Given a sorted array, remove the duplicates in place such that each element appear only once and return the new length.
Do not allocate extra space for another array, you must do this in place with constant memory.
For example, Given input array A = [1,1,2],
Your function should return length = 2, and A is now [1,2].
这道题是要求删除一个有序数组中的重复元素。
因为是有序数组,所以值相同的元素一定在连续的位置上,用类似于插入排序的思想,,初始时将第一个元素看做是非重复的有序表,之后顺序依次判断后面的元素是不是比前面非重复有序数组的最后一个元素相同。若相同,则继续向后判断,若不同,则插入到前面的非重复有序数组的最后,直到判断到数组结束。
class Solution {public:int removeDuplicates(int A[], int n) {if(!n)return 0;int i=0,j=1;for(;j<n;j++){if(A[i]<A[j]){A[++i]=A[j];}}return i+1;}};
一直有记日记的习惯,可是,旅行回来,都懒得写日记来记录,
![[LeetCode]Remove Duplicates from Sorted Array](https://www.note234.com/wp-content/themes/generatepress/images/88.jpg)