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 have a series of input buttons. Let's say two for simplicity. Each button has its own associated content in a separate div. All the content is in invisible divs ( display: none ) to begin.

If you click a button, its associated content is displayed. If you click it again, the content disappears. This is done with toggle(). The problem is that if you click one button and then click the other button, both divs are now visible.

So my main question is the best way to solve this problem. The solution I tried doesn't work, so if you have an entirely new approach, please let me know, or if you can refine my approach to make it work, that'd be great too. Okay, on to how I tried to solve this.

To solve this, I used siblings() to make sure all content divs are invisible before a new content divs appears.

So now, if I click 1 it appears. If I click 2, 1 disappears and 2 appears..... but now, if I click 1 again nothing happens (because it's my second click on number 1, and toggle() keeps track of each button separately)

How can I implement this type of content toggling without running into these issues?

(On the real page there are an unknown number of button / div combos and the user can click on them in any order)

Here's an example of the problem code (click 1, 2, then 1)

Thanks!


Looks like the answer may be something using .trigger('click') and :visible... just having trouble making it work.....

share|improve this question

2 Answers 2

up vote 2 down vote accepted

try this: http://jsfiddle.net/TennG/

share|improve this answer
    
Very nice. I didn't think about chaining them together and using toggle().siblings() –  Peter Ajtai Aug 4 '10 at 7:51
    
Cunning - didn't know about the zero parameter version of toggle. As usual, there is a simple solution staring you in the face. :-) –  belugabob Aug 4 '10 at 7:54
1  
If you use toggle() on a div you also don't have to track the state because it always will do the right thing: Open when closed and the other way round. –  Tim Aug 4 '10 at 7:56

To achieve your desired results, keep the state separate for each div (by using classes to represent hidden and visible, and don't use the toggle function.

$("input").click(
    function(event) {
        var theDiv = $("#d" + $(event.target).attr('id'));
        var wasHidden = theDiv.hasClass("hiddenDiv");
        $(".visibleDiv").removeClass("visibleDiv").addClass("hiddenDiv");
        if(wasHidden){
            theDiv.removeClass("hiddenDiv").addClass("visibleDiv");
        }
    }
)

div div.hiddenDiv {
    display: none;
}
div div.visibleDiv {
    display: inline:
}

<input id="i1" type="button" value="one" />
<input id="i2" type="button" value="two" />
<div>
    <div id="di1" class="hiddenDiv ">This is the first one.</div>
    <div id="di2" class="hiddenDiv ">And here we have number two.</div>
</div>

The technique can be summed up as follows

  1. Start off with all divs hidden
  2. When a click occurs, look at the relevant div, to see if it was hidden
  3. Remove the visible class from all divs that have it, and replace with the hidden class
  4. If the div was previously hidden, remoe the hidden class and replace with the visible class.
share|improve this answer
    
This works. The problem is that there are multiple sets of divs. And each set can have one div showing, so I'd have to create a new class for each set, which is somewhat of a pain, since I don't know how many sets there will be ahead of time. –  Peter Ajtai Aug 4 '10 at 8:00
1  
In which case, the solution posted by @Tim is a better option. –  belugabob Aug 4 '10 at 15:42

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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