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I'm sure the answer to this is embarrassingly simple, but I've been banging my head for the past hours so I'll come here with tail between legs.

I am trying to do a simple INSERT. And it just isn't working. This is my first attempt at something like this so I am sure the problem is obvious, and I am just not seeing it.

Can anyone help?

I've also reduced down to a "simplest case scenario", but if anyone can throw any best practices I seem to be ignoring please make suggestions.

HERE IS MY FORM (edited for brevity)

<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Strict//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-strict.dtd">

<html>
<head>

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1/jquery.min.js"></script>
<script src="jquery.form.js"></script>

<script>

$(document).ready(function() {

$('#signupForm').ajaxForm(function() { 
    var queryString = $('#signupForm').formSerialize();
    $.post('process.php', queryString);
    alert("Working!"); 
});

 });

</script>

</head>

<body>
<form id="signupForm" action="process.php" method="post">

::: a bunch of fields... if I submit to action="#" and do a var_dump($_POST); I can see   they are all there, so that is not the problem (I think)

<button type="submit" name="formSubmit" value="submit">Click to submit</button>
</form>
<div id="results"></div>

</body>
 </html>

Here is my process.php

if($_POST['artistName'] && $_POST['password'])
{
$password = sanitizeString($_POST['password1']);
$artistName = sanitizeString($_POST['artistName']);
$desc_short = sanitizeString($_POST['desc_short']);
$nationality = sanitizeString($_POST['nationality']);

.. I will leave a bunch out

}

function sanitizeString($string)
{
    $string=trim($string);
    $string=strip_tags($string);
    $string=htmlentities($string);
    $string=stripslashes($string);
    return $string;
};



$dbhost = "localhost";
$dbname = "noirTEST";
$dbuser = "root";
$dbpass = "root";



$connection = mysql_connect($dbhost, $dbuser, $dbpass) or die ('Unable to connect');
mysql_select_db($dbname, $connection) or die ('unable to find database');

$sql = "INSERT INTO NOIRusers (password, artistName, desc_short, nationality, speakEnglish, speakGerman, mainInst, inspiration1, inspiration2, inspiration3, inspiration4, inspiration5, desc_med, link1name, link1url, link2name, link2url, link3name, link3url, email ) VALUES ('$password1', '$artistName', '$desc_short', '$nationality', '$speakEnglish', '$speakGerman','$mainInst',  '$inspiration1', '$inspiration2', '$inspiration3', '$inspiration4', '$inspiration5', '$desc_med', '$link1name', '$link1url', '$link2name', '$link2url', '$link3name', '$link3url', '$email')";

$result = mysql_query($sql, $connection);

3 things .. -I initially tried with a PDO statement, went to SQLI, and now have landed with SQL. I just kept simplifying to see if I could find the problem. I think i have arrived at the simplest textbook example here, but I still cant get it to work. - I did have things like form validation, etc.. but I have stripped them out to troubleshoot -I do receive my jQuery "Working!" alert when I submit (.. it mocks me!..) but my table is just not receiving data.

.. so where is my stupidity?

Also .. what I would like to try is to have an image upload as well (yeah.. I know.. if I cant even get through this?) .. so what I thought would be the easiest implementation would be to have the ajaxForm function trigger another form as a callback and then UPDATE. That seemed to be easier (for me) to break it up into two stages than to try to manage a whole image upload/cropping thing along with this. Sound ok?

share|improve this question
    
your checking for $_POST['password'] but trying to access $_POST['password1'] i suspect you have other typos like this that you have removed in your "I will leave a bunch out..." also turn on error reporting and use a normal form before attaching the jquery handler and also for debugging add mysql_query($sql, $connection) or die(mysql_error()) ... –  Lawrence Cherone Feb 16 '12 at 13:31
    
try to echo out $sql and execute it manually in phpmyadmin –  Shaheer Feb 16 '12 at 13:32
    
Try using Firebug and checking the console for any javascript errors thrown. You will also be able to see the exact data posted to the script. –  deed02392 Feb 16 '12 at 13:34
    
Also a chance your primary id is expecting a value. Probably not but you don't seem to be checking for mysql errors after inserting. @Shaheer suggestion is the best. Run the insert manually. And once you get this working then go back to PDO. –  Cerad Feb 16 '12 at 13:43
    
@LawrenceCherone - I had seen that typo and corrected as I entered the info here - i just forgot to correct it here. That wasnt the problem though. But your mysql_error() suggestion did the trick (another different field I had added but with no corresponding database column). Am I right that there are 3 main "bottlenecks"? Connect/Select/Query? I guess I had errorchecked the first two, but slacked on the last. –  K.K. Smith Feb 16 '12 at 14:17

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