题目描叙:
You are given two non-empty linked lists representing two non-negative integers.
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.
You may assume the two numbers do not contain any leading zero, except the number 0 itself.
简单描叙题目意思:
给出了两个非空链表,数据为非负整数。链表倒叙,再相加,逢10进1
Input: (2 -> 4 -> 3) + (5 -> 6 -> 4)
Output: 7 -> 0 -> 8
//Definition for singly-linked list.
function ListNode(val) {
this.val = val;
this.next = null;
}
/**
* @param {ListNode} l1
* @param {ListNode} l2
* @return {ListNode}
*/
var addTwoNumbers = function(l1, l2) {
var sum = l1.val + l2.val;
var lFirst = new ListNode(sum%10);
var arg = sum>=10 ? 1 : 0
var lPrev = lFirst
l1 = l1.next
l2 = l2.next;
while(l1!==null || l2!==null){
var v1 = l1 === null ? 0: l1.val
var v2 = l2 === null ? 0: l2.val
sum = v1+ v2+ arg
var lMiddle = new ListNode(sum%10)
arg = sum>=10 ? 1 : 0
lPrev.next = lMiddle
lPrev = lMiddle
if (l1 !== null) l1 = l1.next;
if (l2 !== null) l2 = l2.next;
}
if(arg>0){
lMiddle = new ListNode(1);
lPrev.next = lMiddle
}
return lFirst
};
var a1 = new ListNode(2);
var a2 = new ListNode(4);
var a3 = new ListNode(3);
a1.next = a2;
a2.next = a3;
var b1 = new ListNode(5);
var b2 = new ListNode(6);
var b3 = new ListNode(4);
b1.next = b2;
b2.next = b3;
var s = addTwoNumbers(a1, b1);
console.log(s)
单项链表 A->B->C->D->E , 输出 E->D->C->B->A
初始化数据a1
ffunction ListNode(val) {
this.val = val;
this.next = null;
return {
val:val,
next:null
}
}
var a1 = new ListNode('A')
var a2 = new ListNode('B')
var a3 = new ListNode('C')
var a4 = new ListNode('D')
var a5 = new ListNode('E')
a1.next = a2
a2.next = a3
a3.next = a4
a4.next = a5
1 思路
把当前链表的下一个节点pCur插入到头结点dummy的下一个节点中,就地反转。
dummy->A->B->C->D->E
dummy->B->A->C->D->E
dummy->C->B->A->D->E
dummy->D->C->B->A->E
dummy->E->D->C->B->A
2 过程
pCur是需要反转的节点。
prev连接下一次需要反转的节点
反转节点pCur
纠正头结点dummy的指向
pCur指向下一次要反转的节点
伪代码
prev.next = pCur.next;
pCur.next = dummy.next;
dummy.next = pCur;
pCur = prev.next;
function reverse(list){
if(list == null){
return list
}
var dummy = ListNode(-1);
dummy.next = list;
var prev = dummy.next;
var pCur = prev.next;
while(pCur !==null){
prev.next = pCur.next;
pCur.next = dummy.next;
dummy.next = pCur;
pCur = prev.next;
}
return dummy.next
}