【LetMeFly】1472.设计浏览器历史记录:一个数组完成模拟,单次操作均O(1)
力扣题目链接:https://leetcode.cn/problems/design-browser-history/
你有一个只支持单个标签页的 浏览器 ,最开始你浏览的网页是 homepage ,你可以访问其他的网站 url ,也可以在浏览历史中后退 steps 步或前进 steps 步。
请你实现 BrowserHistory 类:
BrowserHistory(string homepage),用homepage初始化浏览器类。void visit(string url)从当前页跳转访问url对应的页面 。执行此操作会把浏览历史前进的记录全部删除。string back(int steps)在浏览历史中后退steps步。如果你只能在浏览历史中后退至多x步且steps > x,那么你只后退x步。请返回后退 至多steps步以后的url。string forward(int steps)在浏览历史中前进steps步。如果你只能在浏览历史中前进至多x步且steps > x,那么你只前进x步。请返回前进 至多steps步以后的url。
示例:
输入: ["BrowserHistory","visit","visit","visit","back","back","forward","visit","forward","back","back"] [["leetcode.com"],["google.com"],["facebook.com"],["youtube.com"],[1],[1],[1],["linkedin.com"],[2],[2],[7]] 输出: [null,null,null,null,"facebook.com","google.com","facebook.com",null,"linkedin.com","google.com","leetcode.com"]解释: BrowserHistory browserHistory = new BrowserHistory("leetcode.com"); browserHistory.visit("google.com"); // 你原本在浏览 "leetcode.com" 。访问 "google.com" browserHistory.visit("facebook.com"); // 你原本在浏览 "google.com" 。访问 "facebook.com" browserHistory.visit("youtube.com"); // 你原本在浏览 "facebook.com" 。访问 "youtube.com" browserHistory.back(1); // 你原本在浏览 "youtube.com" ,后退到 "facebook.com" 并返回 "facebook.com" browserHistory.back(1); // 你原本在浏览 "facebook.com" ,后退到 "google.com" 并返回 "google.com" browserHistory.forward(1); // 你原本在浏览 "google.com" ,前进到 "facebook.com" 并返回 "facebook.com" browserHistory.visit("linkedin.com"); // 你原本在浏览 "facebook.com" 。 访问 "linkedin.com" browserHistory.forward(2); // 你原本在浏览 "linkedin.com" ,你无法前进任何步数。 browserHistory.back(2); // 你原本在浏览 "linkedin.com" ,后退两步依次先到 "facebook.com" ,然后到 "google.com" ,并返回 "google.com" browserHistory.back(7); // 你原本在浏览 "google.com", 你只能后退一步到 "leetcode.com" ,并返回 "leetcode.com"
提示:
1 <= homepage.length <= 201 <= url.length <= 201 <= steps <= 100homepage和url都只包含 '.' 或者小写英文字母。- 最多调用
5000次visit,back和forward函数。
解题方法:数组模拟
使用一个大小可变的数组模拟浏览器(标签页)历史记录。初始值只有一个元素homepage。
使用now变量记录当前页面的下标,使用right记录最后一个页面的下标。
同时做到:历史记录数组只增不减,要减小就左移right指针。这样能避免一些重复开辟和释放空间带来的性能损耗。
visit:
back:
now = max(0, now - step),然后直接返回history[now]
forward:
now = min(right, now + step),然后直接返回history[now]
- 时间复杂度 O ( N 2 ) O(N^2) O(N2)
- 空间复杂度 O ( N log N ) O(N\log N) O(NlogN)
AC代码
C++
/** @Author: LetMeFly* @Date: 2025-02-26 13:16:28* @LastEditors: LetMeFly.xyz* @LastEditTime: 2025-02-26 13:37:36*/
class BrowserHistory {
private:vector<string> history;int now, right;
public:BrowserHistory(string homepage) {history.push_back(homepage);now = right = 0;}void visit(string url) {if (++now == history.size()) {history.push_back(url);} else {history[now] = url;}right = now;}string back(int steps) {now = max(0, now - steps);return history[now];}string forward(int steps) {now = min(right, now + steps);return history[now];}
};/*** Your BrowserHistory object will be instantiated and called as such:* BrowserHistory* obj = new BrowserHistory(homepage);* obj->visit(url);* string param_2 = obj->back(steps);* string param_3 = obj->forward(steps);*/
- 执行用时分布14ms击败92.71%
- 消耗内存分布60.61MB击败96.09%
Python
'''
Author: LetMeFly
Date: 2025-02-26 13:38:49
LastEditors: LetMeFly.xyz
LastEditTime: 2025-02-26 13:41:11
'''
class BrowserHistory:def __init__(self, homepage: str):self.history = [homepage]self.now = self.right = 0def visit(self, url: str) -> None:self.now += 1if self.now == len(self.history):self.history.append(url)else:self.history[self.now] = urlself.right = self.nowdef back(self, steps: int) -> str:self.now = max(0, self.now - steps)return self.history[self.now]def forward(self, steps: int) -> str:self.now = min(self.right, self.now + steps)return self.history[self.now]# Your BrowserHistory object will be instantiated and called as such:
# obj = BrowserHistory(homepage)
# obj.visit(url)
# param_2 = obj.back(steps)
# param_3 = obj.forward(steps)
Java
/** @Author: LetMeFly* @Date: 2025-02-26 13:41:42* @LastEditors: LetMeFly.xyz* @LastEditTime: 2025-02-26 13:45:07*/
import java.util.List;
import java.util.ArrayList;class BrowserHistory {private List<String> history;private int now, right;public BrowserHistory(String homepage) {history = new ArrayList<>();now = right = 0;history.add(homepage);}public void visit(String url) {if (++now == history.size()) {history.add(url);} else {history.set(now, url);}right = now;}public String back(int steps) {now = Math.max(0, now - steps);return history.get(now);}public String forward(int steps) {now = Math.min(right, now + steps);return history.get(now);}
}/*** Your BrowserHistory object will be instantiated and called as such:* BrowserHistory obj = new BrowserHistory(homepage);* obj.visit(url);* String param_2 = obj.back(steps);* String param_3 = obj.forward(steps);*/
Go
/** @Author: LetMeFly* @Date: 2025-02-26 13:45:43* @LastEditors: LetMeFly.xyz* @LastEditTime: 2025-02-26 13:49:00*/
package maintype BrowserHistory struct {history []stringnow,right int
}func Constructor(homepage string) BrowserHistory {history := make([]string, 1)history[0] = homepagereturn BrowserHistory{history: history,now: 0,right: 0,}
}func (this *BrowserHistory) Visit(url string) {this.now++if this.now == len(this.history) {this.history = append(this.history, url)} else {this.history[this.now] = url}this.right = this.now
}func (this *BrowserHistory) Back(steps int) string {this.now = max(0, this.now - steps)return this.history[this.now]
}func (this *BrowserHistory) Forward(steps int) string {this.now = min(this.right, this.now + steps)return this.history[this.now]
}/*** Your BrowserHistory object will be instantiated and called as such:* obj := Constructor(homepage);* obj.Visit(url);* param_2 := obj.Back(steps);* param_3 := obj.Forward(steps);*/
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千篇源码题解已开源
