259. 3Sum Smaller小于版3sum
Posted immiao0319
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[抄题]:
Given an array of n integers nums and a target, find the number of index triplets i, j, k
with 0 <= i < j < k < n
that satisfy the condition nums[i] + nums[j] + nums[k] < target
.
Example:
Input: nums = [-2,0,1,3]
, and target = 2
Output: 2
Explanation: Because there are two triplets which sums are less than 2:
[-2,0,1]
[-2,0,3]
Follow up: Could you solve it in O(n2) runtime?
[暴力解法]:
时间分析:
空间分析:
[优化后]:
时间分析:
空间分析:
[奇葩输出条件]:
[奇葩corner case]:
[思维问题]:
想到了化成2sum变形,但是不知道怎么改变第三个变量的值:for一遍就行了
[英文数据结构或算法,为什么不用别的数据结构或算法]:
nsum指针对撞必须要排序,初始化时就写,别忘了!
[一句话思路]:
[输入量]:空: 正常情况:特大:特小:程序里处理到的特殊情况:异常情况(不合法不合理的输入):
[画图]:
[一刷]:
- right很大时,right-left都小于了,right变小时就更可以了。所以count+=right-left一段
- 必须要在left < right的while循环前提条件下进行
[二刷]:
[三刷]:
[四刷]:
[五刷]:
[五分钟肉眼debug的结果]:
[总结]:
怎么改变第三个变量的值:for一遍就行了
[复杂度]:Time complexity: O(n2) Space complexity: O(n)
[算法思想:迭代/递归/分治/贪心]:
[关键模板化代码]:
[其他解法]:
[Follow Up]:
[LC给出的题目变变变]:
[代码风格] :
[是否头一次写此类driver funcion的代码] :
[潜台词] :
class Solution { public int threeSumSmaller(int[] nums, int target) { //corner case if (nums == null || nums.length == 0) return 0; //initialization: count = 0, sort int count = 0; Arrays.sort(nums); //for loop and find i, left = i + 1, right = len - 1 for (int i = 0; i < nums.length - 2; i++) { int left = i + 1; int right = nums.length - 1; //while loop while (left < right) { //if and adjust left, right, add count if (nums[i] + nums[left] + nums[right] < target) { //add the whole period count += right - left; left++; } else { right--; } } } //return return count; } }
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