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java - get JSONException : Value of type java. 解析 JSON 响应时 lang.String 无法转换为 JSONObject

转载 作者:行者123 更新时间:2023-11-29 03:29:56 27 4
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我开发了一个 Android 应用程序,它从以 JSON 格式响应的服务器请求地点坐标(目前它只发送两个地点):

这是来自服务器的 php 代码:

$place = $db->getCoordinates($name);
if ($place != false) {

$response[1]["success"] = 1;
$response[1]["place"]["H"] = $place[1]["H"];
$response[1]["place"]["V"] = $place[1]["V"];
$response[1]["place"]["placeid"] = $place[1]["placeid"];
$response[1]["place"]["name"] = $place[1]["name"];
$response[1]["place"]["type"] = $place[1]["type"];
$response[1]["place"]["note"] = $place[1]["note"];
// place found
// echo json with success = 1
$response[2]["success"] = 1;
$response[2]["place"]["H"] = $place[2]["H"];
$response[2]["place"]["V"] = $place[2]["V"];
$response[2]["place"]["placeid"] = $place[2]["placeid"];
$response[2]["place"]["name"] = $place[2]["name"];
$response[2]["place"]["type"] = $place[2]["type"];
$response[2]["place"]["note"] = $place[2]["note"];
echo json_encode($response);
}

当应用程序获取坐标时,它会尝试以这种方式解析它们:

            JSONObject json_places = userFunction.getPlaces();
JSONObject places = json_places.getJSONObject("1");
JSONObject coord = places.getJSONObject("place");

获取地点():

public JSONObject getPlaces(){
// Building Parameters
List<NameValuePair> params = new ArrayList<NameValuePair>();
params.add(new BasicNameValuePair("tag", allcoordinates_tag));
JSONObject json = jsonParser.getJSONFromUrl("http://"+ip+placesURL, params);
// return json
Log.i("JSON", json.toString());
return json;
}

JSON 解析器:

public class JSONParser {

static InputStream is = null;
static JSONObject jObj = null;
static String json = "";

// constructor
public JSONParser() {

}

public JSONObject getJSONFromUrl(String url, List<NameValuePair> params) {

// Making HTTP request
try {
// defaultHttpClient
HttpPost httpPost = new HttpPost(url);
HttpParams httpParameters = new BasicHttpParams();
int timeoutConnection = 9000;
HttpConnectionParams.setConnectionTimeout(httpParameters, timeoutConnection);
int timeoutSocket = 9000;
HttpConnectionParams.setSoTimeout(httpParameters, timeoutSocket);
DefaultHttpClient httpClient = new DefaultHttpClient(httpParameters);

httpPost.setEntity(new UrlEncodedFormEntity(params));

HttpResponse httpResponse = httpClient.execute(httpPost);
HttpEntity httpEntity = httpResponse.getEntity();
is = httpEntity.getContent();

} catch (UnsupportedEncodingException e) {
e.printStackTrace();
}
catch (ConnectTimeoutException e) {

e.printStackTrace();
}
catch (ClientProtocolException e) {
e.printStackTrace();
} catch (Exception e) {
e.printStackTrace();
}


try {
BufferedReader reader = new BufferedReader(new InputStreamReader(
is, "iso-8859-1"), 8);
StringBuilder sb = new StringBuilder();
String line = null;
while ((line = reader.readLine()) != null) {
sb.append(line + "\n");
}
is.close();
json = sb.toString();
Log.e("JSON", json);
} catch (Exception e) {
Log.e("Buffer Error", "Error converting result " + e.toString());
}

// try parse the string to a JSON object
try {
jObj = new JSONObject(json);
} catch (JSONException e) {
Log.e("JSON Parser", "Error parsing data " + e.toString());
}

// return JSON String
return jObj;

}
}

这是带有错误的 JSON:

debug from eclipse

当应用程序尝试解析 JSON 响应时,它崩溃并发送 JSONException:类型 java.lang.String 的值无法转换为 JSONObject我该如何解决这个问题?谢谢

最佳答案

您的网络服务未创建有效的 JSON。 JSON 字符串只能以 {[ 开头。你的开始于字符串 "Array"

您可以在其维基百科条目 here 中阅读有关 JSON 格式的信息.

关于java - get JSONException : Value of type java. 解析 JSON 响应时 lang.String 无法转换为 JSONObject,我们在Stack Overflow上找到一个类似的问题: https://stackoverflow.com/questions/18794505/

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