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I am trying to use div's to display content on my page. This is controlled with an onchange element in a select menu. It works perfectly but the problem is I want one div to close when another one is opened. The div's open fine but it does not close the others. An example code is below. What am I doing wrong?

JavaScript:

if(document.getElementById('catgry').value == '01'){
    document.getElementById('post04').style.visibility = "visible";
    document.getElementById('post04').style.display = "";

    document.getElementById('post07').style.visibility = "hidden";
    document.getElementById('post07').style.display = "none";
}else if(document.getElementById('catgry').value == '02'){
    document.getElementById('post02').style.visibility = "visible";
    document.getElementById('post02').style.display = "";

    document.getElementById('post04').style.visibility = "hidden";
    document.getElementById('post04').style.display = "none";

    document.getElementById('post07').style.visibility = "hidden";
    document.getElementById('post07').style.display = "none";
}

HTML:

<div id="post04" style="visibility:hidden; display:none;">
  <table  class="posttb"><tr>
    <td width="30%">Author</td>
    <td><input type="text" name="author" size="30" class="postfd"></td>
  </tr>
 </table>

 </div>
share|improve this question
    
You could simplify the issue by putting the display rules in CSS and just adding and removing classes to your divs. –  keithjgrant Jan 9 '11 at 1:32
    
@sammville Live demo: jsfiddle.net/9Tx7g –  Šime Vidas Jan 9 '11 at 1:33
4  
No you do not need to use jQuery. But your current approach is pretty inefficient. It would be easier to know the best approach if we had a more complete picture of your HTML. Are the post0x elements siblings? If so, does their parent container have an ID? –  user113716 Jan 9 '11 at 1:35
1  
+1 to "patrick dw"... why does everything should always be done with jQuery? jQuery is not god in the javascript world... –  WarrenFaith Jan 9 '11 at 2:04
    
@WarrenFaith I see that you're trying to question jQuery's role as the god in the JavaScript world. You should totally drop that and use jQuery. –  Yi Jiang Jan 9 '11 at 2:08

4 Answers 4

up vote 1 down vote accepted

Hard to say without seeing your markup, but it could be as simple as this:

Example: http://jsfiddle.net/jtfke/

var posts = document.getElementById('posts').children;

document.getElementById('catgry').onchange = function() {
    for( var i = 0, len = posts.length; i < len; i++ ) {
        posts[ i ].style.display = (i == this.selectedIndex) ? 'block' : '';
    }
};

example html

<select id='catgry'>
    <option value='post01'>post 1</option>
    <option value='post02'>post 2</option>
    <option value='post03'>post 3</option>
    <option value='post04'>post 4</option>
</select>
<div id='posts'>
    <div>post 1 content</div>
    <div>post 2 content</div>
    <div>post 3 content</div>
    <div>post 4 content</div>
</div>
share|improve this answer
1  
Pure JS is definitely better for troubleshooting code. jQuery is just compounding the problem by adding 50+ KB of unneeded code. –  user1385191 Jan 9 '11 at 2:06

Consider using jQuery and the jQuery accordion http://jqueryui.com/demos/accordion/

share|improve this answer
    
Is there no way to solve it without using jquery –  sammville Jan 9 '11 at 1:27
    
@sammville Well, what JavaScript library are you using then? –  Šime Vidas Jan 9 '11 at 1:34
    
I am not using any library for it. The javascript code i wrote for it is above –  sammville Jan 9 '11 at 1:35
    
@sammville is there a reason you don't want to use a javascript library? –  Vadim Jan 9 '11 at 1:37
1  
why does everything should always be done with jQuery? jQuery is not god in the javascript world... –  WarrenFaith Jan 9 '11 at 2:04

You can do it with pure Javascript and some looping.

<form method="post" action="#">
    <select id="selectMenu">
        <option id="option1" value="option 1">option 1</option>
        <option id="option2" value="option 2">option 2</option>
        <option id="option3" value="option 3">option 3</option>
    </select>
</form>

<div id="div1" class="postDiv">Div 1</div>
<div id="div2" class="postDiv">Div 2</div>
<div id="div3" class="postDiv">Div 3</div>

<script type="text/javascript">
init();


function init()
{
    addListeners();  
}

function addListeners()
{
    document.getElementById("selectMenu").onchange = selectChange;
}

function selectChange(evt)
{
    for(var i=0;i<evt.currentTarget.length;i++)
    {
        if(i == evt.currentTarget.selectedIndex)
        {
          adjustDivs(i+1, evt.currentTarget.options);
        }  
    }
}

function adjustDivs(optionId, options)
{
    document.getElementById("div" + optionId).style.display = "block";
    for(var i=0;i<options.length;i++)
    {
        if(i != (optionId-1))
        {
            document.getElementById("div" + (i+1)).style.display = "none";
        }
    }
}
</script>

http://jsfiddle.net/hGxfS/

share|improve this answer
    
+1 for a non jquery solution... –  WarrenFaith Jan 9 '11 at 2:05

Install jquery;

Use this code as html markup for select box . remember to specify id=visibiitySelector and providean attribute "_showelement" for each option value, that matches with the id of the div you want to display if option is selected

<select id="visibilitySelector">
    <option value="whatever" _showelement="post01">whatever</option>
    <option value="whatever" _showelement="post02">whatever</option>
</select>

Copy this function into the javascripts of the page

$(document).ready(function(){
    $('#visibilitySelector').change(function(){
        var showelement = $('#visibilitySelector option:selected').attr('_showelement');
        $('div.showhide').not('#' + showelement ).hide();
        $('#' + showelement ).show();
    });
});

Code the divs as below, remembering to provide class "showhide"

<div id="post01" class="showhide">
</div>
<div id="post01" class="showhide">
</div>
<div id="post01" class="showhide">
</div>
share|improve this answer
    
Simpler: jsfiddle.net/9Tx7g –  Šime Vidas Jan 9 '11 at 1:35

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