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I have been using this PHP script for a long time and this is returning data to my getJSON . I changed to jquery new version v1.5.1 from 1.2.3 Today and giving parse error

  <?php

error_reporting(E_ALL);
ini_set("display_errors", 0);
include("conndb.php");

    function createoptions($table , $id , $field , $condition_field , $value)
    {
        $sql = sprintf("select * from $table WHERE $condition_field=%d ORDER BY $field" , $value);
        $res = mysql_query($sql) or die(mysql_error());
        if (mysql_num_rows($res) > 0) {
            while ($a = mysql_fetch_assoc($res))
            $out[] = "{optionValue: {$a[$id]}, optionDisplay: '$a[$field]'}";
            return "[" . implode("," , $out) . "]";
        } else

            return "[{optionValue: -1 , optionDisplay: 'No result'}]";
    }

    if (isset($_GET['country'])) {
        echo createoptions("state" , "state_id" , "state" , "country_id" , $_GET['country']);
    }


    if (isset($_GET['state'])) {
        echo createoptions("city" , "city_id" , "city" , "state_id" , $_GET['state']);
    }

    die();
    ?>

My getJson code

$.getJSON("select_old.php",{country: '$(this).val()', ajax: 'true'}, function(j){
                  var options = '';
                  for (var i = 0; i < j.length; i++) {
                    options += '<option value="' + j[i].optionValue + '">' + j[i].optionDisplay + '</option>';
                    if( i==0){
                     populateCity(j[i].optionValue );
                    }
                  }
                  $("select#state").html(options);
                }).error(function(xhr, ajaxOptions, thrownError) {  alert(xhr.statusText); })

Thanks for your help

Regards

Kiran

share|improve this question
    
What's the error message? Is it from PHP or JavaScript? Also, you should use json_encode() instead of building your own JSON strings. –  Phil Mar 16 '11 at 0:13
    
Am I confused or is your query string actually select_old.php?country=$(this).val()&ajax=true Are you sure you want the $(this).val() to be a string? –  Chris W. Mar 16 '11 at 0:16
    
This may also be caused by the stricter JSON parser jQuery > 1.4 uses - check your JSON's validity here: jsonlint.com –  Yi Jiang Mar 16 '11 at 0:34
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1 Answer

up vote 0 down vote accepted
{country: '$(this).val()', ajax: 'true'}

This should probably be

var country = $(this).val();

$.getJSON("select_old.php", { country: country, ajax: 'true' }, function(j) {

Edit: Also, see my comment above regarding json_encode() - example

$data = array();
while ($a = mysql_fetch_assoc($res)) {
    $data[] = array(
        'optionValue'   => $a[$id],
        'optionDisplay' => $a[$field]
    );
}
return json_encode($data);
share|improve this answer
    
Thanks Phil , But unfortunately.. this change didn't work . Could you point me how to use json_encode() for my case . –  Bujji Mar 16 '11 at 0:35
    
@YiJiang You sure about that? My (Firefox) tests indicate otherwise –  Phil Mar 16 '11 at 0:38
    
This is the data format [{optionValue: 283, optionDisplay: 'Belize'},{optionValue: 284, optionDisplay: 'Cayo'},{optionValue: 285, optionDisplay: 'Corozal'},{optionValue: 286, optionDisplay: 'Orange Walk'},{optionValue: 287, optionDisplay: 'Toledo'}] –  Bujji Mar 16 '11 at 0:38
    
or on top do I need to mention any json header ? as I said It was working perfect with old version .. –  Bujji Mar 16 '11 at 0:39
    
@PhilBrown Right, stupid mistake. Keys are always evaluated as strings –  Yi Jiang Mar 16 '11 at 0:42
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