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。
解答
方法1:递归
1 /* 2 public class ListNode { 3 int val; 4 ListNode next = null; 5 6 ListNode(int val) { 7 this.val = val; 8 } 9 }*/ 10 public class Solution { 11 public ListNode Merge(ListNode list1,ListNode list2) { 12 if(list1 == null) return list2;//递归终止条件 13 if(list2 == null) return list1;//递归终止条件 14 if(list1 == null && list2 == null) return null;//递归终止条件 15 ListNode head = null; 16 if(list1.val>=list2.val){ 17 head = list2; 18 list2.next = Merge(list1,list2.next);} 19 else{ 20 head = list1; 21 list1.next = Merge(list1.next,list2);} 22 return head; 23 } 24 }
图片引用自:https://blog.csdn.net/fengpojian/article/details/81384130
方法2:迭代
1 /* 2 public class ListNode { 3 int val; 4 ListNode next = null; 5 6 ListNode(int val) { 7 this.val = val; 8 } 9 }*/ 10 public class Solution { 11 public ListNode Merge(ListNode list1,ListNode list2) { 12 ListNode head = new ListNode(-1); 13 ListNode cur = head; 14 while (list1 != null && list2 != null) { 15 if (list1.val <= list2.val) { 16 cur.next = list1; 17 list1 = list1.next; 18 } else { 19 cur.next = list2; 20 list2 = list2.next; 21 } 22 cur = cur.next; 23 } 24 if (list1 != null) 25 cur.next = list1; 26 if (list2 != null) 27 cur.next = list2; 28 return head.next; 29 } 30 }