共 (2) 个答案

1. # 1 楼答案

   根据php。net，是的，您可以对除资源之外的任何内容进行json_编码，因此可以对类的实例进行编码http://php.net/manual/en/function.json-encode.php

   关于java；我不太熟悉，但你可以看看这里：How to decode a json string with gson in java?

   （底部有一个示例，说明如何通过GSON获取对象

2. # 2 楼答案

   从http://www.json.org：

   JSON (JavaScript Object Notation) is a lightweight data-interchange format. It is easy for humans to read and write. It is easy for machines to parse and generate. It is based on a subset of the JavaScript Programming Language, Standard ECMA-262 3rd Edition - December 1999

   它是一种数据交换格式，因此可以被任何语言使用。这就是为什么你可以从任何你喜欢的语言中使用Twitter的RESTAPI

   代码：

   <?php
   
   class Point {
       private $x;
       private $y;
   
       public function __construct($x, $y) {
           $this->x = $x;
           $this->y = $y;
       }
   
       public static function fromJSON($json) {
           //return json_decode($json);
           $obj = json_decode($json);
           return new Point($obj->x, $obj->y);
       }
   
       public function toJSON() {
           /*
   
           If you want to omit properties because of security, I think you will have to write this yourself.
   
           return json_encode(array(
               "x" => $this->x,
               "y" => $this->y
           ));
   
           You could easily do something like to omit x for example.
   
           $that = $this;
           unset($that->x);
           return json_encode(get_object_vars($that));
   
           */
           // Thank you http://stackoverflow.com/questions/4697656/using-json-encode-on-objects-in-php/4697749#4697749
           return json_encode(get_object_vars($this));
       }
   
       public function  __toString() {
           return print_r($this, true);
       }
   }
   
   $point1 = new Point(4,8);
   
   $json = $point1->toJSON();
   echo $json;
   echo $point1;
   
   $point2 = Point::fromJSON($json);
   echo $point2;
   

   输出：

   alfred@alfred-laptop:~/www/stackoverflow/6719084$ php class.php 
   {"x":4,"y":8}Point Object
   (
       [x:Point:private] => 4
       [y:Point:private] => 8
   )
   Point Object
   (
       [x:Point:private] => 4
       [y:Point:private] => 8
   )
   

   这个json_字符串可以直接导入到您喜欢的对象中

   来自Java

   /*
    * To change this template, choose Tools | Templates
    * and open the template in the editor.
    */
   package point;
   
   import com.google.gson.Gson;
   
   
   /**
    *
    * @author alfred
    */
   public class Point {
   
       private int x,y;
       public static Gson gson = new Gson();
   
       public Point(int x, int y) {
               this.x = x;
               this.y = y;
       }
   
       public static Point fromJSON(String json) {
           Point p = gson.fromJson(json, Point.class);
           return p;
       }
   
       @Override
       public String toString() {
           return "(" + x + "," + y + ")";
       }
   
       /**
        * @param args the command line arguments
        */
       public static void main(String[] args) {
           // TODO code application logic here
           Point fromJSON = Point.fromJSON("{\"x\":4,\"y\":8}");
           System.out.println(fromJSON);
       }
   }
   

   输出

   (4,8)