CS-Notes/docs/notes/Leetcode 题解 - 链表.md
2019-06-04 21:41:17 +08:00

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<!-- GFM-TOC -->
* [1. 找出两个链表的交点](#1-找出两个链表的交点)
* [2. 链表反转](#2-链表反转)
* [3. 归并两个有序的链表](#3-归并两个有序的链表)
* [4. 从有序链表中删除重复节点](#4-从有序链表中删除重复节点)
* [5. 删除链表的倒数第 n 个节点](#5-删除链表的倒数第-n-个节点)
* [6. 交换链表中的相邻结点](#6-交换链表中的相邻结点)
* [7. 链表求和](#7-链表求和)
* [8. 回文链表](#8-回文链表)
* [9. 分隔链表](#9-分隔链表)
* [10. 链表元素按奇偶聚集](#10-链表元素按奇偶聚集)
<!-- GFM-TOC -->
链表是空节点,或者有一个值和一个指向下一个链表的指针,因此很多链表问题可以用递归来处理。
# 1. 找出两个链表的交点
[160. Intersection of Two Linked Lists (Easy)](https://leetcode.com/problems/intersection-of-two-linked-lists/description/)
例如以下示例中 A 和 B 两个链表相交于 c1
```html
A: a1 → a2
c1 → c2 → c3
B: b1 → b2 → b3
```
但是不会出现以下相交的情况,因为每个节点只有一个 next 指针,也就只能有一个后继节点,而以下示例中节点 c 有两个后继节点。
```html
A: a1 → a2 d1 → d2
↘ ↗
c
↗ ↘
B: b1 → b2 → b3 e1 → e2
```
要求时间复杂度为 O(N),空间复杂度为 O(1)。如果不存在交点则返回 null。
设 A 的长度为 a + cB 的长度为 b + c其中 c 为尾部公共部分长度,可知 a + c + b = b + c + a。
当访问 A 链表的指针访问到链表尾部时,令它从链表 B 的头部开始访问链表 B同样地当访问 B 链表的指针访问到链表尾部时,令它从链表 A 的头部开始访问链表 A。这样就能控制访问 A 和 B 两个链表的指针能同时访问到交点。
如果不存在交点,那么 a + b = b + a以下实现代码中 l1 和 l2 会同时为 null从而退出循环。
```java
public ListNode getIntersectionNode(ListNode headA, ListNode headB) {
ListNode l1 = headA, l2 = headB;
while (l1 != l2) {
l1 = (l1 == null) ? headB : l1.next;
l2 = (l2 == null) ? headA : l2.next;
}
return l1;
}
```
如果只是判断是否存在交点,那么就是另一个问题,即 [编程之美 3.6]() 的问题。有两种解法:
- 把第一个链表的结尾连接到第二个链表的开头,看第二个链表是否存在环;
- 或者直接比较两个链表的最后一个节点是否相同。
# 2. 链表反转
[206. Reverse Linked List (Easy)](https://leetcode.com/problems/reverse-linked-list/description/)
递归
```java
public ListNode reverseList(ListNode head) {
if (head == null || head.next == null) {
return head;
}
ListNode next = head.next;
ListNode newHead = reverseList(next);
next.next = head;
head.next = null;
return newHead;
}
```
头插法
```java
public ListNode reverseList(ListNode head) {
ListNode newHead = new ListNode(-1);
while (head != null) {
ListNode next = head.next;
head.next = newHead.next;
newHead.next = head;
head = next;
}
return newHead.next;
}
```
# 3. 归并两个有序的链表
[21. Merge Two Sorted Lists (Easy)](https://leetcode.com/problems/merge-two-sorted-lists/description/)
```java
public ListNode mergeTwoLists(ListNode l1, ListNode l2) {
if (l1 == null) return l2;
if (l2 == null) return l1;
if (l1.val < l2.val) {
l1.next = mergeTwoLists(l1.next, l2);
return l1;
} else {
l2.next = mergeTwoLists(l1, l2.next);
return l2;
}
}
```
# 4. 从有序链表中删除重复节点
[83. Remove Duplicates from Sorted List (Easy)](https://leetcode.com/problems/remove-duplicates-from-sorted-list/description/)
```html
Given 1->1->2, return 1->2.
Given 1->1->2->3->3, return 1->2->3.
```
```java
public ListNode deleteDuplicates(ListNode head) {
if (head == null || head.next == null) return head;
head.next = deleteDuplicates(head.next);
return head.val == head.next.val ? head.next : head;
}
```
# 5. 删除链表的倒数第 n 个节点
[19. Remove Nth Node From End of List (Medium)](https://leetcode.com/problems/remove-nth-node-from-end-of-list/description/)
```html
Given linked list: 1->2->3->4->5, and n = 2.
After removing the second node from the end, the linked list becomes 1->2->3->5.
```
```java
public ListNode removeNthFromEnd(ListNode head, int n) {
ListNode fast = head;
while (n-- > 0) {
fast = fast.next;
}
if (fast == null) return head.next;
ListNode slow = head;
while (fast.next != null) {
fast = fast.next;
slow = slow.next;
}
slow.next = slow.next.next;
return head;
}
```
# 6. 交换链表中的相邻结点
[24. Swap Nodes in Pairs (Medium)](https://leetcode.com/problems/swap-nodes-in-pairs/description/)
```html
Given 1->2->3->4, you should return the list as 2->1->4->3.
```
题目要求:不能修改结点的 val 值O(1) 空间复杂度。
```java
public ListNode swapPairs(ListNode head) {
ListNode node = new ListNode(-1);
node.next = head;
ListNode pre = node;
while (pre.next != null && pre.next.next != null) {
ListNode l1 = pre.next, l2 = pre.next.next;
ListNode next = l2.next;
l1.next = next;
l2.next = l1;
pre.next = l2;
pre = l1;
}
return node.next;
}
```
# 7. 链表求和
[445. Add Two Numbers II (Medium)](https://leetcode.com/problems/add-two-numbers-ii/description/)
```html
Input: (7 -> 2 -> 4 -> 3) + (5 -> 6 -> 4)
Output: 7 -> 8 -> 0 -> 7
```
题目要求:不能修改原始链表。
```java
public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
Stack<Integer> l1Stack = buildStack(l1);
Stack<Integer> l2Stack = buildStack(l2);
ListNode head = new ListNode(-1);
int carry = 0;
while (!l1Stack.isEmpty() || !l2Stack.isEmpty() || carry != 0) {
int x = l1Stack.isEmpty() ? 0 : l1Stack.pop();
int y = l2Stack.isEmpty() ? 0 : l2Stack.pop();
int sum = x + y + carry;
ListNode node = new ListNode(sum % 10);
node.next = head.next;
head.next = node;
carry = sum / 10;
}
return head.next;
}
private Stack<Integer> buildStack(ListNode l) {
Stack<Integer> stack = new Stack<>();
while (l != null) {
stack.push(l.val);
l = l.next;
}
return stack;
}
```
# 8. 回文链表
[234. Palindrome Linked List (Easy)](https://leetcode.com/problems/palindrome-linked-list/description/)
题目要求:以 O(1) 的空间复杂度来求解。
切成两半,把后半段反转,然后比较两半是否相等。
```java
public boolean isPalindrome(ListNode head) {
if (head == null || head.next == null) return true;
ListNode slow = head, fast = head.next;
while (fast != null && fast.next != null) {
slow = slow.next;
fast = fast.next.next;
}
if (fast != null) slow = slow.next; // 偶数节点,让 slow 指向下一个节点
cut(head, slow); // 切成两个链表
return isEqual(head, reverse(slow));
}
private void cut(ListNode head, ListNode cutNode) {
while (head.next != cutNode) {
head = head.next;
}
head.next = null;
}
private ListNode reverse(ListNode head) {
ListNode newHead = null;
while (head != null) {
ListNode nextNode = head.next;
head.next = newHead;
newHead = head;
head = nextNode;
}
return newHead;
}
private boolean isEqual(ListNode l1, ListNode l2) {
while (l1 != null && l2 != null) {
if (l1.val != l2.val) return false;
l1 = l1.next;
l2 = l2.next;
}
return true;
}
```
# 9. 分隔链表
[725. Split Linked List in Parts(Medium)](https://leetcode.com/problems/split-linked-list-in-parts/description/)
```html
Input:
root = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10], k = 3
Output: [[1, 2, 3, 4], [5, 6, 7], [8, 9, 10]]
Explanation:
The input has been split into consecutive parts with size difference at most 1, and earlier parts are a larger size than the later parts.
```
题目描述:把链表分隔成 k 部分,每部分的长度都应该尽可能相同,排在前面的长度应该大于等于后面的。
```java
public ListNode[] splitListToParts(ListNode root, int k) {
int N = 0;
ListNode cur = root;
while (cur != null) {
N++;
cur = cur.next;
}
int mod = N % k;
int size = N / k;
ListNode[] ret = new ListNode[k];
cur = root;
for (int i = 0; cur != null && i < k; i++) {
ret[i] = cur;
int curSize = size + (mod-- > 0 ? 1 : 0);
for (int j = 0; j < curSize - 1; j++) {
cur = cur.next;
}
ListNode next = cur.next;
cur.next = null;
cur = next;
}
return ret;
}
```
# 10. 链表元素按奇偶聚集
[328. Odd Even Linked List (Medium)](https://leetcode.com/problems/odd-even-linked-list/description/)
```html
Example:
Given 1->2->3->4->5->NULL,
return 1->3->5->2->4->NULL.
```
```java
public ListNode oddEvenList(ListNode head) {
if (head == null) {
return head;
}
ListNode odd = head, even = head.next, evenHead = even;
while (even != null && even.next != null) {
odd.next = odd.next.next;
odd = odd.next;
even.next = even.next.next;
even = even.next;
}
odd.next = evenHead;
return head;
}
```
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