将参数发送到 php 并在 JSON 中获取结果
Send parameters to php and get result in JSON
我有将参数发送到 php 并在 JSON 中得到结果的代码:
private void details_location(int id){
HashMap<String, String> parameter = new HashMap<>();
parameter.put("id", id);
JsonObjectRequest jsonObjReq = new JsonObjectRequest(Method.GET, url, new JSONObject(parameter), new Response.Listener<JSONObject>() {
@Override
public void onResponse(JSONObject response) {
Log.d(TAG, response.toString());
try {
JSONArray respon=(JSONArray)response.get("location");
for (int i = 0; i < respon.length(); i++) {
JSONObject person = (JSONObject) respon.get(i);
id_location= person.getString("id_location");
address= person.getString("address");
}
} catch (JSONException e) {
e.printStackTrace();
Toast.makeText(getApplicationContext(),
"Error: " + e.getMessage(),
Toast.LENGTH_LONG).show();
}
}
}, new Response.ErrorListener() {
@Override
public void onErrorResponse(VolleyError error) {
VolleyLog.d(TAG, "Error: " + error.getMessage());
Toast.makeText(getApplicationContext(),
error.getMessage(), Toast.LENGTH_SHORT).show();
}
});
}
并且我有文件 php 用于处理查询 Mysql 并在 JSON 中输出:
<?php
require_once('db_connect.php');
if(isset($_GET['id'])){
$id=$_GET['id'];
$action="SELECT * FROM locaions WHERE id_location=\"$id\";";
$query=mysqli_query($db_connect, $action);
if (mysqli_num_rows($query) > 0)
{
$json['location']=array();
while($row=mysqli_fetch_assoc($query)){
$data=array();
$data["id_location"]=$row["id_location"];
$data["address"]=$row["address"];
array_push($json['location'], $data);
}
}
mysqli_close($db_connect);
echo json_encode($json);
}
else{
$action="SELECT * FROM locaions WHERE id_location=4;";
$query=mysqli_query($db_connect, $action);
if (mysqli_num_rows($query) > 0)
{
$json['location']=array();
while($row=mysqli_fetch_assoc($query)){
$data=array();
$data["id_location"]=$row["id_location"];
$data["address"]=$row["address"];
array_push($json['location'], $data);
}
}
mysqli_close($db_connect);
echo json_encode($json);
}
?>
当我 运行 程序时,结果总是显示带有 id_location=4 的位置(其他语句)。为什么 isset($_GET['id']) = false ?如何将参数发送到 PHP 并在 JSON 中得到结果?
这是向你的php服务器发送参数的代码
protected String doInBackground(String... params) {
// TODO Auto-generated method stub
try {
String parameter1 = (String) params[0];
String parameter2 = (String) params[1];
String link = "Mention ur url link here/parameter1+parameter1 +parameter2+parameter2+";
URL url = new URL(link);
HttpClient client = new DefaultHttpClient();
HttpGet request = new HttpGet();
request.setURI(new URI(link));
HttpResponse response = client.execute(request);
BufferedReader in = new BufferedReader(new InputStreamReader(
response.getEntity().getContent()));
StringBuffer sb = new StringBuffer("");
String line = "";
while ((line = in.readLine()) != null) {
sb.append(line);
break;
}
in.close();
return sb.toString();
}
catch (Exception e) {
return new String("Exception: " + e.getMessage());
}
}
在post上执行php应该returnjson格式的数据,你可以在post中处理这些数据执行
我有将参数发送到 php 并在 JSON 中得到结果的代码:
private void details_location(int id){
HashMap<String, String> parameter = new HashMap<>();
parameter.put("id", id);
JsonObjectRequest jsonObjReq = new JsonObjectRequest(Method.GET, url, new JSONObject(parameter), new Response.Listener<JSONObject>() {
@Override
public void onResponse(JSONObject response) {
Log.d(TAG, response.toString());
try {
JSONArray respon=(JSONArray)response.get("location");
for (int i = 0; i < respon.length(); i++) {
JSONObject person = (JSONObject) respon.get(i);
id_location= person.getString("id_location");
address= person.getString("address");
}
} catch (JSONException e) {
e.printStackTrace();
Toast.makeText(getApplicationContext(),
"Error: " + e.getMessage(),
Toast.LENGTH_LONG).show();
}
}
}, new Response.ErrorListener() {
@Override
public void onErrorResponse(VolleyError error) {
VolleyLog.d(TAG, "Error: " + error.getMessage());
Toast.makeText(getApplicationContext(),
error.getMessage(), Toast.LENGTH_SHORT).show();
}
});
}
并且我有文件 php 用于处理查询 Mysql 并在 JSON 中输出:
<?php
require_once('db_connect.php');
if(isset($_GET['id'])){
$id=$_GET['id'];
$action="SELECT * FROM locaions WHERE id_location=\"$id\";";
$query=mysqli_query($db_connect, $action);
if (mysqli_num_rows($query) > 0)
{
$json['location']=array();
while($row=mysqli_fetch_assoc($query)){
$data=array();
$data["id_location"]=$row["id_location"];
$data["address"]=$row["address"];
array_push($json['location'], $data);
}
}
mysqli_close($db_connect);
echo json_encode($json);
}
else{
$action="SELECT * FROM locaions WHERE id_location=4;";
$query=mysqli_query($db_connect, $action);
if (mysqli_num_rows($query) > 0)
{
$json['location']=array();
while($row=mysqli_fetch_assoc($query)){
$data=array();
$data["id_location"]=$row["id_location"];
$data["address"]=$row["address"];
array_push($json['location'], $data);
}
}
mysqli_close($db_connect);
echo json_encode($json);
}
?>
当我 运行 程序时,结果总是显示带有 id_location=4 的位置(其他语句)。为什么 isset($_GET['id']) = false ?如何将参数发送到 PHP 并在 JSON 中得到结果?
这是向你的php服务器发送参数的代码
protected String doInBackground(String... params) {
// TODO Auto-generated method stub
try {
String parameter1 = (String) params[0];
String parameter2 = (String) params[1];
String link = "Mention ur url link here/parameter1+parameter1 +parameter2+parameter2+";
URL url = new URL(link);
HttpClient client = new DefaultHttpClient();
HttpGet request = new HttpGet();
request.setURI(new URI(link));
HttpResponse response = client.execute(request);
BufferedReader in = new BufferedReader(new InputStreamReader(
response.getEntity().getContent()));
StringBuffer sb = new StringBuffer("");
String line = "";
while ((line = in.readLine()) != null) {
sb.append(line);
break;
}
in.close();
return sb.toString();
}
catch (Exception e) {
return new String("Exception: " + e.getMessage());
}
}
在post上执行php应该returnjson格式的数据,你可以在post中处理这些数据执行