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basically what im trying to do is to DYNAMICALLY APPEND elements in a form and save their values to myql using php so far ive started adding but i dnt know how to post their values.. here is what ive done so far:

<html>
<head>
<script type="text/javascript" src="jquery-1.3.2.min.js" ></script>
<script> 
 $('document').ready(function(){ 


 $('#save').live('click',function(e){ 
   /*
   this should be the function that gets and post all elements in php 
   */  
   //maybe the use of $.post or .load() or ajax

}); 

$('#add').click(function(){
$("<br><input type='text' class='do'name='do'>").appendTo('form');

});

}); 

 </script></head>
<body>
<form> //this was the form that im appending
<input type='text' class='do' name="do"><br> 
<input type='text' class='do' name="do"><br> 
<input type='text' class='do' name="do"><br> 

</form>

<input type='button' id='add' value='[+]'>
<input type='button' id='save' value='go2'><br>


<div id='res'></div>

</body>
</html>

and i want to save all values in database using php so just for example here is the php

<?php
//
mysql_query("INSERT <blablabla HERE>");

?>

please help me with this stuff... thanks..

share|improve this question
    
So you need the 'blablabla" part or what? –  Damien Pirsy Feb 21 '12 at 10:13
    
are you looking for examples on how to use jquery ajax? –  Jibi Abraham Feb 21 '12 at 10:17
    
the "blabla" part is the POSTED values of the DYNAMICALLY ADDED elements. –  Nj Lac Feb 21 '12 at 10:28

5 Answers 5

I think a simple snippet of code can answer this for you:

HTML:

<form method="post">
    <input type="submit" id="btn_submit">
</form>

JQuery:

$("#btn_submit").mousedown(function() {
    $("form").append("<input name='foo' value='bar'>");
});

PHP:

$myValue = $_POST["foo"];

mysql_query("insert into myTable (foo), ($myValue)");
share|improve this answer
    
that looks promising...but how could i post the value in php then save it afterwards??? can it be done by ajax or something?? –  Nj Lac Feb 21 '12 at 10:30

On every add click, you need to make an ajax call to a page, where (the ajax-called page) the mysql-insert would be performed.

Consider using Jquery.ajax

share|improve this answer

Instead of trying to append the form while saving the information to a database, why not just pull the list from the database (Holding all significant values), then reload using AJAX after the 'appending', which will programmatically be just adding the value to the end of the database. Voila! Problem solved.

share|improve this answer

Please refer the jquery form plugin .http://jquery.malsup.com/form/

Here form submitted using ajax , so it will not refresh the form and also you will get all the values posted as what php does

share|improve this answer
    
i know those but what im trying to do is post the values of elements that are appended dynamically.. –  Nj Lac Feb 21 '12 at 10:39
    
There are plenty of events and options in that plugin jquery.malsup.com/form/#options-object –  duke Feb 21 '12 at 11:21

change name of the form text boxes 'do' to do[]

 $('#save').live('click',function(e){ 
   /*
   this should be the function that gets and post all elements in php 
   */  
   //maybe the use of $.post or .load() or ajax

}); 

$('#add').click(function(){
$("<br><input type='text' class='do' name='do[]'>").appendTo('form');

});



<form> //this was the form that im appending
**<input type='text' class='do' name="do[]"><br> 
<input type='text' class='do' name="do[]"><br> 
<input type='text' class='do' name="do[]"><br>** 

</form>

<input type='button' id='add' value='[+]'>
<input type='button' id='save' value='go2'><br>
share|improve this answer

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