标签:指针 空间复杂度 img 单链表 else package code middle 移动
/** * Project Name:Algorithm * File Name:SingleListMergeSort.java * Package Name: * Date:2017年9月22日上午10:08:46 * Copyright (c) 2017, 2692613726@qq.com All Rights Reserved. * */ /** * ClassName:SingleListMergeSort * Function: 链表实现归并排序 * Reason: (1)定义链表结构 * (2)链表的关键在于递归的时候中间位置的确定,方法是:用两个指针slow,fast 遍历链表,slow走一步而fast走两步;当fast走完的时候slow走到链表的一半! * (3)时间复杂度为O(nlgn),空间复杂度为O(1) * Date: 2017年9月22日 上午10:08:46 * @author michael * @version * @since JDK 1.7 * @see */ public class MergeSortSingle { //先找到中间点,然后分割 public ListNodes getMiddle(ListNodes head){ if(head == null){ return head; } //定义快慢指针 ListNodes slow, fast; slow=fast=head; while(fast.next!=null&&fast.next.next!=null){ slow = slow.next; fast = fast.next.next; } return slow; } public ListNodes merge(ListNodes a, ListNodes b){ //dummyHead是一个新的链表 //将dummyHead的头节点赋值给curr,curr往后遍历,而dummyHead还是指向头节点 ListNodes dummyHead,curr; dummyHead = new ListNodes(0); curr = dummyHead; while (a!=null&&b!=null) { if(a.val<b.val){ curr.next=a; a = a.next; }else { curr.next = b; b = b.next; } //curr往后移动 curr = curr.next; } //如果a遍历完,则将b剩下的部分赋值给curr curr.next = (a!=null)?a:b; return dummyHead.next; } public ListNodes merge_sort(ListNodes head){ if(head==null||head.next==null){ return head; } //取链表中间节点,作为前部分的最后一个节点 ListNodes middle = getMiddle(head); //中间节点的下一个节点,作为后部分的后一个节点 ListNodes halfHead = middle.next; //分:在中间节点处断开 middle.next=null; //合: return merge(merge_sort(head), merge_sort(halfHead)); } public static void main(String[] args) { ListNodes head = new ListNodes(0); ListNodes l1 = new ListNodes(2); ListNodes l2 = new ListNodes(5); ListNodes l3 = new ListNodes(3); ListNodes l4 = new ListNodes(8); ListNodes l5 = new ListNodes(5); ListNodes l6 = new ListNodes(2); ListNodes l7 = new ListNodes(1); head.next = l1; l1.next = l2; l2.next = l3; l3.next = l4; l4.next = l5; l5.next = l6; l6.next = l7; l7.next = null; ListNodes p = head; while (p.next != null) { System.out.print(p.val); p = p.next; } System.out.print(p.val); System.out.println(); new MergeSortSingle().merge_sort(head); p = head; while(p!=null){ System.out.print(p.val); p = p.next; } } } class ListNodes{ //节点的值 int val; //连接到下一个节点 ListNodes next; public ListNodes(int x) { val = x; next = null; } }
标签:指针 空间复杂度 img 单链表 else package code middle 移动
原文地址:http://www.cnblogs.com/Michael2397/p/7577416.html