Two Sum II - Input array is sorted
Problem Statement - link #
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 <= first < second <= numbers.length.
Return the indices of the two numbers, index1 and index2, 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.
Examples #
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.
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.
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.
Constraints #
2 <= numbers.length <= 3 * 10^4-1000 <= numbers[i] <= 1000numbersis sorted in non-decreasing order-1000 <= target <= 1000- The tests are generated such that there is exactly one solution
Solution #
class Solution {
public:
int find2ndIndex(vector<int>& numbers,int left,int right,int t){
while(left<=right){
int mid = left + (right-left)/2;
if(numbers[mid] == t){
return mid;
}else if(numbers[mid] > t){
right = mid-1;
}else{
left = mid+1;
}
}
return 0;
}
vector<int> twoSum(vector<int>& numbers, int target) {
for(int i=0; i<numbers.size();i++){
int t = target - numbers[i];
int left=i+1,right=numbers.size()-1,mid;
mid = find2ndIndex(numbers,left,right,t);
if(mid)
return {i+1,mid+1};
}
return {0,0};
}
};