在使用Struts2的JSON插件,实现Action中的属性序列化成JSON对象时默认JSON插件会把所有Action中包含getter方法的属性都序列化到JSON对象中。但是有时候我们并不需要太多的属性,或者只需要一个属性。那么怎样控制属性序列化到JSON对象中哪?Struts2的JSON插件为我们提供了两种方式,第一:使用注解的方式控制,第二:使用Struts2的struts.xml配置文件的方式。
这一讲我们主要介绍注解方式。如果大家还不会Struts2+JSON+JQuery的交互方式请查看?http://zyw090111.iteye.com的Struts2+jQuery+JSON实现异步交互的文章
我们要使用JSON的注解是@JSON这个类共有是个属性分别是:
1. name????String 类型?????用户为属性起一个别名(我们序列化到JSON对象中的键默认是属性名称,如果使用了name属性那么键是name起的名字);
2. serialize? Boolean类型?? 默认为true 也就是可以被序列化,如果设为false那么该属性将不包含在JSON对象中;
3. format? String类型? 主要是对日期进行格式化
4. deserialize Boolean类型 默认为true,它是指反序列化,和serialize相反。
请看代码:
package?test.json;
import?java.util.Date;
import?org.apache.struts2.json.annotations.JSON;
import?com.opensymphony.xwork2.ActionSupport;
@SuppressWarnings("serial")
public?class?Users?extends?ActionSupport?{
????private?int?id;
????private?String?userName;
????private?String?pwd;
????private?String?address;
????private?Date?birthday;
????public?int?getId()?{
????????return?id;
????}
????public?void?setId(int?id)?{
????????this.id?=?id;
????}
????@JSON(serialize=false)
????public?String?getUserName()?{
????????return?userName;
????}
????
????public?void?setUserName(String?userName)?{
????????this.userName?=?userName;
????}
????@JSON(name="mm")
????public?String?getPwd()?{
????????return?pwd;
????}
????public?void?setPwd(String?pwd)?{
????????this.pwd?=?pwd;
????}
????public?String?getAddress()?{
????????return?address;
????}
????public?void?setAddress(String?address)?{
????????this.address?=?address;
????}
????@JSON(format="yy-MM-dd")
????public?Date?getBirthday()?{
????????return?birthday;
????}
????public?void?setBirthday(Date?birthday)?{
????????this.birthday?=?birthday;
????}
????@Override
????public?String?execute()?throws?Exception?{
????????
????????this.id?=?10000;
????????this.userName?=?"zhangsan";
????????this.pwd?=?"00000";
????????this.address?=?"xian";
????????this.birthday?=?new?Date();
????????
????????return?SUCCESS;
????}
}
这一讲我们主要介绍注解方式。如果大家还不会Struts2+JSON+JQuery的交互方式请查看?http://zyw090111.iteye.com的Struts2+jQuery+JSON实现异步交互的文章
我们要使用JSON的注解是@JSON这个类共有是个属性分别是:
1. name????String 类型?????用户为属性起一个别名(我们序列化到JSON对象中的键默认是属性名称,如果使用了name属性那么键是name起的名字);
2. serialize? Boolean类型?? 默认为true 也就是可以被序列化,如果设为false那么该属性将不包含在JSON对象中;
3. format? String类型? 主要是对日期进行格式化
4. deserialize Boolean类型 默认为true,它是指反序列化,和serialize相反。
请看代码:
package?test.json;import?java.util.Date;import?org.apache.struts2.json.annotations.JSON;import?com.opensymphony.xwork2.ActionSupport;@SuppressWarnings("serial")public?class?Users?extends?ActionSupport?{
????private?int?id;????private?String?userName;????private?String?pwd;????private?String?address;????private?Date?birthday;????public?int?getId()?{
????????????return?id;????}????public?void?setId(int?id)?{????????this.id?=?id;????}????@JSON(serialize=false)????public?String?getUserName()?{????????return?userName;????}????????public?void?setUserName(String?userName)?{????????this.userName?=?userName;????}????@JSON(name="mm")????public?String?getPwd()?{????????return?pwd;????}????public?void?setPwd(String?pwd)?{????????this.pwd?=?pwd;????}????public?String?getAddress()?{????????return?address;????}????public?void?setAddress(String?address)?{????????this.address?=?address;????}????@JSON(format="yy-MM-dd")????public?Date?getBirthday()?{????????return?birthday;????}????public?void?setBirthday(Date?birthday)?{????????this.birthday?=?birthday;????}????@Override????public?String?execute()?throws?Exception?{????????????????this.id?=?10000;????????this.userName?=?"zhangsan";????????this.pwd?=?"00000";????????this.address?=?"xian";????????this.birthday?=?new?Date();????????????????return?SUCCESS;????}}