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After creating three dependable drop down menus using jquery,ajax and php. After my dropdown menus have already been populated, for example when i select a value in the first drop down menu, the second drop down menu is created based on the first selected value and so on with the third drop down menu when i select a value in the second drop down menu. Now how to capture the selected values again altogether to perform further queries on the database.

  • set the same class name for all select box and run each function to get all the selected values like this $('.qm_SELECT_sel').change(function(){ $('.qm_SELECT_sel option:selected').each(function(){ alert($(this).val()); }); }); – JYoThI Feb 16 '17 at 7:24
  • 1
    Please provide a verifiable example. – Crowes Feb 16 '17 at 7:26
  • But how to capture these selected values in php again to perform further queries on the database. – Nivin Sunathree 6 mins ago because my drop down menus are already populated using data from the database. now i want to capture the selected values altogether to perform further queries on the database – Nivin Sunathree 6 secs ago edit – Nivin Sunathree Feb 16 '17 at 7:45
  • show your some of code – JYoThI Feb 16 '17 at 7:52
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Set the same class name for all select box and every change in select box run the function and run each function which all selected to get all the selected values like this

               
       dropdown1 ='';
        dropdown2 ='';
         dropdown3 ='';

      $('.qm_SELECT_sel').change(function(){
   
      // $all_drop_down_values =[];


  $('.qm_SELECT_sel option:selected').each(function(){ 
    
    if($(this).val()!='' &&  $(this).attr('name')=='dropdown1')
      {
         dropdown1 =$(this).val();
 
      }
      if($(this).val()!='' &&  $(this).attr('name')=='dropdown2')
      {
         dropdown2 =$(this).val();
 
      }
       if($(this).val()!='' &&  $(this).attr('name')=='dropdown3')
      {
         dropdown3 =$(this).val();
 
      }
   }); 
    
     if(dropdown1!='' && dropdown3 !='' && dropdown3 !='')
      {
           $.ajax({ 
              url: 'your_destination_page.php',
             type:'POST',
             data:{dropdown1:dropdown1,dropdown2:dropdown2,dropdown3:dropdown3},
            success:function(data)
            {
                 alert("hi");
             }
            
            
           });
      }
   
});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

<select name="dropdown1"  class="qm_SELECT_sel">
      <option value=""  >select 1 </option>
       <option value="1" >1 </option>
       <option value="2" >2</option>
      </select>

    <select name="dropdown2" class="qm_SELECT_sel" >
      <option value="" >select 2 </option>
       <option value="1" >1 </option>
       <option value="2" >2</option>
      </select>

     <select name="dropdown3" class="qm_SELECT_sel" >
      <option value="" >select 2 </option>
       <option value="1" >1 </option>
       <option value="2" >2</option>
      </select>

  • But how to capture these selected values in php again to perform further queries on the database. – Nivin Sunathree Feb 16 '17 at 7:36
  • because my drop down menus are already populated using data from the database. now i want to capture the selected values altogether to perform further queries on the database – Nivin Sunathree Feb 16 '17 at 7:42
  • you just submit the form it will post the data with respective name you will get the values like $_POST['select_box_name1']; – JYoThI Feb 16 '17 at 7:51
  • No i cant use submit button because it will reload the page, and i will lose all the selected values. I have to keep them in the variables till the end. After my drop down menus have been populated, i want to use the selected values to generate my tables from the database. Do you have an email add for me to send you the code. thanks – Nivin Sunathree Feb 16 '17 at 7:55
  • \Can you help me with the ajax please? – Nivin Sunathree Feb 16 '17 at 9:37

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