Given an array of integers and an integer k, you need to find the number of unique k-diff pairs in the array. Here a k-diff pair is defined as an integer pair (i, j), where i and j are both numbers in the array and their absolute difference is k.
Example 1:
Input: [3, 1, 4, 1, 5], k = 2 Output: 2 Explanation: There are two 2-diff pairs in the array, (1, 3) and (3, 5).
Although we have two 1s in the input, we should only return the number of unique pairs.
Example 2:
Input:[1, 2, 3, 4, 5], k = 1 Output: 4 Explanation: There are four 1-diff pairs in the array, (1, 2), (2, 3), (3, 4) and (4, 5).
Example 3:
Input: [1, 3, 1, 5, 4], k = 0 Output: 1 Explanation: There is one 0-diff pair in the array, (1, 1).
Note:
- The pairs (i, j) and (j, i) count as the same pair.
- The length of the array won‘t exceed 10,000.
- All the integers in the given input belong to the range: [-1e7, 1e7].
找出数组中元素差值为k的元素对的数量。要求元素对不重复。
思路:首先对数组进行排序,才能利用差为k这个条件顺序遍历,然后使用两个指针对数组遍历。类似于选择排序 ,将差值为k的两个元素的和放入set中。最后遍历结束返回set的大小即可。
之所以使用set是因为题目要求元素对不可以重复。
成功Accept但是Runtime感人。
class Solution { public: int findPairs(vector<int>& nums, int k) { if (nums.empty()) return 0; unordered_set<int> s; sort(nums.begin(), nums.end()); for (int i = 0; i < nums.size() - 1; i++) { for (int j = i + 1; j < nums.size(); j++) { if (nums[j] - nums[i] == k) s.emplace(nums[j] + nums[i]); } } return s.size(); } }; // 813 ms