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  • Add Two Numbers 2015年6月8日

    You are given two linked lists representing two non-negative numbers. The digits are stored in reverse order and each of their nodes contain a single digit. Add the two numbers and return it as a linked list.
    
    Input: (2 -> 4 -> 3) + (5 -> 6 -> 4)
    Output: 7 -> 0 -> 8

    初次看题没懂。

    要点是 each of their nodes contain a single digit.

    上面的例子是:

    2+5=7;

    4+6=10;10不满足 a  single digit条件,0保存到当前结点中,进位1就要保存到下一个结点。

    思路:

    思路非常简单,分别遍历两个链表,并且用一个变量表示是否有进位。某个链表遍历结束之后再将另一个链表连接在结果链表之后即可,若最后有进位需要添加一位。

    给出一种解答:Runtime: 420 ms

    head 相当于头指针,方便遍历结果链表

    /**
     * Definition for singly-linked list.
     * public class ListNode {
     *     int val;
     *     ListNode next;
     *     ListNode(int x) { val = x; }
     * }
     */
    public class Solution {
        public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
            ListNode result = new ListNode(0);
            ListNode head = result;
            int sum = 0;
            int carry = 0;//jin wei
            while(l1 != null || l2 != null) {
                int val1 = 0;
                if(l1 != null){
                    val1 = l1.val;
                    l1 = l1.next;
                }
                int val2 = 0;
                if(l2 != null) {
                    val2 = l2.val;
                    l2 = l2.next;
                }
                
                sum = val1 + val2 + carry;
                result.next = new ListNode(sum%10);
                result = result.next;
                carry = sum/10;
                
                
            }
            if(carry == 1){
                result.next = new ListNode(1);
            }
            return head.next;
        }
    }

     九章算法网给出的答案是:

    Runtime: 540 ms

    /**
     * Definition for singly-linked list.
     * public class ListNode {
     *     int val;
     *     ListNode next;
     *     ListNode(int x) { val = x; }
     * }
     */
    public class Solution {
        public ListNode addTwoNumbers(ListNode l1, ListNode l2) {
            if(l1 == null && l2 == null) {
                return null;
            }
                
            ListNode head = new ListNode(0);
            ListNode point = head;
            int carry = 0;
            while(l1 != null && l2!=null){
                int sum = carry + l1.val + l2.val;
                point.next = new ListNode(sum % 10);
                carry = sum / 10;
                l1 = l1.next;
                l2 = l2.next;
                point = point.next;
            }
            
            while(l1 != null) {
                int sum =  carry + l1.val;
                point.next = new ListNode(sum % 10);
                carry = sum /10;
                l1 = l1.next;
                point = point.next;
            }
            
            while(l2 != null) {
                int sum =  carry + l2.val;
                point.next = new ListNode(sum % 10);
                carry = sum /10;
                l2 = l2.next;
                point = point.next;
            }
            
            if (carry != 0) {
                point.next = new ListNode(carry);
            }
            return head.next;
        }
    }
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  • 原文地址:https://www.cnblogs.com/hixin/p/4560483.html
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