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RestoreTheArrayFromAdjacentPairs.cpp
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RestoreTheArrayFromAdjacentPairs.cpp
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// Source : https://leetcode.com/problems/restore-the-array-from-adjacent-pairs/
// Author : Hao Chen
// Date : 2021-03-28
/*****************************************************************************************************
*
* There is an integer array nums that consists of n unique elements, but you have forgotten it.
* However, you do remember every pair of adjacent elements in nums.
*
* You are given a 2D integer array adjacentPairs of size n - 1 where each adjacentPairs[i] = [ui, vi]
* indicates that the elements ui and vi are adjacent in nums.
*
* It is guaranteed that every adjacent pair of elements nums[i] and nums[i+1] will exist in
* adjacentPairs, either as [nums[i], nums[i+1]] or [nums[i+1], nums[i]]. The pairs can appear in any
* order.
*
* Return the original array nums. If there are multiple solutions, return any of them.
*
* Example 1:
*
* Input: adjacentPairs = [[2,1],[3,4],[3,2]]
* Output: [1,2,3,4]
* Explanation: This array has all its adjacent pairs in adjacentPairs.
* Notice that adjacentPairs[i] may not be in left-to-right order.
*
* Example 2:
*
* Input: adjacentPairs = [[4,-2],[1,4],[-3,1]]
* Output: [-2,4,1,-3]
* Explanation: There can be negative numbers.
* Another solution is [-3,1,4,-2], which would also be accepted.
*
* Example 3:
*
* Input: adjacentPairs = [[100000,-100000]]
* Output: [100000,-100000]
*
* Constraints:
*
* nums.length == n
* adjacentPairs.length == n - 1
* adjacentPairs[i].length == 2
* 2 <= n <= 10^5
* -10^5 <= nums[i], ui, vi <= 10^5
* There exists some nums that has adjacentPairs as its pairs.
******************************************************************************************************/
class Solution {
public:
vector<int> restoreArray(vector<vector<int>>& adjacentPairs) {
// only two numbers have one neighbour
// start from one of them to travel all number.
unordered_map<int, vector<int>> dict;
for(auto& pair : adjacentPairs) {
dict[pair[0]].push_back(pair[1]);
dict[pair[1]].push_back(pair[0]);
}
int end[2]; int i=0;
for (auto& [key, pair] : dict) {
if(pair.size()==1) end[i++] = key;
if (i>1) break;
}
//cout << "start=" << end[0] <<", end=" << end[1] << endl;
vector<int> result(1, end[0]);
int start = end[0];
int prev = -1;
while ( start != end[1] ) {
auto& v = dict[start];
for(int i= 0; i< v.size(); i++) {
if (v[i] == prev) continue;
result.push_back(v[i]);
prev = start;
start = v[i];
break;
}
}
return result;
}
};