Suppose you have a long flowerbed in which some of the plots are planted and some are not. However, flowers cannot be planted in adjacent plots - they would compete for water and both would die.
Given a flowerbed (represented as an array containing 0 and 1, where 0 means empty and 1 means not empty), and a number n, return if n new flowers can be planted in it without violating the no-adjacent-flowers rule.
Example 1:
Input: flowerbed = [1,0,0,0,1], n = 1 Output: True
Example 2:
Input: flowerbed = [1,0,0,0,1], n = 2 Output: False
Note:
- The input array won't violate no-adjacent-flowers rule.
- The input array size is in the range of [1, 20000].
- n is a non-negative integer which won't exceed the input array size.
思路:
看是否有连续三个0,注意最左边边界和最右边边界。
bool canPlaceFlowers(vector<int>& flowerbed, int n) { int len = flowerbed.size(); if(len==1 && flowerbed[0]==0 && n<=1)return true; int can =0; for(int i=0;i<len;i++) { if(flowerbed[i]==0 && i-1>=0 && i+1<len && flowerbed[i-1]==0&& flowerbed[i+1]==0) { can++; flowerbed[i]=1; } if(i==0&& flowerbed[0] == 0 && flowerbed[1]==0) { can++; flowerbed[0]=1; } if(i==len-3&& flowerbed[len-2] == 0 && flowerbed[len-1]==0) { can++; flowerbed[len-1]=1; } } if(can>=n)return true; return false; }