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I want to populate form fields with values from a database immediately after the user enters a value in the #sid field. Here is my jQuery/HTML example:

<script src="jquery-1.3.1.min.js"></script>
<script type="text/JavaScript">
$(document).ready(function()
{
  $('#sid').bind("change", function(){
    $.getJSON("test.php?sid=" + $("#sid").val(), 
    function(data)
    {
      $.each(data.items, 
      function(i, item)
      {
        if (item.field == "saffil")
        {
              $("#saffil").val(item.value);
        }
        else if (item.field == "sfirst")
        {
              $("#sfirst").val(item.value);
        }
      });
      });
   });
});
</script>

Here is my processing script (test.php which gets called by the .getJSON method)

<?
require_once("db_pers.inc");

$ssql = "SELECT * FROM contacts_mview WHERE sempid = '".$_GET['sid']."'";

$rres = pg_query($hdb, $ssql);
pg_close($hdb);

$ares = pg_fetch_assoc($rres);

$json = array(array('field' =>	'saffil',
    		'value'	=>	$ares['saffil']),
    	  array('field'	=>	'sfirst',
    		'value'	=>	$ares['sfirst']));

echo json_encode($json);
?>

According to firebug the GET param is passed just fine to test.php and the JSON object comes back just fine:

[{"field":"saffil","value":"Admin"},{"field":"sfirst","value":"Nicholas"}]

however nothing happens on the page and I get the following error message back:

G is undefined
init()()jquery-1....1.min.js (line 12)
(?)()()test.html (line 15)
I()jquery-1....1.min.js (line 19)
F()()jquery-1....1.min.js (line 19)
[Break on this error] (function(){var l=this,g,y=l.jQuery,p=l.....each(function(){o.dequeue(this,E)})}});

This is my first stab at ajax with jQuery so any input would be much appreciated!

Thanks,

  • Nicholas
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btw, when your open/close script tags are on the same line it truncates your code. break them on to seperate lines. –  bendewey Feb 18 '09 at 3:08
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4 Answers 4

up vote 7 down vote accepted

Nice little injection attack waiting to happen there ;)

Try changing

$.each(data.items,

to:

$.each(data,

Edit: to answer your comment, I like to name my fields the same as the data key:

<input type="text" name="saffil" value="" />
<input type="text" name="sfirst" value="" />

var data = {saffil:'foo', sfirst:'bar'};
$.each(data, function(key, value) {
   $('[name='+key+']').val(value)
})
share|improve this answer
    
Injection attack = a result of not sanitizing input, yes? (Didn't bother to include that in this example) -- You are correct, that minor change fixed my problem! Thank you! –  Nicholas Kreidberg Feb 17 '09 at 23:57
1  
This brings me to another question though... is there a better way of doing this? At least populating the fields more dynamically so I don't have to spell each one out but rather just "walk" the JSON object to figure out what fields to populate and with what values? –  Nicholas Kreidberg Feb 17 '09 at 23:59
    
Awesome, thanks for the edit -- I just noticed it and that is exactly what I was looking for. –  Nicholas Kreidberg Feb 18 '09 at 6:27
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I agree with the previous repliers. That script is an SQL injection waiting to happen. You should probably use something like PDO with prepared statements or at least something like pg_escape_string.

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2  
All sanitizing was removed from the code in the example just to improve readability and avoid confusing anyone as to where the problem was. Thank you for pointing this out though :) –  Nicholas Kreidberg Mar 2 '09 at 17:15
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Not sure, but I do see a huge Sql Injection hole.

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Of course I am not sanitizing inputs for this example ;) –  Nicholas Kreidberg Feb 17 '09 at 23:55
1  
(that is what you were referring to, using the $_GET value directly in the SQL query, correct?) –  Nicholas Kreidberg Feb 18 '09 at 0:14
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I don't believe the answers here are correct.

The problem here is that the PHP (and Perl) libraries encode the JSON that you provide them, and nothing else.

Thus, if you give the encoding function an array, it will output:

[ element1, element2, element3]

This is the correct encoding for an array, but it is not a correct JSON response. A correct JSON response must be an object as outlined at http://json.org/.

Thus, you need to make a wrapper object, around your array and then encode and respond with that.

<?php
$json = array('items' =>
              array(
                    array('field' =>  'saffil',
                          'value' =>      $ares['saffil']),
                    array('field' =>      'sfirst',
                          'value' =>      $ares['sfirst'])
              )
        );

echo json_encode($json);
?>
share|improve this answer
    
A valid JSON string can be any of the states outlined at json.org, including "[]", "true", "false", "null", "52", etc. It doesn't have to be wrapped in object literal braces. –  Crescent Fresh May 18 '10 at 17:28
1  
Perhaps, but a valid JSON object must be wrapped with braces –  Dancrumb May 28 '10 at 21:31
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