题目:
Given an unsorted array of integers, find the length of the longest consecutive elements sequence.
For example,
Given[100, 4, 200, 1, 3, 2],The longest consecutive elements sequence is [1, 2, 3, 4]. Return its length: 4. Your algorithm should run in O(n) complexity.
代码:
class Solution {public: int longestConsecutive(vector &num) { // hashmap record if element in num is visited std::map visited; for(std::vector ::iterator i = num.begin(); i != num.end(); ++i) { visited[*i] = false; } // search the longest consecutive unsigned int longest_global = 0; for(std::vector ::iterator i = num.begin(); i != num.end(); ++i) { if(visited[*i]) continue; unsigned int longest_local = 0; for(int j = *i+1; visited.find(j) != visited.end(); ++j) { visited[j] = true; ++longest_local; } for(int j = *i-1; visited.find(j) != visited.end(); --j) { visited[j] = true; ++longest_local; } longest_global = std::max(longest_global, longest_local+1); } return longest_global; }}; Tips:
1. 要想O(n), 而且无序,只能结合hashmap
2. 这里需要明确的一个逻辑是,通过hashmap前后访问,可以把包含当前元素的最大连同序列都找出来;而且访问过的元素不用再访问。
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第二次过这道题,大体的思路能顺下来,但是疏忽了几个细节。AC代码如下:
class Solution {public: int longestConsecutive(vector & nums) { int global_longest = 1; // initialize map unordered_map visited; for ( int i=0; i tips:
1. 根据某个元素往‘前’、‘后’两个方向遍历之前,要先记得把该元素设置为访问过(即,visited[nums[i]] = true;)
2. 第一遍把while循环中的 visited[curr]=true都写成了visited[nums[i]],这个纯属低级错误,不要再犯
3. 第一遍有一个逻辑上的错误:
"for ( int i=0; i<nums.size() && !visited[nums[i]]; ++i )"
本意是跳过已经访问过的元素。。。但是这么写如果遇到了访问过的元素,就不是跳过了,而是直接退出循环了。这是个思维的陷阱,记下来,下次不要再犯。