Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to show and hide a few form fields dependent on the value of one of my select fields. I am looking to use arrays to hold what should be show and what should not be show for each select value, to save me from a massive switch statement, but cannot figure out how to do it.

I am using PHP and jQuery. Any help would be great.

share|improve this question

5 Answers 5

up vote 26 down vote accepted

Try something like this:

<select id="viewSelector">
   <option value="0">-- Select a View --</option>       
   <option value="view1">view1</option>
   <option value="view2">view2</option>
   <option value="view3">view3</option>
</select>

<div id="view1">
  <!-- content --> 
</div>
<div id="view2a">
  <!-- content --> 
</div>
<div id="view2b">
  <!-- content --> 
</div>
<div id="view3">
  <!-- content --> 
</div>

then in the jQuery:

$(document).ready(function() {
  $.viewMap = {
    '0' : $([]),
    'view1' : $('#view1'),
    'view2' : $('#view2a, #view2b'),
    'view3' : $('#view3')
  };

  $('#viewSelector').change(function() {
    // hide all
    $.each($.viewMap, function() { this.hide(); });
    // show current
    $.viewMap[$(this).val()].show();
  });
});
share|improve this answer
    
Sorry for the early post, finger slipped on the keyboard. Looks like I got a downvote for it. –  bendewey May 7 '09 at 15:20
    
Should this.hide(); be replaced with $(this).hide(); –  Jose Basilio May 7 '09 at 15:29
    
I tested this and it works. Just note, you may need to initially hide the views/show the default. –  bendewey May 7 '09 at 15:30
    
@Jose, not from my tests. this as already the wrapped set object. –  bendewey May 7 '09 at 15:30
2  
That works beautifully.. gotta love Jquerry, and those who produce examples like this –  Bingy Jul 23 '10 at 3:49

There are a few different ways you could do this. The simplest is to have a few separate fieldsets, each one containing a single group of fields. Then, in jQuery, dependent on the select-menu's value you can show/hide these fieldsets, e.g.

<fieldset id="f1">
    <input name="something1" />
    <input name="something2" />
    <input name="something3" />
</fieldset>
<fieldset id="f2">
    <input name="something4" />
    <input name="something5" />
    <input name="something6" />
</fieldset>
<select name="fieldset-choice">
    <option value="f1">Fieldset 1</option>
    <option value="f2">Fieldset 2</option>
</select>

<script type="text/javascript">
    jQuery('select[name=fieldset-choice]').change(function(){
        var fieldsetName = $(this).val();
        $('fieldset').hide().filter('#' + fieldsetName).show();
    });

    // We need to hide all fieldsets except the first:
    $('fieldset').hide().filter('#f1').show();
</script>

Note: For the above technique to be entirely unobtrusive you might want to dynamically build the select-menu with the names of all the different fieldsets.


Alternatively you can prefix each fields name with a meaningful prefix, and then hide/show according to that attribute:

<input name="group1-name1" />
<input name="group1-name2" />

<input name="group2-name3" />
<input name="group2-name4" />
<input name="group2-name5" />

<select name="field-choice">
    <option value="group1">Group 1</option>
    <option value="group2">Group 2</option>
</select>

<script type="text/javascript">
    jQuery('select[name=field-choice]').change(function(){
        var groupName = $(this).val();
        $('input').hide().filter('[name^=' + groupName + ']').show();
    });

    // We need to hide all fields except those of the first group:
    $('input').hide().filter('[name^=group1]').show();
</script>
share|improve this answer

My 2 cents : I needed to show/hide fields depending on many previous select value (not only one).

So I add a parent attribute to div fields like this :

<div id="view" parent="none">
<select class=selector id="view">
<option value="0"> -- Make a choice --</option>
<option value="s1">sub 1</option>
<option value="s2">sub 2</option>
<option value="s3">sub 3</option>
</select>
</div>

<!-- you need to define the parent value with the value of parent div id -->
<div id="s1" parent="view">
<!-- if you want to have a selector be sure it has the same id as the div -->
<select class=selector id="s1">
<option value="0">-- Make a choice --</option>
<option value="s1_sub1">sub 1 of s1</option>
<option value="s1_sub2">sub 2 of s2</option>
<option value="s1_sub3">sub 3 of s3</option>
</select>
</div>

<!-- Make the same thing for s2 and s3
Define div s2 here

Define div s3 here
-->

<!-- and finally if that's your final step you put what you want in the div -->
<div id="s1_sub1" parent="s1">
You are inside s1 sub1
</div>

Now the jquery code :

$(document).ready(function() {

 $('select[class=selector]').change(function() { 
    //next div to show
    var selectorActive = $(this).val();
    //div where you are 
    var parentValue = $(this).attr("id");

   //show active div and hide others
    $('div').hide().filter('#' + selectorActive).show();

    while (parentValue!="none") {
      //then show parents of active div
      $('div[id=' + parentValue + ']').show();
      //return the parent of div until "none"
      parentValue = $('div[id=' + parentValue + ']').attr("parent");
     }

 });

// print only the first div at start
 $('div').hide().filter("#view").show();

});

That's works like a charm and you don't need to define maps

I hope this will help

share|improve this answer

To fire up the code on load, just add .change(). As shown below...

$(document).ready(function() {
  $.viewMap = {
    '0' : $([]),
    'view1' : $('#view1'),
    'view2' : $('#view2a, #view2b'),
    'view3' : $('#view3')
  };

  $('#viewSelector').change(function() {
    // hide all
    $.each($.viewMap, function() { this.hide(); });
    // show current
    $.viewMap[$(this).val()].show();
  }).change();
});
share|improve this answer

@Martin Try this

`$('#viewSelector').trigger('change');`
share|improve this answer

protected by Community Jun 19 '11 at 16:48

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.