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I have four variables I'm trying to pass via AJAX to be processed by some PHP on the same page: newJudgeName, newJudgeSection, newJudgeStatus, and originalJudgeName. The success function echos them out and they're the correct values, it's just the newJudgeStatus variable is not being picked up by my PHP. I've switched newJudgeStatus with newJudgeName in the data line on the AJAX request and then the value is sent just fine (I can see it in the db under Judge Name)... it's only when it's in the original spot in the ajax request that it doesn't work. I'm completely new to Ajax. Any help would be much appreciated.

AJAX:

    $.ajax({   
        type: "POST",   
        url: "test.php",   
        data: 'newJudgeName=' + newJudgeName + '&newJudgeSection=' + newJudgeSection + '&newJudgeStatus =' + newJudgeStatus + '&originalJudgeName=' + originalJudgeName,
        success: function(){
            alert('newJudgeName=' + newJudgeName + '&newJudgeSection=' + newJudgeSection + '&newJudgeStatus =' + newJudgeStatus +'&originalJudgeName=' + originalJudgeName);
        }
    });

PHP:

if(isset($_POST['newJudgeName'])){
        $newJudgeName = $_POST['newJudgeName'];
        $newJudgeSection = $_POST['newJudgeSection'];
        $newJudgeStatus = $_POST['newJudgeStatus'];
        $originalJudgeName = $_POST['originalJudgeName'];
        $judgeID = judgeNametoID($originalJudgeName);
        $con = mysql_connect("-","-","-");
        if (!$con)
          {
          die('Could not connect: ' . mysql_error());
          }
        else {
            // connected to database successfully
        }
                    mysql_select_db("cm", $con);
        $query = ("UPDATE `casemanagers`.`judges` SET `Name`='$newJudgeName' , `Section`='$newJudgeSection', `Active`='$newJudgeStatus' WHERE `judgeID`='$judgeID';");
        $result = mysql_query($query);
        mysql_close($con);
}
share|improve this question
1  
Please call mysql_real_escape_string() on all of your $_POST vars in PHP. They're vulnerable to SQL injection right now: $originalJudgeName = mysql_real_escape_string($_POST['originalJudgeName']); – Michael Berkowski Sep 8 '11 at 17:47
    
Thanks--I'll be sure to do that before it's deployed. – Tim H Sep 8 '11 at 17:55
up vote 5 down vote accepted

You have an errant space in your data string:

'&newJudgeStatus =' + newJudgeStatus +
---------------^^^^

// Should be
'&newJudgeStatus=' + newJudgeStatus +
share|improve this answer
    
Ha! I can't believe I spent an hour scrutinizing every line and missed that. Wow. Thank you!!! – Tim H Sep 8 '11 at 17:44
    
+1 for an eagle eye – Dr.Molle Sep 8 '11 at 17:45

You should send the data this way:

$.ajax({   
    type: "POST",   
    url: "test.php",   
    data: {
        'newJudgeName' : newJudgeName,
        'newJudgeSection' : newJudgeSection,
        'newJudgeStatus' : newJudgeStatus,
        'originalJudgeName' : originalJudgeName
    },
    success: function(){
        alert('newJudgeName=' + newJudgeName + '&newJudgeSection=' + newJudgeSection + '&newJudgeStatus =' + newJudgeStatus +'&originalJudgeName=' + originalJudgeName);
    }
});
share|improve this answer

Instead of manual processing, I'll recommend to put all these inside a form & use following code to send data:

$('#id_of_the_form').serialize();

instead of buggy:

newJudgeName=' + newJudgeName + '&newJudgeSection=' + newJudgeSection + '&newJudgeStatus =' + newJudgeStatus +'&originalJudgeName=' + originalJudgeName ...

See http://api.jquery.com/serialize/

share|improve this answer

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