leetcode 001 - 003

leetcode 001

leetcode 001 - 003_第1张图片

leetcode 001 - 003_第2张图片

代码实现

暴力求解行不通,第一次运行成功是用首尾递归法。时间复杂度其实也不差,有O(nlogn)。

class Solution:
    def twoSum(self, nums, target):
        """
        :type nums: List[int]
        :type target: int
        :rtype: List[int]
        """
        sNums = sorted(nums)
        i = 0
        j = len(sNums) - 1
        while i < j:
            if sNums[i] + sNums[j] > target:
                j = j - 1
            elif sNums[i] + sNums[j] < target:
                i = i + 1
            else:
                m = nums.index(sNums[i])
                n = nums.index(sNums[j])
                if m == n:
                    nums.remove(nums[m])
                    n = nums.index(sNums[j]) + 1
                return [m, n]

上面的代码其实太啰嗦了,用索引来循环查找形式上会更简洁:

class Solution:
    def twoSum(self, nums, target):
        """
        :type nums: List[int]
        :type target: int
        :rtype: List[int]
        """
        sorted_id = sorted(range(len(nums)), key=lambda k: nums[k])
        head = 0
        tail = len(nums) - 1
        sum_result = nums[sorted_id[head]] + nums[sorted_id[tail]]
        while sum_result != target:
            if sum_result > target:
                tail -= 1
            elif sum_result < target:
                head += 1
            sum_result = nums[sorted_id[head]] + nums[sorted_id[tail]]
        return [sorted_id[head], sorted_id[tail]]

这是答案上的最佳实践,时间复杂度O(n)。

class Solution:
    def twoSum(self, nums, target):
        """
        :type nums: List[int]
        :type target: int
        :rtype: List[int]
        """
        hashmap = {}
        for index, num in enumerate(nums):
            another_num = target - num
            if another_num in hashmap:
                return [hashmap[another_num], index]
            hashmap[num] = index
        return None

leetcode 002

leetcode 001 - 003_第3张图片

leetcode 001 - 003_第4张图片

代码实现

没什么好说的,虽然想了挺久,但是弄明白后就是一次过,这里贴上最后一次优化结构提交的:

# Definition for singly-linked list.
# class ListNode:
#     def __init__(self, x):
#         self.val = x
#         self.next = None

class Solution:
    
    def nextNode(self, node, val):
        """
        :type val: int
        :rtpe: ListNode
        """
        nextNode = ListNode(val)
        node.next = nextNode
        return nextNode
    
    def plus(self, node1, node2, carry):
        """
        :type node1: ListNode
        :type node2: ListNode
        :type carry: int
        :rtype: int, int
        """
        v1 = node1.val if node1 else 0
        v2 = node2.val if node2 else 0
        val = v1 + v2 + carry
        return val % 10 , val // 10
        
    def addTwoNumbers(self, l1, l2):
        """
        :type l1: ListNode
        :type l2: ListNode
        :rtype: ListNode
        """
        node = head = ListNode(0)
        carry = 0
        while l1 or l2 or carry:
            val, carry = self.plus(l1, l2, carry)
            node = self.nextNode(node, val)
            l1 = l1.next if l1 else None
            l2 = l2.next if l2 else None
        return head.next

leetcode 003

leetcode 001 - 003_第5张图片

leetcode 001 - 003_第6张图片

代码实现

有点用到队列的思想,但又不一样。

class Solution:
    def lengthOfLongestSubstring(self, s):
        """
        :type s: str
        :rtype: int
        """
        lst = []
        length = 0
        for i in s:
            if i in lst:
                while True:
                    if lst[0] != i:
                        lst.pop(0)
                    else:
                        lst.pop(0)
                        break
            lst.append(i)
            length = len(lst) if len(lst) > length else length
        return length

上面代码有一部分可以优化得非常简单:

class Solution:
    def lengthOfLongestSubstring(self, s):
        """
        :type s: str
        :rtype: int
        """
        lst = []
        length = 0
        for i in s:
            if i in lst:
                lst = lst[lst.index(i) + 1:] ## 巧妙运用切片
            lst.append(i)
            length = len(lst) if len(lst) > length else length
        return length

转载于:https://www.cnblogs.com/ChanWunsam/p/10222628.html

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