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I have one page site structure. This is my menu:

I have a menu structure:

 <ul id="creamenu" class="menuHolder">
                        <li><a id="news-1-menu" href="#/creative-events">news 1</a></li>
                        <li><a id="news-2-menu" href="#/creative-ajans">news 2</a></li>
                        <li><a id="news-3-menu" href="#/incentive-travel">news 3</a></li>
                    </ul>
                    <ul id="mainmenu" class="menuHolder">
                        <li><a id="about1-menu" href="#/hakkimizda">about 1</a></li>
                        <li><a id="about2-menu" href="#/haberler">about 2</a></li>
                        <li><a id="about3-menu" href="#/galeri">about 3</a></li>
                        <li><a id="about4-menu" href="#/referanslar">about 4</a></li>
                        <li><a id="about5-menu" href="#/iletisim">about 5</a></li>
    </ul>

And this is content structure:

<div id='news-1'>
    <!-- content -->
    <!-- content -->

<div id='news-2'>
    <!-- content -->
    <!-- content -->

When i click a menu item, go to page via Parallax effect (I'm using premium plugin for this) But my site is slowly... Because, i want when i click a menu item, load content via ajax. Is it possible? How can i do it?

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closed as not a real question by Juhana, bipen, ithcy, Patricia, Igor Jan 22 '13 at 15:42

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.

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4 Answers 4

up vote 0 down vote accepted

if the content is in other file, then you can do with $.load(url).

$('#news-1').load('url of the content to load');

if you storing the content in same page, then you can make it visible when menu clicked.

$('#news-1').on('click',function(){
$('#news-1').appendTo($('#creative-events').html()); // this is the prototype, need to make a generic code
})
share|improve this answer
    
no all contents in same page. –  Dokuz Tane On Jan 22 '13 at 11:59
    
''if you storing the content in same page, then you can make it visible when menu clicked.'' but how? –  Dokuz Tane On Jan 22 '13 at 12:01
    
I don't know why but this code don't working Ravi. Other solution idea? –  Dokuz Tane On Jan 22 '13 at 12:10
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Try this :-

$('ul#creamenu li a').click(function () {
$.ajax({
                type: "POST",
                url: "Your Url",
                data: "{'data':'send data here if you want'}",
                dataType: "json",
                success: function (data) {
                    alert(JSON.Stringify(data));
                },
                error: function (result) {
                    alert("Error");
                }
            });

});
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All contents in same page. So, don't work this. –  Dokuz Tane On Jan 22 '13 at 12:01
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Try this

 $('#news-1').load('ajax/page1.html');
 $('#news-2').load('ajax/page2.html');
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All contents in same page. So, don't work this. –  Dokuz Tane On Jan 22 '13 at 12:01
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I think u are looking for a solution like tabbed panels. Try hiding and showing divs by using jQuery.. For ex. u have 3 menus as news-1,news-2,news-3 and make their seperate content divs ex:div1,div2,div3 like follows...

<div id="div1" style="display:none">
some content....
</div>
<div id="div2" style="display:none">
some content....
</div>
<div id="div3" style="display:none">
some content....
</div>

at onclick event of the menu for ex. news-1 then show div1 and let all others hidden as follows..

$("#div2").hide();
$("#div3").hide();
$("#div1").show();

then change the code for other menus as well..

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I don't understand, please help me. –  Dokuz Tane On Jan 22 '13 at 14:59
    
you said all the contents which are related to all menus are in same page. Is that right? –  Ram Jan 22 '13 at 17:29
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