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.
分析:
算法1:首先想到的是排序,排序后遍历一遍就可以找出最长连续序列的长度,只是要稍微注意下判断连续序列的过程中有可能两个元素相同,比如1 2 2 3,排序复杂度n*log(n),虽然题目要求O(n)复杂度,但是这个解法也可以通过OJ,代码如下:
1 class Solution { 2 public: 3 int longestConsecutive(vector<int> &num) { 4 // IMPORTANT: Please reset any member data you declared, as 5 // the same Solution instance will be reused for each test case. 6 int res = 1, len = num.size(); 7 if(len == 0)return 0; 8 sort(num.begin(), num.end()); 9 int curr = 1; 10 for(int i = 1; i < len; i++) 11 { 12 if(num[i] - num[i-1] == 1) 13 { 14 curr++; 15 if(curr > res)res = curr; 16 } 17 else if(num[i] - num[i-1] == 0); 18 else 19 curr = 1; 20 } 21 return res; 22 } 23 };
算法2:想要O(n)的算法,我们只有以时间换空间,先把数组中所有元素映射到哈希表。然后以题目给出的数组为例:对于100,先向下查找99没找到,然后向上查找101也没找到,那么连续长度是1,从哈希表中删除100;然后是4,向下查找找到3,2,1,向上没有找到5,那么连续长度是4,从哈希表中删除4,3,2,1。这样对哈希表中已存在的某个元素向上和向下查找,直到哈希表为空。算法相当于遍历了一遍数组,然后再遍历了一遍哈希表,复杂的为O(n)。代码如下: 本文地址
1 class Solution { 2 public: 3 int longestConsecutive(vector<int> &num) { 4 // IMPORTANT: Please reset any member data you declared, as 5 // the same Solution instance will be reused for each test case. 6 int res = 1, len = num.size(); 7 if(len == 0)return 0; 8 unordered_set<int> hashtable; 9 for(int i = 0; i < len; i++) 10 hashtable.insert(num[i]); 11 while(hashtable.empty() == false) 12 { 13 int currlen = 1; 14 int curr = *(hashtable.begin()); 15 hashtable.erase(curr); 16 int tmp = curr-1; 17 while(hashtable.empty()==false && 18 hashtable.find(tmp) != hashtable.end()) 19 { 20 hashtable.erase(tmp); 21 currlen++; 22 tmp--; 23 } 24 tmp = curr+1; 25 while(hashtable.empty()==false && 26 hashtable.find(tmp) != hashtable.end()) 27 { 28 hashtable.erase(tmp); 29 currlen++; 30 tmp++; 31 } 32 if(res < currlen)res = currlen; 33 } 34 return res; 35 } 36 };
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