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leetcode-两数相加
下面的类,可以重用,修改一下可以运行在在线IDE,给出了测试main()
/*
给出两个 非空 的链表用来表示两个非负的整数。其中,它们各自的位数是按照 逆序 的方式存储的,并且它们的每个节点只能存储 一位 数字。
如果,我们将这两个数相加起来,则会返回一个新的链表来表示它们的和。
您可以假设除了数字 0 之外,这两个数都不会以 0 开头。
示例:
输入:(2 -> 4 -> 3) + (5 -> 6 -> 4)
输出:7 -> 0 -> 8
原因:342 + 465 = 807
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/add-two-numbers
著作权归领扣网络所有。商业转载请联系官方授权,非商业转载请注明出处。
*/
/**
* Definition for singly-linked list.
* public class ListNode {
* int val;
* ListNode next;
* ListNode(int x) { val = x; }
* }
*/
class ListNode {
int val;
ListNode next;
ListNode(int x) {
val = x;
}
}
class Solution {
public static void main(String[] args) {
Solution solution = new Solution();
//基本测试
ListNode res = solution.addTwoNumbers(solution.long2ListNode(342), solution.long2ListNode(465));
sout(res);
//特殊:单链表
res = solution.addTwoNumbers(solution.long2ListNode(619), solution.long2ListNode(0));
sout(res);
//特殊:边界进位
res = solution.addTwoNumbers(solution.long2ListNode(5), solution.long2ListNode(5));
sout(res);
res = solution.addTwoNumbers(solution.long2ListNode(1), solution.long2ListNode(99));
sout(res);
}
private static void sout(ListNode l3) {
while (l3 != null) {
System.out.println(l3.val);
l3 = l3.next;
}
System.out.println("---------");
}
/**
* 说明: 使用进位
* @author suwenguang
* @date 2019/6/10
* @return n2.ListNode <- 返回类型
*/
public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
//参数校验
if (l1 == null || l2 == null) {
return null;
}
if (l1.val < 0 || l2.val < 0) {
return null;
}
//主逻辑
//进位链表
ListNode carrier = new ListNode(0);
//结果链表
ListNode res = new ListNode(0);
//临时链表
ListNode temp = res;
while (l1 != null && l2 != null) {
//相加进位
int val = l1.val + l2.val + carrier.val;
if (val >= 10) {
carrier.next = new ListNode(1);
} else {
carrier.next = new ListNode(0);
}
//赋值res
int remain = val % 10;
temp.next = new ListNode(remain);
//指针移动
temp = temp.next;
l1 = l1.next;
l2 = l2.next;
carrier = carrier.next;
}
while (l1 != null) {
int val = carrier.val + l1.val;
if (val >= 10) {
carrier.next = new ListNode(1);
} else {
carrier.next = new ListNode(0);
}
//赋值
int remain = val % 10;
temp.next = new ListNode(remain);
//指针移动
l1 = l1.next;
carrier = carrier.next;
temp = temp.next;
}
while (l2 != null) {
int val = carrier.val + l2.val;
if (val >= 10) {
carrier.next = new ListNode(1);
} else {
carrier.next = new ListNode(0);
}
//赋值
int remain = val % 10;
temp.next = new ListNode(remain);
//指针移动
l2 = l2.next;
carrier = carrier.next;
temp = temp.next;
}
//判定是否还有进位
if (carrier.val == 1) {
temp.next = new ListNode(1);
}
return res.next;
}
/**
* 说明:暴力解法
* @author suwenguang
* @date 2019/6/10
* @return n2.ListNode <- 返回类型
*/
@Deprecated
public ListNode addTwoNumbersFail(ListNode l1, ListNode l2) {
//参数校验
if (l1 == null || l2 == null) {
return null;
}
if (l1.val < 0 || l2.val < 0) {
return null;
}
//将链表转为整数
long a = listNode2Long(l1);
long b = listNode2Long(l2);
//相加
long res = a + b;
//结果转链表返回
ListNode head = long2ListNode(res);
return head.next;
}
/**
* 说明: ListNode 转 long
* @author suwenguang
* @date 2019/6/10
* @return long <- 返回类型
*/
private long listNode2Long(ListNode l2) {
int i = 1;
long res = 0;
ListNode tempNode;
tempNode = l2;
while (tempNode != null) {
res = res + (tempNode.val * i);
tempNode = tempNode.next;
i *= 10;
}
return res;
}
/**
* 说明: long 转 ListNode
* @author suwenguang
* @date 2019/6/10
* @return n2.ListNode <- 返回类型
*/
private ListNode long2ListNode(long res) {
ListNode tempNode;
long temp = 11;
ListNode head = new ListNode(-1);
tempNode = head;
while (res / 10 > 0) {
temp = res % 10;
ListNode next = new ListNode((int) temp);
tempNode.next = next;
tempNode = next;
res /= 10;
}
ListNode end = new ListNode((int) res);
tempNode.next = end;
return head.next;
}
}
2019-06-10 19:37:14 星期一
来源:oschina
链接:https://my.oschina.net/u/3641461/blog/3060387