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.
思路:先把大神的方法亮出来
use a hash map to store boundary information of consecutive sequence for each element; there 4 cases when a new element i reached:
1) neither i+1 nor i-1 has been seen: m[i]=1;
2) both i+1 and i-1 have been seen: extend m[i+m[i+1]] and m[i-m[i-1]] to each other;
3) only i+1 has been seen: extend m[i+m[i+1]] and m[i] to each other;
4) only i-1 has been seen: extend m[i-m[i-1]] and m[i] to each other.
int longestConsecutive(vector<int> &num) { unordered_map<int, int> m; int r = 0; for (int i : num) { if (m[i]) continue; //跳过重复 r = max(r, m[i] = m[i + m[i + 1]] = m[i - m[i - 1]] = m[i + 1] + m[i - 1] + 1); //如果新的数字把左右连起来了,则把该连起来的序列的第一个数m[i - m[i - 1]]和最后一个数字m[i + m[i + 1]] 设为新的长度! } return r; }
下面是我自己写的,可谓血与泪的历史。
首先O(n)表示一定不能排序, 那如何获得左右邻接的信息呢。 肯定要用hash了。结果花了2个小时,写了一个超复杂的代码。虽然AC,但是.......唉...................................................
int longestConsecutive(vector<int> &num) { //去重复 unordered_set<int> s; for(int i = 0; i < num.size(); i++) { if(s.find(num[i]) == s.end()) s.insert(num[i]); else num.erase(num.begin() + (i--)); } int maxlen = 0; unordered_map<int, int> first; //记录每个连续序列的第一个数字在record中的哪个位置 unordered_map<int, int> last; //记录每个连续序列的最后一个数字在record中的哪个位置 vector<vector<int>> record; //记录每个连续序列的第一个数字和最后一个数字是什么 for(int i = 0; i < num.size(); i++) { int pre, post; unordered_map<int, int>::iterator f = first.find(num[i] + 1); unordered_map<int, int>::iterator l = last.find(num[i] - 1); if(f != first.end() && l != last.end()) { pre = l->second; post = f->second; //修改hash表 last.erase(record[pre][1]); first.erase(record[post][0]); last[record[post][1]] = pre; //修改记录的区间 record[pre][1] = record[post][1]; maxlen = (maxlen > record[pre][1] - record[pre][0] + 1) ? maxlen : record[pre][1] - record[pre][0] + 1; record[post].clear(); } else if(f != first.end()) { post = f->second; //修改hash first.erase(record[post][0]); first[num[i]] = post; //修改区间 record[post][0] = num[i]; maxlen = (maxlen > record[post][1] - record[post][0] + 1) ? maxlen : record[post][1] - record[post][0] + 1; } else if(l != last.end()) { pre = l->second; last.erase(record[pre][0]); last[num[i]] = pre; record[pre][1] = num[i]; maxlen = (maxlen > record[pre][1] - record[pre][0] + 1) ? maxlen : record[pre][1] - record[pre][0] + 1; } else { record.push_back(vector<int>(2, num[i])); first[num[i]] = record.size() - 1; last[num[i]] = record.size() - 1; maxlen = (maxlen > 1) ? maxlen : 1; } } return maxlen; }