Description
This is an interactive problem.
You have a sorted array of unique elements and an unknown size. You do not have an access to the array but you can use the ArrayReader interface to access it. You can call ArrayReader.get(i) that:
- returns the value at the
ithindex (0-indexed) of the secret array (i.e.,secret[i]), or - returns
231 - 1if theiis out of the boundary of the array.
You are also given an integer target.
Return the index k of the hidden array where secret[k] == target or return -1 otherwise.
You must write an algorithm with O(log n) runtime complexity.
Example 1:
Input: secret = [-1,0,3,5,9,12], target = 9 Output: 4 Explanation: 9 exists in secret and its index is 4.
Example 2:
Input: secret = [-1,0,3,5,9,12], target = 2 Output: -1 Explanation: 2 does not exist in secret so return -1.
Constraints:
1 <= secret.length <= 104-104 <= secret[i], target <= 104secretis sorted in a strictly increasing order.
Solutions
Solution 1: Binary Search
First, we define a pointer r = 1. Each time, we check if the value at position r is less than the target value. If it is, we multiply r by 2, i.e., shift it left by one bit, until the value at position r is greater than or equal to the target value. At this point, we can determine that the target value is within the interval [r / 2, r].
Next, we define a pointer l = r / 2, and then we can use the binary search method to find the position of the target value within the interval [l, r].
The time complexity is O(log M), where M is the position of the target value. The space complexity is O(1).
# """ # This is ArrayReader's API interface. # You should not implement it, or speculate about its implementation # """ # class ArrayReader: # def get(self, index: int) -> int: class Solution: def search(self, reader: "ArrayReader", target: int) -> int: r = 1 while reader.get(r) < target: r <<= 1 l = r >> 1 while l < r: mid = (l + r) >> 1 if reader.get(mid) >= target: r = mid else: l = mid + 1 return l if reader.get(l) == target else -1(code-box)
