Python数字在排序数组中出现的次数
二分查找的扩展。可以构造两个函数。第一个函数查找目标数字出现的最前面的位置,先使用二分查找找到该数字,如果该数字的index > 0而且该数字前面一个数字等于k的话,那么就令end=middle-1,继续二分查找。对于第二个函数,查找目标数字出现的最后面的位置,反之编写。最后如果数字存在的话,令走后面的index减去最前面的index然后+1即可。在进行有序数组的元素查找,可以先尝试一下二分查找
'''
统计一个数字在排序数组中出现的次数。
'''
# -*- coding:utf-8 -*-
class Solution:
def GetNumberOfK(self, data, k):
number = 0
if data != None and len(data) > 0:
length = len(data)
first = self.GetFirstK(data, length, k, 0, length-1)
last = self.GetLastK(data, length, k, 0, length-1)
if first > -1:
number = last - first + 1
return number
def GetFirstK(self, data, length, k, start, end):
if start > end:
return -1
middleIndex = (start + end) // 2
middleData = data[middleIndex]
if middleData == k:
if middleIndex > 0 and data[middleIndex-1] == k:
end = middleIndex - 1
else:
return middleIndex
elif middleData > k:
end = middleIndex - 1
else:
start = middleIndex + 1
return self.GetFirstK(data, length, k, start, end)
def GetLastK(self, data, length, k, start, end):
if start > end:
return -1
middleIndex = (start + end) // 2
middleData = data[middleIndex]
if middleData == k:
if middleIndex < end and data[middleIndex+1] == k:
start = middleIndex + 1
else:
return middleIndex
elif middleData > k:
end = middleIndex - 1
else:
start = middleIndex + 1
return self.GetLastK(data, length, k, start, end)
alist = [3,3,3,3,4,5]
s = Solution()
print(s.GetNumberOfK(alist, 3))