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I have four jquery sliders in a page with these scripts:

$(document).ready(function(){
  $("#information").click(function(){
    $("#information_show").slideToggle("medium");
  });
});

$(document).ready(function(){
  $("#menu").click(function(){
    $("#menu_slide").slideToggle("medium");
  });
});

$(document).ready(function(){
  $("#books").click(function(){
    $("#books_toggle").slideToggle("medium");
  });
});

$(document).ready(function(){
  $("#content").click(function(){
    $("#content_div").slideToggle("medium");
  });
});

So for example when I click on the div #information the #information_toggle is visible. I wounder if there is any way to make the sliders only show one at once.

Example: When click on #books, the #books_toogle show. Now when click on #menu the #menu_slide shows, at the same time the #menu_slide shows #books_toggle toogle/close automatic. So only one hidden div will show at once.

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2 Answers 2

up vote 0 down vote accepted

It would help to see your html, but it is easy to do this in an ugly way:

$("#information").click(function(){
    $("#information_show").slideToggle();
    $("menu_slide, books_toggle, content_div").slideUp();
});

However, a much prettier way to do this would be with classes:

$(".slider").on('click', function () {
    var $assocDiv = $(".slider_show").eq($(this).index));
    $assocDiv.slideToggle();
    $(".slider_show").not($assocDiv).slideUp();      
});

Regardless, you only need one $(document).ready, which can just be written as $(, and 'medium' is already the default animation speed.

share|improve this answer
    
I dont really understand the second example, do you mean to give all the divs that toggle the class .slider_show and all the buttons to click to make the content toggle .slider? Is that correct? –  user1905754 Feb 3 '13 at 21:22
    
@Wobot exactly correct –  Explosion Pills Feb 3 '13 at 21:25
    
Ok thats maybe better becuse less code. I have a little problem with the code, I do think your code is correct but the earlier sliders was executed/initialized becuse they was loaded into the page, they look like this "$(document).on("reload" ,function() {" in the beginning of the script instead of "$(document).ready(function(){", do you maybe know how to initialize this script like the others? Thanks for your time. –  user1905754 Feb 3 '13 at 21:35
    
I don't understand what you mean. Can you create an example on jsfiddle.net? –  Explosion Pills Feb 3 '13 at 21:37
    
In jsfiddle its impossible to load in content from external sites. I try to explain, the sliders gets loaded in to the page after page have finish loaded via a select/dropdown with this code "$containerDiv.load( "external_page.html #div_containing_the_sliders" , function(){$(document).trigger("ready reload");});" so when load in elements I use "$(document).on("ready reload" ,function() {" to execute the jquery elements (otherwise they should not run becuse page already finish loaded when content loads in). In code "$(".slider").on('click', function () {" I dont know what to change. –  user1905754 Feb 3 '13 at 21:43

Though it should be posted on CodeReview(imho), here's what you can do:

$(document).ready(function () {
    var last, last2;
    $("#information").click(function () {
        $("#information_show").slideToggle("medium");
        if (last != '#information_show' && last != last2) $(last).slideToggle("medium");
        last2 = last;
        last = '#information_show';
    });
    $("#menu").click(function () {
        $("#menu_slide").slideToggle("medium");
        if (last != '#menu_slide' && last != last2) $(last).slideToggle("medium");
        last2 = last;
        last = '#menu_slide';
    });
    $("#books").click(function () {
        $("#books_toggle").slideToggle("medium");
        if (last != '#books_toggle' && last != last2) $(last).slideToggle("medium");
        last2 = last;
        last = '#books_toggle';
    });
    $("#content").click(function () {
        $("#content_div").slideToggle("medium");
        if (last != '#content_div' && last != last2) $(last).slideToggle("medium");
        last2 = last;
        last = '#content_div';
    });
});
share|improve this answer
    
The problem with this code is that if toggle one div, then try to close that div by click on the same button again, the div will close then automatic open again. –  user1905754 Feb 3 '13 at 22:07
    
Do you maybe know how to fix that? The script works fine except that. –  user1905754 Feb 3 '13 at 22:59
    
@Wobot Check the edit and usage of if statement. –  hjpotter92 Feb 3 '13 at 23:04
    
@Wobot At this point of time, a jsfiddle would surely b welcome. –  hjpotter92 Feb 3 '13 at 23:14
    
jsfiddle.net/6MG5w Click at a headline, then click on same headline again, then click on another headline. –  user1905754 Feb 3 '13 at 23:29

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