Add Two Numbers
2018-02-28 本文已影响87人
Stroman
要求
有2个非空链表,存储的都是非负整数中的每一位,低位存储在表头方向,高位存储在表尾方向,两个链表都没有前置0,除非这个数本来就是0.
现在要求计算出2个数的值,并且还是用链表存储,还是低位在表头方向,高位在表尾方向。
示例
Input: (2 -> 4 -> 3) + (5 -> 6 -> 4)
Output: 7 -> 0 -> 8
Explanation: 342 + 465 = 807.
代码用法
public class Main {
/**
* 有2个非空链表,存储的都是非负整
* 数中的每一位,低位存储在表头方向
* ,高位存储在表尾方向,两个链表都
* 没有前置0,除非这个数本来就是0.
* 现在要求计算出2个数的值,并且还是
* 用链表存储,还是低位在表头方向,
* 高位在表尾方向。
* @param args
*/
public static void main(String[] args) {
// write your code here
//首先建立输入链表。
SingleLinkerNode list0 = AddTwoNumbers.numberToLink(4982);
SingleLinkerNode list1 = AddTwoNumbers.numberToLink(398465);
AddTwoNumbers.addTwoLinkers(list0,list1);
System.out.println(AddTwoNumbers.lingkerToNumber(list0));
}
}
public class AddTwoNumbers {
/**
* 输入一个非负整数,并把它从低位到高位生成链表。
* 比如说342变成2 -> 4 -> 3
* @param number
* @return
*/
static public SingleLinkerNode numberToLink(int number) {
int component = number;
SingleLinkerNode resultHeader = null;
SingleLinkerNode currentHeader = resultHeader;
while (component > 0) {
int bitNumber = component % 10;
component = component / 10;
if (resultHeader == null){
resultHeader = new SingleLinkerNode(bitNumber);
currentHeader = resultHeader;
}
else {
SingleLinkerNode newNode = new SingleLinkerNode(bitNumber);
currentHeader.nextPointer = newNode;
currentHeader = newNode;
}
}
return resultHeader;
}
/**
* 本算法是要把list1上面的值加到list0上面去。
* @param list0
* @param list1
* @return
*/
static public SingleLinkerNode addTwoLinkers(SingleLinkerNode list0,SingleLinkerNode list1) {
SingleLinkerNode list0Pointer = new SingleLinkerNode(-1);
SingleLinkerNode list1Pointer = new SingleLinkerNode(-1);
list0Pointer.nextPointer = list0;
list1Pointer.nextPointer = list1;
int carry = 0;
while (list0Pointer.nextPointer != null && list1Pointer.nextPointer != null) {
int augend = list1Pointer.nextPointer.getValue();
int addend = list0Pointer.nextPointer.getValue();
int newBitNumber = augend + addend + carry;
if (newBitNumber > 9)carry = 1;
else carry = 0;
newBitNumber %= 10;
list0Pointer.nextPointer.setValue(newBitNumber);
list0Pointer = list0Pointer.nextPointer;
list1Pointer = list1Pointer.nextPointer;
}
if (list1Pointer.nextPointer != null)list0Pointer.nextPointer = list1Pointer.nextPointer;
while (list0Pointer.nextPointer != null) {
int newValue = list0Pointer.nextPointer.getValue() + carry;
if (newValue > 9)carry = 1;
else carry = 0;
newValue %= 10;
list0Pointer.nextPointer.setValue(newValue);
list0Pointer = list0Pointer.nextPointer;
}
if (carry == 1)list0Pointer.nextPointer = new SingleLinkerNode(1);
return list0;
}
/**
* 链表转换成数字
* @param header
* @return
*/
static public int lingkerToNumber(SingleLinkerNode header) {
SingleLinkerNode currentPointer = header;
int result = 0;
int times = 1;
while (currentPointer != null) {
result += currentPointer.getValue() * times;
times *= 10;
currentPointer = currentPointer.nextPointer;
}
return result;
}
}
package com.company;
public class SingleLinkerNode {
public SingleLinkerNode nextPointer = null;
private int value;
public SingleLinkerNode(int value) {
this.value = value;
}
public int getValue() {
return value;
}
public void setValue(int value) {
this.value = value;
}
}
输出
403447
