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I have a ZF form with 2 select boxes. Both should fill from 2 DB tables. First select box will be filled when the form get rendered at first. (So this is done and working fine) Then I want to fill the second select box by taking the value of the first select box when a value is selected by the user and pass it to the select SQL to get the second set of data.

And I don't want the page to be refreshed. (So ajax/javascript/jquery)

I have following in my view (.phtml)

<script type="text/javascript">

$(document).ready(function(){
$('#make').change(function($e){
    $e.preventDefault();
     var href= "index/load";
     var data = 'make_id='+$('#make').val();
     $.ajax({ type: "POST",
           url: href,
          data: data,
          success: function(response){
            location.href = 'index/load';
         }
     });
});
});

</script>

but I cannot access the value passed from the ajax post using following in my controller action

$this->getRequest()->getParams('make_id');
share|improve this question
    
Yes it is ajax/javascript/jquery. But what have you tried so far ? –  Rikesh Feb 27 '13 at 11:27
    
I have edit my question, please have a look –  Thanu Feb 27 '13 at 11:33

2 Answers 2

The data part of an ajax request requires a JSON object like this {make_id: something}, so you will have to send parameters in this format:

$(document).ready(function(){
  $('#make').change(function($e){
  $e.preventDefault();
   var href= "index/load";
   var data = $('#make').val();
   $.ajax({ type: "POST",
     url: href,
     data: {make_id: data},
     success: function(response){
     location.href = 'index/load';
   }
 });

});

share|improve this answer
    
Unfortunately still its not working, its the same... –  Thanu Feb 27 '13 at 11:47
    
Did you saw that the var data has changed? Did you check if $('#make').val() is getting a real value? –  MurifoX Feb 27 '13 at 11:50
1  
Did you debug in firebug/developer tools if the ajax call is being made to the server? Did you check if the $e.preventDefault() is not getting in the way of making the ajax call? –  MurifoX Feb 27 '13 at 11:51
    
I didnt want the $e.preventDefault() so I removed it. But still the same. and Fierbug doesn't show the post request any more, it was there before :( –  Thanu Feb 27 '13 at 12:04
up vote 0 down vote accepted

Ok found a simple way of doing it, in my view phtml I have the following,

 <body>
 <?php
     $this->form->setAction($this->url());
     echo $this->form;

  ?>

   <script type="text/javascript">

   $(document).ready(function(){
       $('#select1').change(function(){
           $('#Myform').submit();
           return false;
       });
   });

   </script>
</body>

And in my controller action I have

public function viewAction()
{

        $form= new Application_Form_Myform();
        $selectbox1 = $form->getElement('select1');
        $selectbox1->setMultiOptions($this->populateselectbox1()); //This function fetch data from the db and make an array
        if ($this->getRequest()->getPost('select1')!=""){
            $selectbox2 = $form->getElement('select2');
            $selected = $this->getRequest()->getPost('select1');
            $select->setMultiOptions($this->populatselectbox2($selected)); //This function fetch data from the db and make an array
            $selectbox1->setValue($selected);
        }
        $this->view->form = $form;
    }
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