Remove Duplicates from Unsorted List
最后更新于:2022-04-02 01:10:17
# Remove Duplicates from Unsorted List
### Source
- [Remove duplicates from an unsorted linked list - GeeksforGeeks](http://www.geeksforgeeks.org/remove-duplicates-from-an-unsorted-linked-list/)
~~~
Write a removeDuplicates() function which takes a list and deletes
any duplicate nodes from the list. The list is not sorted.
For example if the linked list is 12->11->12->21->41->43->21,
then removeDuplicates() should convert the list to 12->11->21->41->43.
If temporary buffer is not allowed, how to solve it?
~~~
### 题解1 - 两重循环
Remove Duplicates 系列题,之前都是已排序链表,这个题为未排序链表。原题出自 *CTCI* 题2.1。
最容易想到的简单办法就是两重循环删除重复节点了,当前遍历节点作为第一重循环,当前节点的下一节点作为第二重循环。
### Python
~~~
"""
Definition of ListNode
class ListNode(object):
def __init__(self, val, next=None):
self.val = val
self.next = next
"""
class Solution:
"""
@param head: A ListNode
@return: A ListNode
"""
def deleteDuplicates(self, head):
if head is None:
return None
curr = head
while curr is not None:
inner = curr
while inner.next is not None:
if inner.next.val == curr.val:
inner.next = inner.next.next
else:
inner = inner.next
curr = curr.next
return head
~~~
### C++
~~~
/**
* Definition of ListNode
* class ListNode {
* public:
* int val;
* ListNode *next;
* ListNode(int val) {
* this->val = val;
* this->next = NULL;
* }
* }
*/
class Solution {
public:
/**
* @param head: The first node of linked list.
* @return: head node
*/
ListNode *deleteDuplicates(ListNode *head) {
if (head == NULL) return NULL;
ListNode *curr = head;
while (curr != NULL) {
ListNode *inner = curr;
while (inner->next != NULL) {
if (inner->next->val == curr->val) {
inner->next = inner->next->next;
} else {
inner = inner->next;
}
}
curr = curr->next;
}
return head;
}
};
~~~
### Java
~~~
/**
* Definition for ListNode
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) {
* val = x;
* next = null;
* }
* }
*/
public class Solution {
/**
* @param ListNode head is the head of the linked list
* @return: ListNode head of linked list
*/
public static ListNode deleteDuplicates(ListNode head) {
if (head == null) return null;
ListNode curr = head;
while (curr != null) {
ListNode inner = curr;
while (inner.next != null) {
if (inner.next.val == curr.val) {
inner.next = inner.next.next;
} else {
inner = inner.next;
}
}
curr = curr.next;
}
return head;
}
}
~~~
### 源码分析
删除链表的操作一般判断`node.next`较为合适,循环时注意`inner = inner.next`和`inner.next = inner.next.next`的区别即可。
### 复杂度分析
两重循环,时间复杂度为 O(12n2)O(\frac{1}{2}n^2)O(21n2), 空间复杂度近似为 O(1)O(1)O(1).
### 题解2 - 万能的 hashtable
使用辅助空间哈希表,节点值作为键,布尔值作为相应的值(是否为布尔值其实无所谓,关键是键)。
### Python
~~~
"""
Definition of ListNode
class ListNode(object):
def __init__(self, val, next=None):
self.val = val
self.next = next
"""
class Solution:
"""
@param head: A ListNode
@return: A ListNode
"""
def deleteDuplicates(self, head):
if head is None:
return None
hash = {}
hash[head.val] = True
curr = head
while curr.next is not None:
if hash.has_key(curr.next.val):
curr.next = curr.next.next
else:
hash[curr.next.val] = True
curr = curr.next
return head
~~~
### C++
~~~
/**
* Definition of ListNode
* class ListNode {
* public:
* int val;
* ListNode *next;
* ListNode(int val) {
* this->val = val;
* this->next = NULL;
* }
* }
*/
class Solution {
public:
/**
* @param head: The first node of linked list.
* @return: head node
*/
ListNode *deleteDuplicates(ListNode *head) {
if (head == NULL) return NULL;
// C++ 11 use unordered_map
// unordered_map hash;
map hash;
hash[head->val] = true;
ListNode *curr = head;
while (curr->next != NULL) {
if (hash.find(curr->next->val) != hash.end()) {
ListNode *temp = curr->next;
curr->next = curr->next->next;
delete temp;
} else {
hash[curr->next->val] = true;
curr = curr->next;
}
}
return head;
}
};
~~~
### Java
~~~
/**
* Definition for ListNode
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) {
* val = x;
* next = null;
* }
* }
*/
public class Solution {
/**
* @param ListNode head is the head of the linked list
* @return: ListNode head of linked list
*/
public static ListNode deleteDuplicates(ListNode head) {
if (head == null) return null;
ListNode curr = head;
HashMap hash = new HashMap();
hash.put(curr.val, true);
while (curr.next != null) {
if (hash.containsKey(curr.next.val)) {
curr.next = curr.next.next;
} else {
hash.put(curr.next.val, true);
curr = curr.next;
}
}
return head;
}
}
~~~
### 源码分析
删除链表中某个节点的经典模板在`while`循环中体现。
### 复杂度分析
遍历一次链表,时间复杂度为 O(n)O(n)O(n), 使用了额外的哈希表,空间复杂度近似为 O(n)O(n)O(n).
### Reference
- [Remove duplicates from an unsorted linked list - GeeksforGeeks](http://www.geeksforgeeks.org/remove-duplicates-from-an-unsorted-linked-list/)
- [ctci/Question.java at master · gaylemcd/ctci](https://github.com/gaylemcd/ctci/blob/master/java/Chapter%202/Question2_1/Question.java)
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