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I have a couple form elements that when clicked update the database and disappear.

At first, I have a button that reads Check In. Upon clicking it, the database is updated and a dropdown is presented in place of the button. In the dropdown, there are locations for the user to choose, that have values of their corresponding location-number, which upon clicking update the database. The last option is labeled Check Out, and upon clicking it, the database is supposed to be updated one last time, and then red text saying Checked Out should appear.

The problem is, there multiple sets of the above process (meaning there are many Check In buttons, which turn into selects and then read Checked Out, which all work individually). So what I need is a way to pass the id of each set to the database at the same time I'm updating the database. I was thinking something like a hidden field underneath each button, that was populated with the id, and then when the Check In button was clicked, the ajax would send the hidden field with it?

Here's my html:

<button class="checkIn">Check In</button>

<form method='post' class='myForm' action=''>
  <select name='locationSelect' class='locationSelect'>
     <option value='1'>Exam Room 1</option>
     <option value='2'>Exam Room 2</option>
     <option value='3'>Exam Room 3</option>
     <option value='4'>Exam Room 4</option>
     <option value='CheckOut'>Check Out</option>
  </select>
</form>

and here is the jquery

<script src="http://code.jquery.com/jquery-1.8.2.js"></script>

<script type="text/javascript">
$(document).ready(function() {    
    $('.locationSelect').hide();
    $('.finished').hide();
});

$('.checkIn').click(function(){
    $e = $(this);
    $.ajax({
    type: "POST",
    url: "changeloc.php",
    data: "checkIn="+$(this).val(),
    success: function(){
      $('.checkIn').css("display","none");
              $('.locationSelect').show();        
         }
    });
});

$('.locationSelect').change(function(){
    $e = $(this);
    $.ajax({
       type: "POST",
       url: "changeloc.php",
       data: "locationSelect="+$(this).val(),
       success: function(){

       }
    });
});
$('.locationSelect option[value="CheckOut"]').click(function(){
    $e = $(this);
    $.ajax({
       type: "POST",
       url: "changeloc.php",
       data: "checkOut="+$(this).val(),
       success: function(){
       $('.locationSelect').css("display","none");
       $('.finished').show();
       alert('done');
       },
       error: function(request){
       alert(request.responseText);
       }
    });
});

</script>

I'm not sure if my solution would be viable, so please feel free to propose other solutions. If you need any other details, please just ask!

Thanks for any and all help!

share|improve this question
    
Why cache $(this) and never use it? –  ᾠῗᵲᄐᶌ Oct 25 '12 at 20:02
    
Don't add that click event to the "checkout"! Instead use the same ".change()" event! I'm too tired to explain why. :) –  Taai Oct 25 '12 at 20:06
    
@Taai, thanks I changed it! –  Muhambi Oct 27 '12 at 23:19

5 Answers 5

up vote 9 down vote accepted
+50

It is cleaner to send data as a map.. (Key : value ) pairs when sending to the server.

Instead of this

data: "checkIn="+$(this).val(),

Try sending it this way

data: { "checkIn" :  $(this).val() } ,

EDIT

To perform this logic you need not use a hidden input fields in the first place.. I would prefer using HTML5 data-* attributes to get the work done.. This also passes HTML validation...

Lets assume that the button and form are one below another.. Then you can give the button a data attribute called button-1 and the select-1 for the corresponding select..

The HTML will look something like this..

<button class="checkIn" data-param="button-1">Check In</button>

<form method='post' class='myForm' action=''>
  <select name='locationSelect' class='locationSelect' data-param="location-1">
     <option value='1'>Exam Room 1</option>
     <option value='2'>Exam Room 2</option>
     <option value='3'>Exam Room 3</option>
     <option value='4'>Exam Room 4</option>
     <option value='CheckOut'>Check Out</option>
  </select>
</form>
<div class="finished" >
    Checked Out
</div>

<button class="checkIn" data-param="location-2">Check In</button>

<form method='post' class='myForm' action=''>
  <select name='locationSelect' class='locationSelect' data-param="location-2">
     <option value='1'>Exam Room 1</option>
     <option value='2'>Exam Room 2</option>
     <option value='3'>Exam Room 3</option>
     <option value='4'>Exam Room 4</option>
     <option value='CheckOut'>Check Out</option>
  </select>
</form>
<div class="finished" >
    Checked Out
</div>
.....

Javascript

$(document).ready(function() {
    $('.locationSelect').hide();  // Hide all Selects on screen
    $('.finished').hide();        // Hide all checked Out divs on screen

    $('.checkIn').click(function() {
        var $e = $(this);
        var data = $e.data("param").split('-')[1] ;
        // gets the id  of button  (1 for the first button)
        // You can map this to the corresponding button in database...
        $.ajax({
            type: "POST",
            url: "changeloc.php",
            // Data used to set the values in Database
            data: { "checkIn" : $(this).val(), "buttonid" : data},
            success: function() {
                // Hide the current Button clicked
                $e.hide();
                // Get the immediate form for the button
                // find the select inside it and show...
                $e.nextAll('form').first().find('.location').show();
            }
        });
    });

    $('.locationSelect').change(function() {
        $e = $(this);
        var data = $e.data("param").split('-')[1] ;
        // gets the id  of select (1 for the first select)
        // You can map this to the corresponding select in database...
        $.ajax({
            type: "POST",
            url: "changeloc.php",
            data: { "locationSelect" : $(this).val(), "selectid" : data},
            success: function() {
                // Do something here
            }
        });
    });
    $('.locationSelect option[value="CheckOut"]').click(function() {
        var $e = $(this);
        var data = $e.closest('select').data("param").split('-')[1] ;
        // gets the id  of select (1 for the first select)
        // You can map this to the corresponding select in database...
        // from which checkout was processed
        $.ajax({
            type: "POST",
            url: "changeloc.php",
            data: { "checkOut" : $(this).val(), "selectid" : data},
            success: function() {
                // Get the immediate form for the option
                // find the first finished div sibling of form
                // and then show it..
                $e.closest('form').nextAll('.finished').first().show();
                // Hide the current select in which the option was selected
                $e.closest('.locationSelect').hide();
                alert('done');
            },
            error: function(request) {
                alert(request.responseText);
            }
        });
    });
});​

I have written most of the logic as comments in the code..

share|improve this answer
    
thanks for the reply. How would this look like on the html side? –  Muhambi Oct 27 '12 at 22:54
    
What do you mean by HTML side... –  Sushanth -- Oct 31 '12 at 3:35
    
@Jake... Check the edited code !! –  Sushanth -- Oct 31 '12 at 4:00
    
@Sushanth...This answer is one of the best I've ever received on SO. Thanks so much! –  Muhambi Nov 3 '12 at 22:43
    
@Jake .. Glad to have helped.. :) –  Sushanth -- Nov 3 '12 at 23:43

So from my understanding of what your asking here, you have multiple instances of that HTML for different exam rooms? If this is the case, give either the button or the parent wrapper the id you want that somehow associates it to the row in the database you're trying to update. You don't need a hidden field, just give the button a data attribute with the id key you need. For the this example lets call it group_1.

So wrap the group in your HTML:

<div class='group' id='group_1'>
    <button class="checkIn">Check In</button>

    <form method='post' class='myForm' action=''>
      <select name='locationSelect' class='locationSelect'>
         <option value='1'>Exam Room 1</option>
         <option value='2'>Exam Room 2</option>
         <option value='3'>Exam Room 3</option>
         <option value='4'>Exam Room 4</option>
         <option value='CheckOut'>Check Out</option>
      </select>
    </form>
</div>

On the button click, grab the parent wrappers ID:

$('.checkIn').click(function(){
    var id = $(this).parent('.group').attr('id');
    $.ajax({
    type: "POST",
    url: "changeloc.php",
    data: "checkIn="+$(this).val()+"&group="+id,
    success: function(){
      $('.checkIn').css("display","none");
      $('.locationSelect').show();

    }
    });
});

Then, on the server side, update your DB with some sort of logic that determines which group you're updating using the second data value you sent in your AJAX.

share|improve this answer
    
Keep in mind that parent only goes up one level in the DOM tree, to go more levels, like if your looking for the id again from events happening in the form, use 'parents()' instead. –  Jacob Oct 29 '12 at 21:22
    
looks like a fantastic answer. Will try and get back to you! –  Muhambi Oct 29 '12 at 23:45
    
Passing data around is also really easy using 'data' attributes. Say you passed it with 'data-group=1'. You could then grab that '1' value by using ".attr('data-group')" –  Jacob Oct 30 '12 at 5:07

I would write it as:

post_data = $(this).val();

$.ajax({
    type: "POST",
    url: "changeloc.php",
    data: "checkIn=" + post_data,
    success: function(){
      $('.checkIn').css("display","none");
      $('.locationSelect').show();
    }
});
share|improve this answer

I'm working constantly with dynamic forms and I HIGHLY recommend you take advantage of the data attributes for HTML elements.

Sample HTML generated from a loop in your PHP:

<button class="checkIn" data-group-id='{$group->id}'>Check In</button>

<select name='locationSelect' data-group-id='{$group->id}' class='locationSelect'>
   <option value='1'>Exam Room 1</option>
   <option value='2'>Exam Room 2</option>
   <option value='3'>Exam Room 3</option>
   <option value='4'>Exam Room 4</option>
   <option value='CheckOut'>Check Out</option>
</select>

Javascript:

<script type="text/javascript">
$(function() {    
    $('.locationSelect').hide();
    $('.finished').hide();
});

$('.checkIn').click(function(){
    var group_id = $(this).data('group-id'),

    $.post('changeloc.php', {checkIn: group_id}, function(){
        $(this).hide();
        $('.locationSelect[data-group-id="' + group_id + '"').show();
    }
});

$('.locationSelect').change(function(){
    $.post('changeloc.php', {locationSelect: $(this).val()}, function(){
        // Do something here
    }
});

$('.locationSelect').change(function(){
    if ($(this).val() == 'CheckOut') {
        var group_id = $(this).data('group-id');

        $.post('changeloc.php', {checkOut: group_id}, function(data){
            // If you're getting unexpected behavior do console.log(data);
            $('.locationSelect[data-group-id="' + group_id + '"').hide();
            $('.finished').show();
            alert('done');
        }
    }
});
</script>

Hope this helps! I have a feeling your writing raw PHP, if so I recommend you check out some OOP frameworks. (Personal fave: laravel)

share|improve this answer

Why not simply giving each set of form-elements an array name?

<button name="btn_checkin[1]" class="checkIn">Check In</button>

<form method='post' name="myForm[1]" class='myForm' action=''>
<select name='locationSelect[1]' class='locationSelect'>
    <option value='1'>Exam Room 1</option>
     <option value='2'>Exam Room 2</option>
     <option value='3'>Exam Room 3</option>
     <option value='4'>Exam Room 4</option>
     <option value='CheckOut'>Check Out</option>
</select>
</form>

Serverside you will then have an array, eg:

$valueOfLocationSelect1 = $_POST['locationSelect'][1];

Perhapes that helps

share|improve this answer

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