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I have a jquery script which replaces 1 div with another and replaces 1 link with another when it is selected:

$('.child2, a[href="#1"]').hide()

$('#replacepagelinks a').click(function(){
     $(this).hide().siblings().show()
     var w = this.hash.replace('#', '');
     $('#parent div.child'+w).show().siblings().hide()
})

Here is my html:

<div id="parent">
   <div class="child1">Child 1 Contents</div>
   <div class="child2">Child 2 Contents</div>
</div>
<div id="replacepagelinks">
     <a href="#1">Replace Child 1 with Child 2</a>
     <a href="#2">Replace Child 2 with Child 1</a>
</div>

Please check out this jsfiddle http://jsfiddle.net/KaqZ5/ for a working example.

This works great, however i need it to work with up to 5 divs like so:

  1. In child1 i would like only <a href="#1">Replace Child 1 with Child 2</a>

  2. In child2 i would like <a href="#2">Replace Child 2 with Child 1</a> and <a href="#3">Replace Child 2 with Child 3</a>

  3. In child3 i would like <a href="#3">Replace Child 3 with Child 2</a> and <a href="#4">Replace Child 3 with Child 4</a>

  4. In child4 i would like <a href="#4">Replace Child 4 with Child 3</a> and <a href="#5">Replace Child 4 with Child 5</a>.

  5. In child5 i would like only <a href="#5">Replace Child 5 with Child 4</a>

So each page has a 'next' and 'back' link except for the first page which only has a 'next' link and the last page which only has a 'back' link and i need this to support 2 child div's, 3 child div's and 4 child div's as well.

My experience with jquery is almost nil so if somebody can please update my jsfiddle i would be very grateful.

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closed as not a real question by undefined, Andrew Whitaker, Lucifer, casperOne Oct 24 '12 at 20:54

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
I'm having a hard time interpreting your intent from the question. It sounds like the user experience that you want is like a navigation, where you can "page" through divs of content, displaying each one in sequence in response to clicking one of the anchor tags. Is that about right? If so, I think your example is unnecessarily complex, and you can optimize it quite a bit. Are you open to changing the structure of the HTML, or is that a fixed requirement? –  Palpatim Oct 18 '12 at 13:46
    
No my html is not fixed. I am free to change it around to suit a simpler alternative with new jquery? Thanks @Palpatim –  user1736794 Oct 18 '12 at 13:52
    
Looks like your comment did not include a link to how you currently have it, but why don't you update your jsfiddle with 5 elements as you've attempted to get it to work, and we'll can look at what you've tried. –  Palpatim Oct 18 '12 at 13:54
    
Here is how i currently have my html set up: jsfiddle.net/KaqZ5/4 Thanks heaps. @Palpatim –  user1736794 Oct 18 '12 at 14:02
    
In addition to your demo, post your code within your question. This needs to remain useful after the demo link goes dead. –  Sparky Oct 18 '12 at 14:59
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2 Answers 2

up vote 1 down vote accepted

See the updated fiddle at http://jsfiddle.net/Palpatim/KaqZ5/7/

Revised HTML:

<div class="menu">
    <div class="menu_item">
        <div class="parent">
            <div class="child1">Child 1 Contents</div>
            <div class="child2">Child 2 Contents</div>
            <div class="child3">Child 3 Contents</div>
            <div class="child4">Child 4 Contents</div>
            <div class="child5">Child 5 Contents</div>
        </div>
        <div class="nav">
            <a class="prev" href="#">Back</a>
            <a class="next" href="#">Next</a>
        </div>
    </div>

    <div class="menu_item">
        <div class="parent">
            <div class="child1">Child 1 Contents</div>
            <div class="child2">Child 2 Contents</div>
            <div class="child3">Child 3 Contents</div>
        </div>
        <div class="nav">
            <a class="prev" href="#">Back</a>
            <a class="next" href="#">Next</a>
        </div>
    </div>
</div>

New CSS

/* Initially hide all menu items */
.parent div {
    display: none;
}

/* Show active item */
.parent div.active {
    display: block;
}

/* If a nav link is disabled, color it grey and set the cursor to an arrow */
a[disabled="disabled"] {
    color: #999;
    cursor: default;
}

Revised JavaScript

// Set the initial menu state: Each 'prev' link is disabled and the first menu item 
// for each menu block is active
$('a.prev').attr('disabled', 'disabled');
$('.parent div:first-child').addClass('active');

$('a.next').click(function() {
    // Find the parent menu container 
    // - parent of (this) is div.nav
    //   - parent of div.nav is div.menu_item
    var menu = $(this).parent().parent();

    // Find the currently active menu item
    var active = $('.active', menu);

    // Find the next menu item in the list
    var nextItem = active.next();

    // If there is a next menu item, make it active
    if (nextItem.length) {
        // Make current item inactive
        active.removeClass('active');
        // Make new item active
        nextItem.addClass('active');

        // If there's no item after the new item,
        // disable navigation
        if (!nextItem.next().length) {
            $('a.next', menu).attr('disabled', 'disabled');
        }

        // If we just clicked 'next', we can enable the 'prev' button
        if ($('a.prev', menu).attr('disabled') == 'disabled') {
            $('a.prev', menu).removeAttr('disabled');
        }
    }
});

// Pretty much same as above, with the directions reversed
$('a.prev').click(function() {
    var menu = $(this).parent().parent();
    var active = $('.active', menu);
    var prevItem = active.prev();
    if (prevItem.length) {
        active.removeClass('active');
        prevItem.addClass('active');
        if (!prevItem.prev().length) {
            $('a.prev', menu).attr('disabled', 'disabled');
        }
        if ($('a.next', menu).attr('disabled') == 'disabled') {
            $('a.next', menu).removeAttr('disabled');
        }
    }
});

Here are some important changes I made from your original:

  • Use CSS to hide menu items and re-display them using an .active class. That makes the markup cleaner, and allows you to style
  • Use CSS to visually disable the navigation links, rather than suppressing them altogether. You can of course simply hide them, but if it's truly a user navigation, then you want them to be able to see that the link is simply not applicable, rather than removing it from their view altogether.
  • Restructured the navigation to put "Back" before "Next" visually. If you truly want to remove it, you can simply change the CSS definition of the disabled anchors.
  • Changed your links to have classes instead of

Some other optimizations you should consider:

  • Refactor the guts of the navigation code into a standalone function. It's nearly the same whether you're going forward or backward, so consider making the function more abstract by passing in the parent menu element and a desired direction.
  • Use a jQuery pagination plugin, like http://www.xarg.org/2011/09/jquery-pagination-revised/ These have the benefit of greater functionality, and in the case of actively developed plugins, they're likely to be better tested than you'll be able to do on your own.
  • You have two navigation blocks on your page, but each of them have id attributes which conflict. ids must be unique on a page. I changed those to classes instead.
  • Consider the case where a menu has one item, or no items. This code will choke on those situations

There are probably a host of other ways to do this, but this should get you started. For futher reading, I recommend perusing the jQuery documentation.

share|improve this answer
1  
In addition to your demo, post your code within your answer. This needs to remain useful after the demo link goes dead. –  Sparky Oct 18 '12 at 15:00
    
Ah, good point. Copied. –  Palpatim Oct 18 '12 at 15:40
    
Wow. You're a genius @Palpatim. Thank you so much for this, it works brilliantly. That must have taken a little while (maybe not? :) ) and i really appreciate it. Just one more thing before you go. How do i incorporate a return false into the nav links so that when they are selected the window stays at the same position on the page? Thanks again for your help. –  user1736794 Oct 19 '12 at 3:10
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here's what I came up with:

<html>
<head>
 <script src="https://ajax.googleapis.com/ajax/libs/jquery/1.7.2/jquery.min.js"></script> 
 <script type="text/javascript">
    function showPage(x){
        $("#parent div").hide();    //hide all pages        
        $('#parent div.child'+x).show();    //then show selected page           
    }
    function showLinks(x){              
        $('#replacepagelinks a').hide(); //hide all links               
        if(x>1)         
            $('#replacepagelinks a#'+(parseInt(x)-1)).show(); //if current page isn't the first one show back link

        $('#replacepagelinks a#'+(parseInt(x)+1)).show();  // show next link
    }
    $(document).ready(function(){                                   
        //$('#replacepagelinks span').on('click',function(e){       
        $(document).on('click', '#replacepagelinks a', function (e) {
            e.preventDefault();             
            var w = $(this).attr('id');
            showPage(w);
            showLinks(w);                       
        });     
    });
</script>
</head>
<body onload="showPage(1);showLinks(1);">
 <div id="parent">
  <div class="child1">Child 1 Contents</div>
  <div class="child2">Child 2 Contents</div>
  <div class="child3">Child 3 Contents</div>
  <div class="child4">Child 4 Contents</div>
</div>
<div id="replacepagelinks">
 <a href="#1" id="1">page 1</a>
 <a href="#2" id="2">page 2</a>
 <a href="#3" id="3">page 3</a>
 <a href="#4" id="4">page 4</a>  
</div>

</body>
</html>
share|improve this answer
    
Thanks heaps for suggestion on this. You're also a genius coder. :) Pia @Ruben Verschueren –  user1736794 Oct 19 '12 at 3:13
    
You're welcome. –  Ruben Verschueren May 24 '13 at 15:00
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