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题目描述
输入两个单调递增的链表,输出两个链表合成后的链表,当然我们需要合成后的链表满足单调不减规则。
思路:
一、使用递归
/*
public class ListNode {
int val;
ListNode next = null;
ListNode(int val) {
this.val = val;
}
}*/
public class Solution {
public ListNode Merge(ListNode list1,ListNode list2) {
//首先判断两个链表是否为空,为空直接输出另一个链表
if(list1==null){
return list2;
}else if (list2==null){
return list1;
}
if(list1.val<=list2.val){
list1.next=Merge(list1.next,list2);
return list1;
}else{
list2.next=Merge(list1,list2.next);
return list2;
}
}
}二、使用非递归方法
/*
public class ListNode {
int val;
ListNode next = null;
ListNode(int val) {
this.val = val;
}
}*/
public class Solution {
public ListNode Merge(ListNode list1,ListNode list2) {
//首先判断两个链表是否为空,为空直接输出另一个链表
if(list1==null){
return list2;
}else if (list2==null){
return list1;
}
ListNode mergeHead = null;
ListNode current = null;
while(list1!=null && list2!=null){
if(list1.val <= list2.val){
if(mergeHead == null){
mergeHead = current = list1;
}else{
current.next = list1;
current = current.next;
}
list1 = list1.next;
}else{
if(mergeHead == null){
mergeHead = current = list2;
}else{
current.next = list2;
current = current.next;
}
list2 = list2.next;
}
}
if(list1 == null){
current.next = list2;
}else{
current.next = list1;
}
return mergeHead;
}
}