350 Intersection of Two Arrays II #89
Description
Redo Binary Search, has bug
349. Intersection of Two Arrays
class Solution(object):
def intersection(self, nums1, nums2):
nums1 = set(nums1)
nums2 = set(nums2)
res = []
for num in nums1:
if num in nums2:
res.append(num)
return resFollow up
350 Intersection of Two Arrays II
Bugfree in 3 mins using 2 pointers. Pretend the arrays are sorted.
Time: O(N) if array given are sorted
Space: O(1)
class Solution(object):
def intersect(self, nums1, nums2):
nums1.sort()
nums2.sort()
i, j = 0, 0
m, n = len(nums1), len(nums2)
res = []
while i < m and j < n:
if nums1[i] == nums2[j]:
res.append(nums1[i])
i += 1; j += 1
elif nums1[i] < nums2[j]:
i += 1
else:
j += 1
return res350 Intersection of Two Arrays II -> Binary Search
class Solution(object):
def intersect(self, nums1, nums2):
nums1.sort()
nums2.sort()
if len(nums1) < len(nums2):
shortNums = nums1 ; longNums = nums2
else:
shortNums = nums2 ; longNums = nums1
res = []
left, right = 0, len(longNums)
for ele in shortNums:
index = self.binarySearch(longNums, res, left, right, ele)
if index != -1:
left = index + 1
res.append(longNums[index])
return res
def binarySearch(self, longNums, res, left, right, target):
while left + 1 < right:
mid = (left + right) // 2
if longNums[mid] == target:
right = mid
elif longNums[mid] < target:
left = mid
else:
right = mid
if left < len(longNums) and longNums[left] == target:
return left
if right < len(longNums) and longNums[right] == target:
return right
return -1