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g,day. could someone help me make sense of why my code is not returing the results to json? i am sure there is an error in my code but cannot seem to find it. what is supposed to happen is the values of $dept and $box are supposed to be returned in an alert, but this does not happen. thanks

<?php

function runSQL($rsql) {
 $hostname = "localhost";
 $username = "root";
 $password = "";
 $dbname   = "sample";
 $connect = mysql_connect($hostname,$username,$password) or die ("Error: could not connect to database");
 $db = mysql_select_db($dbname);
 $result = mysql_query($rsql) or die ('test'); 
 return $result;
 mysql_close($connect);
}
$new = 1;

$items = rtrim($_POST['items'],",");
$sql = "SELECT * FROM `boxes` WHERE id IN ($items)";
$result = runSQL($sql);


$i = 0;
$rows = mysql_num_rows($result);
while ($row = mysql_fetch_array($result)) {
   if ( $i < $rows ) {

      $dept .= $row['department'] . "," ;
      $box .= $row['custref'] . "," ;
   } else { 

   $dept .= $row['department'];
   $box .= $row['custref'];
   }
   $i++;
}


/*$items = rtrim($_POST['items'],",");
$sql = "UPDATE `boxes` SET status = 'Deleted' WHERE id IN ($items)";
$result = runSQL($sql);*/

//$sql = "INSERT INTO `act` (`item`) VALUES (\''.$box.'\')";
//$result = runSQL($sql);

$total = count(explode(",",$items)); 
$result = runSQL($sql);
$total = mysql_affected_rows(); 
/// Line 18/19 commented for demo purposes. The MySQL query is not executed in this case. When line 18 and 19 are uncommented, the MySQL query will be executed. 
header("Expires: Mon, 26 Jul 1997 05:00:00 GMT" );
header("Last-Modified: " . gmdate( "D, d M Y H:i:s" ) . "GMT" );
header("Cache-Control: no-cache, must-revalidate" );
header("Pragma: no-cache" );
header("Content-type: text/x-json");
$json = "";
$json .= "{\n";
$json .= "dept: '".$dept.",'\n";
$json .= "box: '".$box."'\n";
$json .= "}\n";
echo $json;
?>

the ajax

success: function(data){
dept = data.dept;
box = data.box;
alert("You have successfully deleted\n\r\n\rBox(es): "+data.dept+data.box);
$("#flex1").flexReload();
   }
share|improve this question
1  
WHY are you generating JSON yourself instead of using one of the dozens of extensions or libraries that does it for you? – Ignacio Vazquez-Abrams Sep 27 '10 at 13:30
    
habit :-) i really because of time restraints need to find the error in this code. thanks – Mr.Putersmit Sep 27 '10 at 13:34
$sql = "SELECT * FROM `boxes` WHERE id IN ($items)";

SQL-injection vulnerability. You must mysql_real_escape_string each individual item if they are strings, or ensure they are only numbers if that's what they're supposed to be (eg with intval()). Or use parameterised queries.

header("Content-type: text/x-json");

application/json.

$json .= "dept: '".$dept.",'\n";

Apart from JSON needing double-quotes around keys and string values, you would also need to JavaScript-string-literal-escape values being injected into a string. Otherwise an apostrophe/quote/backslash/newline would break the string. You can mostly do this with addslashes().

But really, there's no call to be constructing your own JSON values (or other JavaScript literals). PHP gives you json_encode(). It's simpler, faster, more reliable. Use it.

echo json_encode(array(
    'dept'=>$dept,
    'box'=>$box
));
share|improve this answer
    
bobince. i have changed code to thus: – Mr.Putersmit Sep 27 '10 at 13:53
    
header("Content-type: application/json"); $json .= "dept: '".$dept.",'\n"; echo json_encode(array( 'dept'=>$dept, 'box'=>$box )); and it causes error: <b>Fatal error</b>: Call to undefined function: json_encode() i am using php4.4.7 – Mr.Putersmit Sep 27 '10 at 13:54
    
Eek! Yeah, PHP4 doesn't have json_encode I'm afraid. You really need to upgrade though: PHP4 is no longer supported (and hasn't been for quite some time now); there have been loads of security holes fixed since then. – bobince Sep 27 '10 at 14:11
    
admins choice. i am just humble servant :-) is there an alternative method? thanks – Mr.Putersmit Sep 27 '10 at 14:14
    
i also think that this is a php problem because all other pages using this code are displaying ok. i shall repost in php forum. many thanks for your help – Mr.Putersmit Sep 27 '10 at 14:17

Your JSON is incorrect. It is formatted like this:

{
dept: '...'
box: '...'
}

It should be:

{
"dept": "..."
"box": "..."
}

The identifiers need quotation marks around them, and strings are enclosed in quotation marks, not apostrophes.

share|improve this answer

RFC4627 defines the media type for JSON as "application/json".

share|improve this answer

Your wrote

$json .= "dept: '".$dept.",'\n";

So, 1. You should add double quotes for key and value.
2. There is no comma (,) after key value ends. You are adding it inside the quote. i.e. you code will create this json,

dept: 'department,'

See the place of comma there.

try this:

$json .= "\"dept\": \"".$dept."\",\n";
share|improve this answer

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