vector<string> get(const string& s) { string str; vector<string> res; for(int i = 0;i < s.size();i++) { if(s[i] != ‘ ‘) { str.push_back(s[i]); } else { res.push_back(str); str.clear(); } } return res; } bool IsSmaller(const string& s1, const string& s2) { vector<string> res1 = get(s1); vector<string> res2 = get(s2); for(int i = 0;i < res1.size();i++) { if(res1[i] == res2[i]) continue; return res1[i] < res2[i]; } return false; } struct message { string username; int timestamp; string website; message() { } message(string& u, int& t, string& w) : username(u), timestamp(t), website(w){ } friend bool operator<(const message& m1, const message& m2) { return m1.timestamp < m2.timestamp; } }; vector<string> mostVisitedPattern(vector<string>& username, vector<int>& timestamp, vector<string>& website) { unordered_map<string, int> count; int n = username.size(); vector<message> msg(n); for(int i = 0;i < n;i++) { msg[i] = message(username[i], timestamp[i], website[i]); } sort(msg.begin(), msg.end()); unordered_map<string, vector<string>> web; for(int i = 0;i < n;i++) { web[msg[i].username].push_back(msg[i].website); } for(auto& w : web) { string name = w.first; vector<string>& site = w.second; if(site.size() < 3) continue; unordered_set<string> unique; for(int i = 0;i < site.size(); i++) { for(int j = i + 1; j < site.size(); j++) { for(int k = j + 1;k < site.size(); k++) { string str = site[i] + " " + site[j] + " " + site[k] + " "; if(unique.find(str) == unique.end()) { count[str]++; unique.insert(str); } } } } } int maxtimes = 0; vector<string> res; string maxstr; for(auto& c : count) { int times = c.second; if(times > maxtimes) { maxtimes = times; maxstr = c.first; } else if(times == maxtimes) { if(IsSmaller(c.first, maxstr)) { maxstr = c.first; } } } return get(maxstr); } };
1153. String Transforms Into Another String
这道题首先不能一对多,存在就返回错误。然后如果存在转换存在闭环,如:
abc -> bca
相当于转换为a -> b -> c -> a,形成了一个回路,这种情况是可以转换的,因为可以借助不是abc的一个字符作为桥梁。
但是如果闭环涵盖了26个小写字符,那么就没办法找到桥梁了,返回false。最终相当于判断所有形成闭环的字符是不是为26。(以上都是我从WA的答案中得到提示,才想到的
总感觉求闭环数写的不是太对,我的方法是访问到已经访问过的字符后,把两个访问下标相减得到环路大小的,(我刚刚编的方法)。但是勉勉强强也AC了:
class Solution { public: vector<int> visit; vector<int> graph; int res = 0; int count = 0; void dfs(int i) // find a loop { if(visit[i] != -1) { res += count - visit[i]; return; } visit[i] = count; if(graph[i] != -1) { count++; dfs(graph[i]); } } bool canConvert(string str1, string str2) { if(str1 == str2) return true; int n = str1.size(); graph.resize(26, -1); for(int i = 0;i < n;i++) { if(graph[str1[i] - ‘a‘] != -1 && graph[str1[i] - ‘a‘] != str2[i] - ‘a‘) { return false; } graph[str1[i] - ‘a‘] = str2[i] - ‘a‘; } int count = 0; visit.resize(26, -1); for(int i = 0;i < 26;i++) { if(visit[i] == -1) { count = 0; dfs(i); } } if(res == 26) return false; return true; } };
leetcode 双周赛 Biweekly Contest 6
标签:end ret == weekly 滑动窗口 bool const tar class
原文地址:https://www.cnblogs.com/fish1996/p/11333624.html