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Java实现JSON字符串、JSON对象和Java对象的相互转换(fastjson)

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一.准备工作

我们用实际的json字符串来进行测试

//json字符串-简单对象
String jsonStr = "{\"studentName\":\"张三\",\"studentAge\":18}";
//json字符串-数组类型
String  jsonArrStr = "[{\"studentName\":\"张三\",\"studentAge\":18},{\"studentName\":\"李四\",\"studentAge\":17}]";
//json字符串-复杂对象
String  complexJsonStr= "{\"teacherName\":\"李寻欢\",\"teacherAge\":30,\"course\":{\"courseName\":\"武术\",\"code\":110},
                     \"students\":[{\"studentName\":\"张三\",\"studentAge\":18},{\"studentName\":\"李四\",\"studentAge\":19}]}";

注意一般项目中会有JSON工具类,里面会有一些常用的方法,所以当我们用到Json的时候,可以现在项目中找一下有没有工具类,或者去百度一个Json工具类.

二、json字符串、json对象、java对象的转换方法

1.JSON字符串到JSON对象的转换

(1)json字符串-简单对象与JSONObject之间的转换

JSONObject jsonObj = JSON.parseObject(jsonStr);

(2)json字符串-数组类型与JSONArray之间的转换

JSONArray jsonArray = JSON.parseArray(jsonArrStr);
//遍历JSONArray方法1
for(int i = 0; i < jsonArray.size(); i++){
   JSONObject jsonObj = jsonArray.getJSONObject(i); 
}
//遍历JSONArray方法2
for(Object obj : jsonArray){
    JSONObject jsonObject = (JSONObject) obj;
}

(3)json字符串-复杂对象与JSONObject之间的转换

JSONObject jsonObj = JSON.parseObject(complexJsonStr);
//取出复杂对象中各项内容
String teacherName = jsonObj.getString("teacherName");
Integer teacherAge = jsonObj.getInteger("teacherAge");
JSONObject course = jsonObj.getJSONObject("course");
JSONArray students = jsonObj.getJSONArray("students");

2.JSON对象到JSON字符串的转换

JSONObject jsonObj = new JSONObject();
//JSONObject到JSON字符串的转换
String jsonStr = jsonObj.toJSONString();

3.JSON字符串到Java对象的转换

JSON字符串与JavaBean之间的转换建议使用TypeReference类

(1)json字符串-简单对象与Java对象之间的转换

// 方法1
Student student = JSON.parseObject(jsonStr , new TypeReference<Student>() {});
// 方法2
Student student = JSON.parseObject(jsonStr , Student.class);

(2)json字符串-数组与Java对象之间的转换

ArrayList<Student> students = JSON.parseObject(jsonArrStr, new TypeReference<ArrayList<Student>>() {});
for (Student student : students) {
   System.out.println(student.getStudentName()+":"+student.getStudentAge());
}

(3)json字符串-复杂对象与Java对象之间的转换

Teacher teacher = JSON.parseObject(complexJsonStr, new TypeReference<Teacher>() {});
//获取teacher中的内容
String teacherName = teacher.getTeacherName();
Integer teacherAge = teacher.getTeacherAge();
Course course = teacher.getCourse();
List<Student> students = teacher.getStudents();

4.Java对象到JSON字符串的转换

Teacher teacher = new Teacher();
String jsonStr = JSON.toJSONString(teacher);

5.Java对象到JSON对象的转换

String jsonStr= JSON.toJSONString(student);
JSONObject jsonObj = JSON.parseObject(jsonStr);

6.JSON对象到Java对象的转换

# 方法1,先转换为json字符串,再使用parseObject
String jsonStr = jsonObj.toJSONString();
Student stu = JSON.parseObject(jsonStr,new TypeReference<Student>() {});
# 方法2,直接使用toJavaObject
Student stu = JSON.toJavaObject(jsonObj, Student.class);

例子

1.json字符串转化为java实体类 (parseObject)

ApprovalVo approvalVo = JSON.parseObject(str, ApprovalVo.class);
// str == json字符串
// ApprovalVo == 实体类

2.json字符串转化为list对象 (parseArray)

String str2 = "[{'password':'123123','username':'zhangsan'},{'password':'321321','username':'lisi'}]";
List<User> users = JSON.parseArray(jsonStr2, User.class);

3.json字符串转化为复杂java对象 (parseObject)

//  复杂对象->>>>对象中嵌套对象的
String str3 = "{'name':'userGroup','users':[{'password':'123123','username':'zhangsan'},{'password':'321321','username':'lisi'}]}";
UserGroup userGroup = JSON.parseObject(jsonStr3, UserGroup.class);

4.把实体类转化成json字符串

String str = JSON.toJSONString(ApprovalVo);

5.把json字符串转化成JSONObject

String jsonStr = "{\"school\":\"商职\",\"sex\":\"男\",\"name\":\"wjw\",\"age\":22}";
 JSONObject jsonObject = JSONObject.parseObject(jsonStr);
 System.out.println(jsonObject.getString("name"));
 System.out.println(jsonObject.getInteger("age"));

如何获取JSONObject类

引入pom.xml依赖

 <dependency>
            <groupId>com.alibaba</groupId>
            <artifactId>fastjson</artifactId>
            <version>1.2.9</version>
 </dependency>

标签:fastjson,Java,对象,JSONObject,json,parseObject,JSON,字符串
来源: https://www.cnblogs.com/javaxubo/p/16492156.html