5

I am working on problem Contains Duplicate III - LeetCode

Given an array of integers, find out whether there are two distinct indices i and j in the array such that the absolute difference between nums[i] and nums[j]**is at most t and the **absolute difference between i and j is at most k.

Example 1:

Input: nums = [1,2,3,1], k = 3, t = 0
Output: true

Example 2:

Input: nums = [1,0,1,1], k = 1, t = 2
Output: true

Example 3:

Input: nums = [1,5,9,1,5,9], k = 2, t = 3
Output: false

Read a bucket sort solution from the discussion area

class Solution2:
    def containsNearbyAlmostDuplicate(self, nums, k, t):
        if t < 0: return False
        lookup = {}
        for i in range(len(nums)):
            b_idx = nums[i] // (t+1) 
            if b_idx in lookup:
                return True
            if b_idx - 1 in lookup and abs(nums[i] - lookup[b_idx - 1]) < t+1:
                return True
            if b_idx + 1 in lookup and abs(nums[i] - lookup[b_idx + 1]) < t+1:
                return True
            lookup[b_idx] = nums[i] 
            if i >= k: del lookup[nums[i-k] // (t+1)]
        return False    

The explaination

The idea is like the bucket sort algorithm. Suppose we have consecutive buckets covering the range of nums with each bucket a width of (t+1). If there are two item with difference <= t, one of the two will happen:
(1) the two in the same bucket
(2) the two in neighbor buckets

I know the logic of bucket sort, but have no ideas how this solution works.

I think, it is necessary to compare between all the values with range of width, but the solution only compare the same bucket and the adjacent bucket,

del lookup[num[i-k], I cannot figure out what the purpose of this manipulation.

4

First Question: why only compare the same bucket and the adjacent bucket?

As author said, there are two situations if (a, b) is a valid pair:

(1) the two in the same bucket
(2) the two in neighbor buckets

If b - a <= t then only two situations as above said, you can understand it by bucket examples here:

<--a-- t+1 ---b-><----- t+1 -----> in same bucket
<----- t+1 --a--><---b- t+1 -----> in neighbor buckets

Bucket is used here is because we want to divide the range into pariticular width, and decrease the compare times. This is a method of trading space for time.


Second Question: why del lookup[num[i-k]?

Because the second restrict is the difference index i, j should at most k.

So in for i in range(len(nums)): we should remove the previous index j from bucket, if i - j == k. And difference equal k is included, so we should remove after logic.

If you don't do that, you will find the pairs which abs(nums[i]-nums[j])<=t, but abs(i-j)>t


I hope I make it clear, and comment if you have further questions. : )


By the way, an advice: if you are confused or stucked, you can go through a example by print or debug, you will be more clear, especially for corner case.

  • 1
    I'm really appreciate for your support, I'm new guy here less than two weeks, and I enjoy helping others, and enhance my skills and communication ability at same time. By the way, forgive for my poor english : ) @l'L'l – recnac Apr 8 at 3:48
  • amazing, cannot believe you are new. – Alice Apr 8 at 3:50
  • Actually I have got a lot of help from stackoverflow when I googled. But didn't sign up before. : ) @Alice – recnac Apr 8 at 3:53
  • I tried best to wrap my mind around but still unclear if i >=k, since i-j==k is included, why it is not 'if i > k`? – Alice Apr 8 at 4:18
  • 1
    an advice: if you are confused, you can go through a example by print or debug, you will be more clear, especially for corner case. – recnac Apr 8 at 4:48

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.