- Difficulty: Hard
- Tags: LeetCode, Hard, Union Find, Array, Math, Number Theory, leetcode-2709, Breadth-First Search, O(sqrt(r) + nlogr), Linear Sieve of Eratosthenes, Factorization, BFS
Problem
You are given a 0-indexed integer array nums
, and you are allowed to traverse between its indices. You can traverse between index i
and index j
, i != j
, if and only if gcd(nums[i], nums[j]) > 1
, where gcd
is the greatest common divisor.
Your task is to determine if for every pair of indices i
and j
in nums, where i < j
, there exists a sequence of traversals that can take us from i
to j
.
Return true
if it is possible to traverse between all such pairs of indices, or false
otherwise.
Example 1:
Input: nums = [2,3,6] Output: true Explanation: In this example, there are 3 possible pairs of indices: (0, 1), (0, 2), and (1, 2). To go from index 0 to index 1, we can use the sequence of traversals 0 -> 2 -> 1, where we move from index 0 to index 2 because gcd(nums[0], nums[2]) = gcd(2, 6) = 2 > 1, and then move from index 2 to index 1 because gcd(nums[2], nums[1]) = gcd(6, 3) = 3 > 1. To go from index 0 to index 2, we can just go directly because gcd(nums[0], nums[2]) = gcd(2, 6) = 2 > 1. Likewise, to go from index 1 to index 2, we can just go directly because gcd(nums[1], nums[2]) = gcd(3, 6) = 3 > 1.
Example 2:
Input: nums = [3,9,5] Output: false Explanation: No sequence of traversals can take us from index 0 to index 2 in this example. So, we return false.
Example 3:
Input: nums = [4,3,12,8] Output: true Explanation: There are 6 possible pairs of indices to traverse between: (0, 1), (0, 2), (0, 3), (1, 2), (1, 3), and (2, 3). A valid sequence of traversals exists for each pair, so we return true.
Constraints:
1 <= nums.length <= 105
1 <= nums[i] <= 105