找漏洞

package twopointers

import "sort"

func threeSumMulti(arr []int, target int) int {
    mod := 1000000000
    ans := 0
    n := len(arr)
    n1 := n - 1
    n2 := n - 2
    sort.Ints(arr)
    for i := 0; i < n2; i++ {
        t := target - arr[i]
        j, k := i+1, n1
        for j < k {
            if arr[j]+arr[k] < t {
                j++
            } else if arr[j]+arr[k] > t {
                k--
            } else if arr[j] != arr[k] {
                left, right := 1, 1
                for j+left < k && arr[j] == arr[j+left] {
                    left++
                }
                j += left
                for j < k-right && arr[k] == arr[k-right] {
                    right++
                }
                k -= right
                ans += (left * right) % mod
            } else {
                m := k - j + 1
                ans += (m * (m - 1) / 2) % mod
                break
            }
        }
    }
    return ans % mod
}

/*
923. 3Sum With Multiplicity
Given an integer array arr, and an integer target, return the number of tuples i, j, k such that i < j < k and arr[i] + arr[j] + arr[k] == target.

As the answer can be very large, return it modulo 109 + 7.



Example 1:

Input: arr = [1,1,2,2,3,3,4,4,5,5], target = 8
Output: 20
Explanation:
Enumerating by the values (arr[i], arr[j], arr[k]):
(1, 2, 5) occurs 8 times;
(1, 3, 4) occurs 8 times;
(2, 2, 4) occurs 2 times;
(2, 3, 3) occurs 2 times.
Example 2:

Input: arr = [1,1,2,2,2,2], target = 5
Output: 12
Explanation:
arr[i] = 1, arr[j] = arr[k] = 2 occurs 12 times:
We choose one 1 from [1,1] in 2 ways,
and two 2s from [2,2,2,2] in 6 ways.
Example 3:

Input: arr = [2,1,3], target = 6
Output: 1
Explanation: (1, 2, 3) occured one time in the array so we return 1.


Constraints:

3 <= arr.length <= 3000
0 <= arr[i] <= 100
0 <= target <= 300

923. 三数之和的多种可能 https://leetcode.cn/problems/3sum-with-multiplicity/
*/
posted @ 2022-12-07 23:11  papering  阅读(42)  评论(0编辑  收藏  举报