https://leetcode.com/problems/two-sum-ii-input-array-is-sorted/description/
这是leetcode头号题目two sum
的第二个版本,难度简单。
Given an array of integers that is already sorted in ascending order, 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.
Note:
Your returned answers (both index1 and index2) are not zero-based.
You may assume that each input would have exactly one solution and you may not use the same element twice.
Example:
Input: numbers = [2,7,11,15], target = 9
Output: [1,2]
Explanation: The sum of 2 and 7 is 9. Therefore index1 = 1, index2 = 2.
由于题目没有对空间复杂度有求,用一个hashmap 存储已经访问过的数字即可。
假如题目空间复杂度有要求,由于数组是有序的,只需要双指针即可。一个left指针,一个right指针, 如果left + right 值 大于target 则 right左移动, 否则left右移,代码比较简单, 不贴了。
如果数组无序,需要先排序(从这里也可以看出排序是多么重要的操作)
无
/*
* @lc app=leetcode id=167 lang=javascript
*
* [167] Two Sum II - Input array is sorted
*
* https://leetcode.com/problems/two-sum-ii-input-array-is-sorted/description/
*
* algorithms
* Easy (49.46%)
* Total Accepted: 221.8K
* Total Submissions: 447K
* Testcase Example: '[2,7,11,15]\n9'
*
* Given an array of integers that is already sorted in ascending order, 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.
*
* Note:
*
*
* Your returned answers (both index1 and index2) are not zero-based.
* You may assume that each input would have exactly one solution and you may
* not use the same element twice.
*
*
* Example:
*
*
* Input: numbers = [2,7,11,15], target = 9
* Output: [1,2]
* Explanation: The sum of 2 and 7 is 9. Therefore index1 = 1, index2 = 2.
*
*/
/**
* @param {number[]} numbers
* @param {number} target
* @return {number[]}
*/
var twoSum = function(numbers, target) {
const visited = {} // 记录出现的数字, 空间复杂度N
for (let index = 0; index < numbers.length; index++) {
const element = numbers[index];
if (visited[target - element]) {
return [visited[target - element], index + 1]
}
visited[element] = index + 1;
}
return [];
};