82. Remove Duplicates from Sorted List II

最新推荐文章于 2024-01-17 14:07:10 发布
最新推荐文章于 2024-01-17 14:07:10 发布
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本文链接:https://blog.youkuaiyun.com/AnonymousCrawler/article/details/78832021
本文介绍了一种算法,用于从已排序的链表中移除所有重复出现的节点,仅保留原始列表中的唯一数字。提供了迭代和递归两种实现方法。

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Description:

Given a sorted linked list, delete all nodes that have duplicate numbers, leaving only distinct numbers from the original list.

For example,

Given 1->2->3->3->4->4->5, return 1->2->5.

Given 1->1->1->2->3, return 2->3.


解析:使用两个指针head和pass,head不断遍历题目中的链表,遇到不重复的节点便链接到pass后,最后返回pass的头指针即可。这道题我们可以使用迭代和递归两种方法。


迭代版本:

class Solution {
public://迭代版
    ListNode* deleteDuplicates(ListNode* head) {
        if(!head || !head->next)    return head;
        
        ListNode* pass, new_head(0);
        new_head.next = head;
        pass = &new_head;

        while(head && head->next)
        {            
            if(head->val != head->next->val)
            {
                pass->next = head;
                pass = pass->next;
            }
            else
            {
                while(head->next && head->val == head->next->val)
                    head = head->next;
            }
            
            head = head->next;
        }
        
        if(head)
        {
            pass->next = head;
            pass = pass->next;
        }
        pass->next = NULL;

        return new_head.next;
    }
};
递归版本: 

class Solution{
public://递归版
    ListNode* deleteDuplicates(ListNode* head) {
        if(!head || !head->next)    return head;
        
        if(head->val != head->next->val)
        {
            head->next = deleteDuplicates(head->next);
            return head;
        }
        
        while(head->next && head->val == head->next->val)
            head = head->next;
        
        return deleteDuplicates(head->next);
    }
    
};




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