문제
Given a 1-indexed array of integers numbers that is already sorted in non-decreasing order, find two numbers such that they add up to a specific target number. Let these two numbers be numbers[index1] and numbers[index2] where 1 <= index1 < index2 <= numbers.length.
Return the indices of the two numbers, index1 and index2, added by one as an integer array [index1, index2] of length 2.
The tests are generated such that there is exactly one solution. You may not use the same element twice.
Your solution must use only constant extra space.
Example 1:
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. We return [1, 2].
Example 2:
Input: numbers = [2,3,4], target = 6
Output: [1,3]
Explanation: The sum of 2 and 4 is 6. Therefore index1 = 1, index2 = 3. We return [1, 3].
Example 3:
Input: numbers = [-1,0], target = -1
Output: [1,2]
Explanation: The sum of -1 and 0 is -1. Therefore index1 = 1, index2 = 2. We return [1, 2].
Constraints:
2 <= numbers.length <= 3 * 104-1000 <= numbers[i] <= 1000numbersis sorted in non-decreasing order.-1000 <= target <= 1000- The tests are generated such that there is exactly one solution.
풀이
class Solution {
public:
vector<int> twoSum(vector<int>& numbers, int target) {
int l = 0, r = numbers.size() - 1;
while(l < r) {
int sum = numbers[l] + numbers[r];
if(sum == target) return { l + 1, r + 1 };
if(sum < target) l++;
else r--;
}
return { 0, 0 };
}
};'Problem Solving > LeetCode' 카테고리의 다른 글
| [LeetCode - 15] 3Sum - C++ (0) | 2025.01.19 |
|---|---|
| [LeetCode - 125] Valid Palindrome - C++ (0) | 2025.01.19 |
| [LeetCode - 238] Products of Array Discluding Self - C++ (0) | 2024.05.31 |
| [LeetCode - 271] encode and decode strings - C++ (0) | 2024.05.30 |
| [LeetCode - 916] Decoded String at Index - C++ (0) | 2023.09.30 |
