在Android中解析嵌套的JSON对象

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我正在尝试解析一个 JSON对象,其中一部分看起来像这样:
{
"offer":{
    "category":"Salon","description":"Use this offer now to enjoy this great Salon at a 20% discount. ","discount":"20","expiration":"2011-04-08T02:30:00Z","published":"2011-04-07T12:00:33Z","rescinded_at":null,"title":"20% off at Jun Hair Salon","valid_from":"2011-04-07T12:00:31Z","valid_to":"2011-04-08T02:00:00Z","id":"JUN_HAIR_1302177631","business":{
        "name":"Jun Hair Salon","phone":"2126192989","address":{
            "address_1":"12 Mott St","address_2":null,"city":"New York","cross_streets":"Chatham Sq & Worth St","state":"NY","zip":"10013"
        }
    },

等等….

到目前为止,通过这样做,我能够非常简单地解析:

JSONObject jObject = new JSONObject(content);
JSONObject offerObject = jObject.getJSONObject("offer");
String attributeId = offerObject.getString("category");
System.out.println(attributeId);

String attributeValue = offerObject.getString("description");
System.out.println(attributeValue);

String titleValue = offerObject.getString("title");
System.out.println(titleValue);`

但是,当我尝试’名称’时,它将无法正常工作.

我试过了:

JSONObject businessObject = jObject.getJSONObject("business");
String nameValue = businesObject.getString("name");
System.out.println(nameValue);

当我尝试这个时,我得到“JSONObject [business] not found.”

当我尝试:

String nameValue = offerObject.getString("name");
System.out.println(nameValue);`

正如预期的那样,我得到“未找到JSONObject [name]”.

我在这做错了什么?我遗漏了一些基本的东西……

解决方法

好吧,我是个白痴.这很有效.
JSONObject businessObject = offerObject.getJSONObject("business");
String nameValue = businessObject.getString("name");
System.out.println(nameValue);

如果我只想在张贴前两秒钟……杰斯!

原文链接:https://www.f2er.com/android/317877.html

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