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I know this is simple, and I need to search in Google. I tried my best and I could not find a better solution. I have a form field, which takes some input and a select field, which has some values. It also has "Other" value. What i want is, If the user selects the Other option, I want to display a text field to specify that other. It should be hidden first and should pop up when user selects "Other". When user selects other options I want to hide it. How can I perform that using JQuery?

This is my JSP code

<label for="db">Choose type</label>
<select name="dbType" id=dbType">
   <option>Choose Database Type</option>
   <option value="oracle">Oracle</option>
   <option value="mssql">MS SQL</option>
   <option value="mysql">MySQL</option>
   <option value="other">Other</option>
</select>

<div id="otherType" style="display:none;">
<label for="specify">Specify</label>
<input type="text" name="specify" placeholder="Specify Databse Type"/>
</div>

Now I want to show the DIV tag*(id="otherType")* only when the user selects Other. I want to try JQuery. This is the code I tried

<script type="text/javascript"
    src="jquery-ui-1.10.0/tests/jquery-1.9.0.js"></script>
<script src="jquery-ui-1.10.0/ui/jquery-ui.js"></script>
    <script>


$('#dbType').change(function(){

   selection = $('this').value();
   switch(selection)
   {
       case 'other':
           $('#otherType').show();
           break;
       case 'default':
           $('#otherType').hide();
           break;
   }

});

But I am not able to get this. What should I do? Thanks

share|improve this question

4 Answers 4

up vote 5 down vote accepted

You have a few issues with your code:

  1. you are missing an open quote on the id of the select element, so: <select name="dbType" id=dbType">

should be <select name="dbType" id="dbType">

  1. $('this') should be $(this): there is no need for the quotes inside the paranthesis.

  2. use .val() instead of .value() when you want to retrieve the value of an option

  3. when u initialize "selection" do it with a var in front of it, unless you already have done it at the beggining of the function

try this:

   $('#dbType').on('change',function(){
        if( $(this).val()==="other"){
        $("#otherType").show()
        }
        else{
        $("#otherType").hide()
        }
    });

http://jsfiddle.net/ks6cv/

UPDATE for use with switch:

$('#dbType').on('change',function(){
     var selection = $(this).val();
    switch(selection){
    case "other":
    $("#otherType").show()
   break;
    default:
    $("#otherType").hide()
    }
});

UPDATE with links for jQuery and jQuery-UI:

<script src="//ajax.googleapis.com/ajax/libs/jquery/1.9.1/jquery.min.js" ></script>
<script src="//ajax.googleapis.com/ajax/libs/jqueryui/1.10.2/jquery-ui.min.js"></script>‌​
share|improve this answer
    
I am still not able to get it. Is this because, the JQuery I am using is wrong? –  iProgrammer Mar 22 '13 at 9:52
    
Still I am not able to get. I am asking, whether this problem is with this? <script type="text/javascript" src="jquery-ui-1.10.0/tests/jquery-1.9.0.js"></script> <script src="jquery-ui-1.10.0/ui/jquery-ui.js"></script> <script> Can you give the online JQuery link? I need to check whether it works. Thanks –  iProgrammer Mar 22 '13 at 10:00
    
Thanks. I have the JQuery downloaded and I have provided the right path. But i dont know why its not working. Let me check with this. –  iProgrammer Mar 22 '13 at 10:06
    
edited the post some more, hope it is clearer now :) –  DVM Mar 22 '13 at 10:27
    
No. Its not working still. I dont know why. Anyway thanks. –  iProgrammer Mar 22 '13 at 10:28

You have to use val() instead of value() and you have missed starting quote id=dbType" should be id="dbType"

Live Demo

Change

selection = $('this').value();

To

selection = $(this).val();

or

selection = this.value;
share|improve this answer
$('#dbType').change(function(){

   var selection = $(this).val();
   if(selection == 'other')
   {
      $('#otherType').show();
   }
   else
   {
      $('#otherType').hide();
   } 

});
share|improve this answer

I got its answer. Here is my code

<label for="db">Choose type</label>
<select name="dbType" id=dbType">
   <option>Choose Database Type</option>
   <option value="oracle">Oracle</option>
   <option value="mssql">MS SQL</option>
   <option value="mysql">MySQL</option>
   <option value="other">Other</option>
</select>

<div id="other" class="selectDBType" style="display:none;">
<label for="specify">Specify</label>
<input type="text" name="specify" placeholder="Specify Databse Type"/>
</div>

And my script is

$(function() {

        $('#dbType').change(function() {
            $('.selectDBType').slideUp("slow");
            $('#' + $(this).val()).slideDown("slow");
        });
    });
share|improve this answer

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