Class Solution
Medium
Given an array arr that represents a permutation of numbers from 1 to n.
You have a binary string of size n that initially has all its bits set to zero. At each step i (assuming both the binary string and arr are 1-indexed) from 1 to n, the bit at position arr[i] is set to 1.
You are also given an integer m. Find the latest step at which there exists a group of ones of length m. A group of ones is a contiguous substring of 1’s such that it cannot be extended in either direction.
Return the latest step at which there exists a group of ones of length exactly m. If no such group exists, return -1.
Example 1:
Input: arr = [3,5,1,2,4], m = 1
Output: 4
Explanation:
Step 1: “00100”, groups: [“1”]
Step 2: “00101”, groups: [“1”, “1”]
Step 3: “10101”, groups: [“1”, “1”, “1”]
Step 4: “11101”, groups: [“111”, “1”]
Step 5: “11111”, groups: [“11111”]
The latest step at which there exists a group of size 1 is step 4.
Example 2:
Input: arr = [3,1,5,4,2], m = 2
Output: -1
Explanation:
Step 1: “00100”, groups: [“1”]
Step 2: “10100”, groups: [“1”, “1”]
Step 3: “10101”, groups: [“1”, “1”, “1”]
Step 4: “10111”, groups: [“1”, “111”]
Step 5: “11111”, groups: [“11111”]
No group of size 2 exists during any step.
Constraints:
n == arr.length1 <= m <= n <= 1051 <= arr[i] <= n- All integers in
arrare distinct.
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Constructor Summary
Constructors -
Method Summary
Methods inherited from class java.lang.Object
clone, equals, finalize, getClass, hashCode, notify, notifyAll, toString, wait, wait, wait
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Constructor Details
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Solution
public Solution()
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Method Details
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findLatestStep
public int findLatestStep(int[] arr, int m)
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