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I am totally new to Php and i am trying to send json data from php to android.I have the following code in php to read value from data base:

<?php
$con=mysql_connect("localhost","root","");

if(! $con)
{
        die('Connection Failed'.mysql_error());
}

mysql_select_db("registration",$con);
$name="Adam";//$_POST["name"];
$password="charles";//$_POST["password"];
$sql="SELECT * FROM users WHERE name='$name'and password='$password'"; 

$result=mysql_query($sql, $con);
while($row = mysqli_fetch_array($result))     
{
    $details= array(
        'name' => $row['name'],
        'password' => $row['password'],

    );
    array_push($json, $bus);
}

$jsonstring = json_encode($json);
echo $jsonstring;
mysql_close();
?>

I am expecting the output to be something like this:

[{"name":"Adam","age":"25","surname":"charles"}]

If i am not wrong the JSON data. But this gives me error :

mysqli_fetch_array() expects parameter 1 to be mysqli_result, resource given in...

and also

Undefined variable: json in...

can somebody pleease tell me what might be the possible error

share|improve this question

closed as too localized by cryptic ツ, Till Helge, Ocramius, Alexander, j0k Mar 9 '13 at 11:02

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
1. You are using mysql_*and mysqli_* (pick one, and please pick mysqli :) ). 2. $json is not defined anywhere (you should define it above with $json = array();). 3. $bus is not defined anywhere - did you mean $details? 4. Please make yourself familiar with SQL Injection (en.wikipedia.org/wiki/SQL_injection). – Quasdunk Mar 7 '13 at 21:07
up vote 4 down vote accepted

Try as this

$result=mysql_query($sql, $con);
$json = array();
while($row = mysql_fetch_array($result))     
 {
    $json[]= array(
       'name' => $row['name'],
     'password' => $row['password']
    );
}

$jsonstring = json_encode($json);
 echo $jsonstring;

And mysql is deprecated, when you can use mysqli or PDO

share|improve this answer
1  
Thanx a ton @Sam!!! – joy Mar 7 '13 at 21:11
    
You're welcome :D – Sam Mar 7 '13 at 21:12

In addition to the changes suggested by sam and pitchinnate, also consider adding php header to set the content type to json

header('Content-type: application/json');

That is if you are using android to request the json information remotely

share|improve this answer

You are using mysql_query with mysqli_fetch_array. You need to use mysql_fetch_array.

However mysql_* functions shouldn't be used anymore.

Also another error:

array_push($json, $bus); // i believe $bus should be replaced with $details
share|improve this answer
    
,Can u please tell me what is wrong in the above – joy Mar 7 '13 at 21:08

I think you should check the content of you variable $result (var_dump()); In fact, if result is not defined, your program will not enter the loop and $json won't be defined.

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Undefined variable: json is caused because you are trying to do array_push($json, $bus) but $json doesnt exist.

you should declare it first

$json = Array();

The mysql error is most likely caused because you are mixing mysql and mysqli modules.

Use mysqli only.

$con=mysqli_connect("localhost","root","");
mysql_select_db("registration",$con);
...
$result=mysql_query($sql, $con);

Also it is generally a bad idea to store passwords in plain text. Consider using a hash function at least.

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