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I need some advice on how to successfully update mutiple rows in my database from dynamically created input fields.

So, what I have is this:


   while ($row = mysql_fetch_array($sql)) {
       echo "<input class='estemated_days' type='text' id='".$row['scpe_id']."' value='".$row['scpe_estemated_days']."'></td>";

This will output something like this:


<input class='estemated_days' type='text' id='718' value='5'>
<input class='estemated_days' type='text' id='719' value='8'>
<input class='estemated_days' type='text' id='720' value='10'>

<input type='button' id='save' value='Save'> <!-- Button to jQuery -->


Here is where my knowledge is lacking. I want jQuery to do something like this:


($"#save").click(function () {

  // Get value of id from (".estemated_days") as an identifier, and get the input value it contains
  // Send to /update.php


Then, the update.php would do something like this:



if (isset($_POST['save'])) {

        Get all of the id's and the value it contain's


    mysql_query = ("UPDATE myDatabase SET estemated_days = '$the_value_from_the_input' WHERE scpe_id = '$the_value_of_the_id'");
    //Repeat this for all rows from the webpage


My knowledge is basic web programming but I would really like to make this work. Anyone got advice on how I should do it?

share|improve this question
<input> tags don't have a data-id attribute. Why not use id? – Mike Jun 18 '12 at 23:22
@Mike oh, i did not know that. Yeah, I guess ID would work. I'll edit this in my post. – David Jun 18 '12 at 23:25

1 Answer 1

up vote 1 down vote accepted
var values = {};
$('input.estimated_days').each(function(n, el){
   values[ $(el).attr('id') ] = $(el).val();

    type : 'POST',
    url : 'update.php',
    data : {edays: values}
); /// see jquery docs for ajax callbacks 

   foreach($_POST['edays'] as $id=>$value) // ... also

... and don't forget to sanitize the input for mysql

share|improve this answer
Thank's! I will try this out asap. – David Jun 18 '12 at 23:35
Beware I corrected your spelling of "estimated" – Clancy Hood Jun 18 '12 at 23:35
thank you. Do you have any idea on why this code wont update my database? See pastebin link: I noticed now I didn't end with a semicolon but this is added now and still no luck. – David Jun 19 '12 at 0:04
Define yourself a success callback in jquery ajax that alerts you to the output: success : function(data){ alert(data); } - you can then var_dump $_POST or dump mysql last error and get that output in a popup. See the jquery ajax link to learn about callbacks – Clancy Hood Jun 19 '12 at 0:12
I get an empty alert :-( – David Jun 19 '12 at 0:24

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