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I generate some inputs that looks something like this in HTML:

<input id='estemated_days' type='text' data-id='717' value='6'>

<select id='elements_grade' data-id='717'>
 <option value='1'></option>
 <option value='2'></option>
 <option value='3'></option>
</select>

<input id='estemated_days' type='text' data-id='718' value='4'>

<select id='elements_grade' data-id='718'>
 <option value='1'></option>
 <option value='2'></option>
 <option value='3'></option>
</select>

I generate about 10 at the time but showing you two as an example. How can I POST multiple input values to an external PHP file using jQuery? Previously I have used something like this (see code below) when submiting post data but this only seem to work for single fields with an ID - not a database generated data-id

//Initiate function when user clicks save
$("#save_courseplan").click(function() {

//Store the values of the fields as variables
var elements_grade = $('#elements_grade').val();
var estemated_days = $('#estemated_days').val();


$.post('../update.php', {

    estemated_days: estemated_days, //This for example will now represent 6
    elements_grade: elements_grade //And this 1

    }, function(data) {
    $('#updatestatus').html(data); //Display what update.php echoes out
 });
});

EDIT

OK I don't think i was quite clear. I have dynamically created inputfields. These fields has a data-id wich is fetched from a MySQL database.

The database looks something like this:

+------------+------------+
| scpe_id    | scpe_days  |
+------------+------------+
| 717        | 6          |
+------------+------------+
| 718        | 4          |
+------------+------------+

Previously, I have been successful in updating single field based on the value it contains using the jQuery code i posted earlier in this thread. One ID contains a value, this value is beeing $_POST to my update.php file and then inserted in the database.

Now, however I cannot use ID, because I need to update mutiple rows at once, each with different database-ID.

So what I would like is to first fetch the value of the data-id, to know what row to update, then fetch the value it holds to know what to be inserted - and then repeat for every <input>.

share|improve this question
    
have you tried serialize() method? –  undefined Jun 17 '12 at 17:33
    
@undefined. It's not enough, he has to give all the elements a name attribute. as written in the docs you linked. –  gdoron Jun 17 '12 at 17:35
    
@gdoron you are right, of course. –  undefined Jun 17 '12 at 17:36

1 Answer 1

var queryString = $('form').serialize();

Done.

Notes:

  • Make sure all the form elements, are inside the form element.
  • All the form elements must have a name attribute .

serialize docs

Final code can be:

$.post('../update.php/?' + queryString, function(data) {
    $('#updatestatus').html(data);
});
share|improve this answer
    
Tell him also to put input and select inside form tag –  user1432124 Jun 17 '12 at 17:33
    
@Somebodyisintrouble. I did that already, thanks. –  gdoron Jun 17 '12 at 17:35
    
Hello, thank's for your answer. Does serialize only works within a form? Because I'm not actually using <form> for my input fields, but I post the data based on the value of the ID as you can see in my jQuery code. Perhaps I should have mentioned this. –  David Jun 17 '12 at 17:45
    
@David. It can work with any selector, It just take the elements in the selector and search for inputs inside. you can use this as well: $('.common-class-for-all-inputs').serialize() –  gdoron Jun 17 '12 at 17:47
    
@gdoron it seem to post multiple times now. Good, does serialize work on hidden inputs aswell? Because I would like to have the values of data-id posted also in order to know what rows to update in my database... –  David Jun 17 '12 at 17:53

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