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twoSum.cpp
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twoSum.cpp
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// Source : https://oj.leetcode.com/problems/two-sum/
// Author : Hao Chen
// Date : 2014-06-17
/**********************************************************************************
*
* Given an array of integers, find two numbers such that they add up to a specific target number.
*
* The function twoSum should return indices of the two numbers such that they add up to the target,
* where index1 must be less than index2. Please note that your returned answers (both index1 and index2)
* are not zero-based.
*
* You may assume that each input would have exactly one solution.
*
* Input: numbers={2, 7, 11, 15}, target=9
* Output: index1=1, index2=2
*
*
**********************************************************************************/
class Solution {
public:
/*
* The easy solution is O(n^2) run-time complexity.
* ```
* foreach(item1 in array) {
* foreach(item2 in array){
* if (item1 + item2 == target) {
* return result
* }
* }
* ```
*
* We can see the nested loop just for searching,
* So, we can use a hashmap to reduce the searching time complexity from O(n) to O(1)
* (the map's `key` is the number, the `value` is the position)
*
* But be careful, if there are duplication numbers in array,
* how the map store the positions for all of same numbers?
*
*/
//
// The implementation as below is bit tricky. but not difficult to understand
//
// 1) Traverse the array one by one
// 2) just put the `target - num[i]`(not `num[i]`) into the map
// so, when we checking the next num[i], if we found it is exisited in the map.
// which means we found the second one.
//
vector<int> twoSum(vector<int> &numbers, int target) {
unordered_map<int, int> m;
vector<int> result;
for(int i=0; i<numbers.size(); i++){
// not found the second one
if (m.find(numbers[i])==m.end() ) {
// store the first one poisition into the second one's key
m[target - numbers[i]] = i;
}else {
// found the second one
result.push_back(m[numbers[i]]+1);
result.push_back(i+1);
break;
}
}
return result;
}
};