1.利用二分法实现O(log n)的查找,但是要主要当index1 = index2 = midindex时,只能按顺序查找
class Solution: def minNumberInRotateArray(self, rotateArray): # write code here if not rotateArray:return 0 lenth = len(rotateArray) index1 = 0 index2 = lenth - 1 midindex = 0 while rotateArray[index1] >= rotateArray[index2]: if index2 - index1 == 1: midindex = index2 return rotateArray[midindex] midindex = (index1 + index2) // 2 if rotateArray[index1] == rotateArray[index2] == rotateArray[midindex]: return self.MinOrder(rotateArray, index1, index2) if rotateArray[index1] <= rotateArray[midindex]: index1 = midindex elif rotateArray[index2] >= rotateArray[midindex]: index2 = midindex return rotateArray[midindex] def MinOrder(self, rotateArray, index1, index2): result = rotateArray[index1] for i in range(index1,index2,1): if rotateArray[i] < result: result = rotateArray[i] return result
- mid指针值只和right指针指向的值比较大小
- 当 numbers[mid] < numbers[right] 时,说明最小值在 [left, mid] 区间中,则令 right = mid,用于下一轮计算
- 当 numbers[mid] > numbers[right] 时,说明最小值在 [mid, right] 区间中,则令 left = mid + 1,用于下一轮计算
- 当 numbers[mid] == numbers[right] 时,无法判断最小值在哪个区间之中,此时让 right--,缩小区间范围,在下一轮进行判断
链接:https://leetcode-cn.com/leetbook/read/illustrate-lcof/55deoi/
class Solution: def minArray(self, numbers: List[int]) -> int: if not numbers: return None s = 0 e = len(numbers)-1 while s<e: mid = (s+e)//2 if numbers[mid] > numbers[e]: s = mid+1 elif numbers[mid] < numbers[e]: e = mid else: e = e-1 return numbers[s]