我试图通过从Android传递参数的值从MySQL数据库中检索特定数据,然后在查询中的PHP脚本中读取此值以返回数据。
当我运行应用程序时,会发生错误解析数据异常,因为返回的结果值为null?
为什么结果为null?是来自PHP脚本还是来自我的java代码的错误?
请帮帮我
提前致谢!
city.php:
<?php
mysql_connect("localhost","username","password");
mysql_select_db("Countries");
$sql=mysql_query("select City_Population from City where Name= "'.$_REQUEST['Name']."'");
while($row=mysql_fetch_assoc($sql))
$output[]=$row;
print(json_encode($output));
mysql_close();
?>
块引用
java class:
public class ConnectActivity extends ListActivity {
String add="http://10.0.2.2/city.php";
public void onCreate(Bundle savedInstanceState) {
super.onCreate(savedInstanceState);
setContentView(R.layout.main);
new Connect().execute();
}
private class Connect extends AsyncTask<Void,Void,String>
{
private String result = "";
private InputStream is=null;
private String city_name="London";
protected String doInBackground(Void... params) {
try
{
ArrayList<NameValuePair> nameValuePairs = new ArrayList<NameValuePair>();
nameValuePairs.add(new BasicNameValuePair("Name",city_name));
HttpClient httpclient = new DefaultHttpClient();
HttpPost httppost = new HttpPost(add);
httppost.setEntity(new UrlEncodedFormEntity(nameValuePairs));
HttpResponse response = httpclient.execute(httppost);
HttpEntity entity = response.getEntity();
is = entity.getContent();
}
catch(Exception e)
{
Log.e("log_tag", "Error in http connection "+e.toString());
}
//convert response to string
try{
BufferedReader reader = new BufferedReader(new InputStreamReader(is,"utf-8"),8);
StringBuilder sb = new StringBuilder();
String line = null;
while ((line = reader.readLine()) != null) {
sb.append(line + "\n");
}
is.close();
result=sb.toString();
}
catch(Exception e){
Log.e("log_tag", "Error converting result "+e.toString());
}
return result;
}
protected void onPostExecute(String result){
try{
JSONArray jArray = new JSONArray( result);
JSONObject json_data=null;
for(int i=0;i<jArray.length();i++)
{
json_data = jArray.getJSONObject(i);
int population=json_data.getInt("City_Population");
TextView City_Name =(TextView)findViewById(R.id.city_name);
TextView City_population=(TextView)findViewById(R.id.city_pop);
City_Name.setText(json_data.getString(city_name));
City_population.setText(population+" " );
}
}
catch(JSONException e){
Log.e("log_tag", "Error parsing data "+e.toString());
}
}
}
}
答案 0 :(得分:2)
<?php
$name=$_POST['NAME'];
mysql_connect("localhost","username","password");
mysql_select_db("Countries");
$sql=mysql_query("select City_Population as citypop from City where Name='$name' ");
while($row=mysql_fetch_assoc($sql))
$output=$row['citypop'];
print(json_encode($output));
mysql_close();
?>
你试着确定它会起作用。
答案 1 :(得分:1)
a)您的脚本容易sql injections。在将$ _REQUEST [...]参数放入sql查询字符串之前,需要对其进行正确编码
b)您需要一些错误处理。任何mysql_ *函数都可能失败,您的脚本必须处理这些错误条件。由于客户端期望一些json数据也将错误消息/代码作为json编码数组返回
c)您可能希望将Content-type标题设置为application/json,请参阅RFC 4627和http://docs.php.net/function.header
<?php
define('DEBUG_DETAILS', true);
function onError($msg, $details) {
$msg = array(
'status'=>'error',
'message'=>$msg
);
if ( defined('DEBUG_DETAILS') && DEBUG_DETAILS ) {
$msg['details'] = $details;
}
die(json_encode($msg));
}
$mysql = mysql_connect("localhost","username","password") or OnError('database connection failed', mysql_error());
mysql_select_db("Countries", $mysql) or OnError('database selection failed', mysql_error($mysql));
$query = "
SELECT
City_Population
FROM
City
WHERE
Name='%s'
";
$query = sprintf($query, mysql_real_escape_string($_REQUEST['Name'], $mysql));
$sql=mysql_query($query, $mysql) or OnError('query failed', array('query'=>$query, 'errstr'=>mysql_error($mysql)));
$output = array(
'count'=>0,
'records'=>array()
);
while( $row=mysql_fetch_assoc($sql) ) {
$output['records'][]=$row;
$output['count']+=1;
}
echo json_encode(array(
'status'=>'ok',
'result'=>$output
));
您的Android客户端应该收到像对象文字一样的文字。
{
status:"ok",
result: {
'count': 2,
'records': [ 10000, 15000]
}
}
或
{
status:"error",
message: "database connection failed",
setails: "...."
}