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I've been looking all over for the solution but I cannot find anything that works. I am trying to get a bunch of data from the database and then via AJAX autocomplete input fields in a form. To do this I've decided to use json, because why not, right? Alternatively I've been thinking to just send back a delimited string and then tokenise it, which in hind-sight would've been much easier and spared me the headache... Since I've decided to use json though, I guess I should stick with it and find out what went wrong! What happens is that when the get_member_function() is executed, an error pops up in an alert dialogue and reads "[object Object]". I've tried this also using the GET request, and by setting the contentType to ”application/json; charset=utf-8″. Alas, no dice. Can anyone please suggest what I am doing wrong? Take care, Piotr.

My javascript/jQuery function is as follows:

function get_member_info()
   {

   var url = "contents/php_scripts/admin_scripts.php"; 
   var id = $( "select[ name = member ] option:selected" ).val();

   $.ajax(
   {

      type: "POST",
      dataType: "json",
      url: url,
      data: { get_member: id },
      success: function( response ) 
      { 

          $( "input[ name = type ]:eq( " + response.type + " )" ).attr( "checked", "checked" );
          $( "input[ name = name ]" ).val( response.name );
          $( "input[ name = fname ]" ).val( response.fname );
          $( "input[ name = lname ]" ).val( response.lname );
          $( "input[ name = email ]" ).val( response.email );
          $( "input[ name = phone ]" ).val( response.phone );
          $( "input[ name = website ]" ).val( response.website );
          $( "#admin_member_img" ).attr( "src", "images/member_images/" + response.image );

      },
      error: function( error )
      {

         alert( error );

      }

   } );

}

and the relevant code in "contents/php_scripts/admin_scripts.php" is as follows:

   if( isset( $_POST[ "get_member" ] ) )
   {

      $member_id = $_POST[ "get_member" ];
      $query = "select * from members where id = '$member_id'";

      $result = mysql_query( $query );

      $row = mysql_fetch_array( $result );

      $type = $row[ "type" ];
      $name = $row[ "name" ];
      $fname = $row[ "fname" ];
      $lname = $row[ "lname" ];
      $email = $row[ "email" ];
      $phone = $row[ "phone" ];
      $website = $row[ "website" ];
      $image = $row[ "image" ];

      $json_arr = array( "type" => $type, "name" => $name, "fname" => $fname, "lname" => $lname, "email" => $email, "phone" => $phone, "website" => $website, "image" => $image );

      echo json_encode( $json_arr );

   }
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1  
Try alert(JSON.stringify(error)) as it should display more information about the error in the alert dialog –  The Coding Monk Feb 28 '11 at 21:06
    
I'd guess that there's a PHP error before JSON is echoed. Check your fetch function, you are addressing data as $row['key'], so you should have used mysql_fetch_assoc instead, I believe. Change '$row = mysql_fetch_array( $result );' to '$row = mysql_fetch_assoc( $result );' and see if it works. –  Niko Efimov Feb 28 '11 at 21:06
    
Pay attention: if there is no previous sanitization, you are vulnerable to SQL injection. –  Andrea Feb 28 '11 at 21:11
    
Hi thanks, no PHP error, dry-ran the script without js calling it and it was fine... –  Piotr Feb 28 '11 at 21:18
    
@Jack Duluoz, yes, i got more information... here is what it spit out: {"readyState":4,"responseText":"{\"type\":\"Person\",\"name\":\"\",\"fname\":\"A‌​driana\",\"lname\":\"Pitea\",\"email\":\"piotr.zywien@gmail.com\",\"phone\":\"123‌​4567\",\"website\":\"\",\"image\":null}","status":200,"statusText":"parsererror"} –  Piotr Feb 28 '11 at 21:20
show 1 more comment

7 Answers

I think I know this one...

Try sending your JSON as JSON by using PHP's header() function:

/**
 * Send as JSON
 */
header("Content-Type: application/json", true);

Though you are passing valid JSON, jQuery's $.ajax doesn't think so because it's missing the header.

jQuery used to be fine without the header, but it was changed a few versions back.

ALSO

Be sure that your script is returning valid JSON. Use Firebug or Google Chrome's Developer Tools to check the request's response in the console.

UPDATE

You will also want to update your code to sanitize the $_POST to avoid sql injection attacks. As well as provide some error catching.

if (isset($_POST['get_member'])) {

    $member_id = mysql_real_escape_string ($_POST["get_member"]);

    $query = "SELECT * FROM `members` WHERE `id` = '" . $member_id . "';";

    if ($result = mysql_query( $query )) {

       $row = mysql_fetch_array($result);

       $type = $row['type'];
       $name = $row['name'];
       $fname = $row['fname'];
       $lname = $row['lname'];
       $email = $row['email'];
       $phone = $row['phone'];
       $website = $row['website'];
       $image = $row['image'];

       /* JSON Row */
       $json = array( "type" => $type, "name" => $name, "fname" => $fname, "lname" => $lname, "email" => $email, "phone" => $phone, "website" => $website, "image" => $image );

    } else {

        /* Your Query Failed, use mysql_error to report why */
        $json = array('error' => 'MySQL Query Error');

    }

     /* Send as JSON */
     header("Content-Type: application/json", true);

    /* Return JSON */
    echo json_encode($json);

    /* Stop Execution */
    exit;

}
share|improve this answer
    
Hi McHerbie, Thanks for your swift reply! Unfortunately this didn't work either... –  Piotr Feb 28 '11 at 21:13
    
I've updated the answer above to include a code update. Check to make sure your query is returning results and an error isn't breaking the JSON response. –  McHerbie Feb 28 '11 at 21:19
    
Also, try passing the $replace parameter to header: header("Content-Type: application/json", true); –  McHerbie Feb 28 '11 at 21:20
    
@Piotr, are you getting the correct JSON response from the server? –  McHerbie Feb 28 '11 at 21:28
    
+1 for header, firebug, and input sanitize - all good advice –  codercake Feb 28 '11 at 21:31
show 18 more comments

Try using jQuery.parseJSON when you get the data back.

type: "POST",
dataType: "json",
url: url,
data: { get_member: id },
success: function(data) { 
    response = jQuery.parseJSON(data);
    $("input[ name = type ]:eq(" + response.type + " )")
        .attr("checked", "checked");
    $("input[ name = name ]").val( response.name);
    $("input[ name = fname ]").val( response.fname);
    $("input[ name = lname ]").val( response.lname);
    $("input[ name = email ]").val( response.email);
    $("input[ name = phone ]").val( response.phone);
    $("input[ name = website ]").val( response.website);
    $("#admin_member_img")
        .attr("src", "images/member_images/" + response.image);
},
error: function(error) {
    alert(error);
}
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The $.ajax error function takes three arguments, not one:

error: function(xhr, status, thrown)

You need to dump the 2nd and 3rd parameters to find your cause, not the first one.

share|improve this answer
1  
Hi Alnitak thanks, here is what status and thrown gave out: 'parsererror - jQuery150010872808285057545_1298928988511 was not called' Do you have any suggestions regarding this? –  Piotr Feb 28 '11 at 21:37
    
Yeah, Alnitak, I'm curious too. Having similar problems.. –  mmmshuddup Dec 16 '11 at 21:01
add comment

In addition to McHerbie's note, try json_encode( $json_arr, JSON_FORCE_OBJECT ); if you are on PHP 5.3...

share|improve this answer
    
Thanks Shehi, that didn't do it either i'm afraid. –  Piotr Feb 28 '11 at 21:15
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If you are using a newer version (over 1.3.x) you should learn more about the function parseJSON! I experienced the same problem. Use an old version or change your code

success=function(data){
  //something like this
  jQuery.parseJSON(data)
}
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Try this...  
  <script type="text/javascript">

    $(document).ready(function(){

    $("#find").click(function(){
        var username  = $("#username").val();
            $.ajax({
            type: 'POST',
            dataType: 'json',
            url: 'includes/find.php',
            data: 'username='+username,
            success: function( data ) {
            //in data you result will be available...
            response = jQuery.parseJSON(data);
//further code..
            },

    error: function(xhr, status, error) {
        alert(status);
        },
    dataType: 'text'

    });
        });

    });



    </script>

    <form name="Find User" id="userform" class="invoform" method="post" />

    <div id ="userdiv">
      <p>Name (Lastname, firstname):</p>
      </label>
      <input type="text" name="username" id="username" class="inputfield" />
      <input type="button" name="find" id="find" class="passwordsubmit" value="find" />
    </div>
    </form>
    <div id="userinfo"><b>info will be listed here.</b></div>
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  session_start();
include('connection.php');

/* function msg($subjectname,$coursename,$sem)
    {
    return '{"subjectname":'.$subjectname.'"coursename":'.$coursename.'"sem":'.$sem.'}';
    }*/ 
$title_id=$_POST['title_id'];
$result=mysql_query("SELECT * FROM `video` WHERE id='$title_id'") or die(mysql_error());
$qr=mysql_fetch_array($result);
$subject=$qr['subject'];
$course=$qr['course'];
$resultes=mysql_query("SELECT * FROM course JOIN subject ON course.id='$course' AND subject.id='$subject'");
$qqr=mysql_fetch_array($resultes);
$subjectname=$qqr['subjectname'];
$coursename=$qqr['coursename'];
$sem=$qqr['sem'];
$json = array("subjectname" => $subjectname, "coursename" => $coursename, "sem" => $sem,);
header("Content-Type: application/json", true);
echo json_encode( $json_arr );


 $.ajax({type:"POST",    
                  dataType: "json",    
                   url:'select-title.php',
                   data:$('#studey-form').serialize(),
                   contentType: "application/json; charset=utf-8",
                   beforeSend: function(x) {
        if(x && x.overrideMimeType) {
            x.overrideMimeType("application/j-son;charset=UTF-8");
        }
    },
                   success:function(response)
                  {
                    var response=$.parseJSON(response)
                    alert(response.subjectname);
                    $('#course').html("<option>"+response.coursename+"</option>"); 
                    $('#subject').html("<option>"+response.subjectname+"</option>");

                  },
                  error: function( error,x,y)
                  {

                  alert( x,y );

              }
                   });
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