Vip*_*opy 5 java json http httpresponse json-simple
嗨,我正在使用客户端 Http (apache) 和 json-simple。
我想访问json响应的属性,然后使用它们。
知道如何做到这一点吗?我读了一篇文章,但我并没有像它那样工作。
这是我的回答 json:
{"Name":"myname","Lastname":"mylastname","Age":19}
这是我的代码java:
DefaultHttpClient httpClient = new DefaultHttpClient();
HttpGet getRequest = new HttpGet(
"http://localhost:8000/responsejava");
getRequest.addHeader("accept", "application/json");
HttpResponse response = httpClient.execute(getRequest);
if (response.getStatusLine().getStatusCode() != 200) {
throw new RuntimeException("Failed : HTTP error code : "
+ response.getStatusLine().getStatusCode());
}
BufferedReader br = new BufferedReader(
new InputStreamReader(
(response.getEntity().getContent())
)
);
StringBuilder content = new StringBuilder();
String line;
while (null != (line = br.readLine())) {
content.append(line);
}
Object obj=JSONValue.parse(content.toString());
JSONObject finalResult=(JSONObject)obj;
System.out.println(finalResult);
httpClient.getConnectionManager().shutdown();
我打印了 null,我做错了什么?
更好、更容易使用Gson
Gson gson = new Gson;
NameBean name = gson.fromJson(content.toString(),NameBean.class)
NameBean是保存 json 字符串的对象。
public class NameBean implements Serializable{
public String name;
public String lastname;
public Int age;
public String getName() {
return name;
}
public void setName(String name) {
this.name = name;
}
public String getLastname() {
return lastname;
}
public void setLastname(String lastname) {
this.lastname = lastname;
}
public Int getAge() {
return age;
}
public void setAge(Int age) {
this.age = age;
}
}
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