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Im in this scenario: http://jsfiddle.net/HXGrY/

I want to be able to click my with the id #add-cyan, and make the with the id #todo-cyan appear. And alike with all the other.

Can someone help me with this?

I want these

<img src="img/cyan.png" width="45px" class="hidden" id="todo-cyan"/>
<img src="img/magenta.png" width="45px" class="hidden" id="todo-magenta"/>
<img src="img/yellow.png" width="45px" class="hidden" id="todo-yellow"/>
<img src="img/black.png" width="45px" class="hidden" id="todo-black"/>

To show/slideDown when a img below them is clicked:

<img src="img/cyan.png" width="60px" height="60px" id="add-cyan"/>
<img src="img/magenta.png" width="60px" id="add-magenta"/>
<img src="img/yellow.png" width="60px" id="add-yellow"/>
<img src="img/black.png" width="60px"  id="add-black"/>
share|improve this question
    
    
Allright, i apologise. But i had no idea of the [id^="add-"] for one. I managed to make one button do it, but i easily saw it would be a large uneccersary code. –  Magnus Kristoffersen Dec 16 '12 at 13:22

2 Answers 2

$('[id^="add-"]').click(function(){
    $('#todo-' + this.id.replace('add-', '')).removeClass('hidden');
});

Ideally you should be using classes to group your add elements, so you don't have to pull the '[id^="add-"]' stunt.

To elaborate, I am selecting all elements with IDs starting with add-:

$('[id^="add-"]')

then adding a click handler that removes the hidden class from all elements with the corresponding todo ID:

$('#todo-' + this.id.replace('add-', '')).removeClass('hidden');
share|improve this answer
    
Thank you very much! It might seem very easy, but i have JUST started learning, so i appreciate your help. Would you mind doing a short explanation of your script? that would help me rewrite it greatly :D –  Magnus Kristoffersen Dec 16 '12 at 13:19
    
@MagnusKristoffersen That's OK. You should have a look at some tutorials on selectors, there's a lot of stuff about jQuery I'm still discovering. I've added an explanation. –  Asad Dec 16 '12 at 13:20
    
I want to learn, badly! I do HTML, CSS and basic php well, but just started jQuery and JavaScript. I'm using Codeacademy :) –  Magnus Kristoffersen Dec 16 '12 at 13:23

Update

Actually, it isn't even necessary to define all of those images twice, if all you're trying to do is duplicate the clicked one. Just clone it.

JavaScript

$(function() {
    $("img.add").click( function() {
        $("#todobar").empty().append( $(this).clone() );
    });
});​

CSS

.add {
    height: 60px;
    width: 60px;
}

Modified HTML

<div id="todobar">
</div>

<img src="img/cyan.png" class="add" alt="cyan"/>
<img src="img/magenta.png" class="add" alt="magenta"/>
<img src="img/yellow.png" class="add" alt="yellow"/>
<img src="img/black.png" class="add" alt="black"/>


jsFiddle Demo

Useful jQuery methods to research: .click() method, jQuery .data() method, jQuery .show() method, jQuery .toggle() method. The jQuery documentation is pretty amazing, and the methods are fairly intuitively named. Try and keep your HTML canonical: as of HTML5 there is a data- attribute for adding data to markup. Also take a look at the different kinds of selectors. I have used the class selector below ('.add') and the id selector ('#todo-cyan').

JavaScript

$(function() {
    $("img.add").click( function() {
        var col = $(this).data("color");
        $("#todo-" + col).toggle();
    });
});​

CSS

.hidden {
    display: none;
    width: 45px;
}

.add {
    height: 60px;
    width: 60px;
}

Modified HTML

<div id="todobar">
    <img src="img/cyan.png" class="hidden" id="todo-cyan"/>
    <img src="img/magenta.png" class="hidden" id="todo-magenta"/>
    <img src="img/yellow.png" class="hidden" id="todo-yellow"/>
    <img src="img/black.png" class="hidden" id="todo-black"/>
</div>

<img src="img/cyan.png" class="add" data-color="cyan" alt="cyan"/>
<img src="img/magenta.png" class="add" data-color="magenta" alt="magenta"/>
<img src="img/yellow.png" class="add" data-color="yellow" alt="yellow"/>
<img src="img/black.png" class="add" data-color="black" alt="black"/>
share|improve this answer
    
Woaw thanks, really good! –  Magnus Kristoffersen Dec 16 '12 at 13:40
1  
@magnus No problem! Actually, I just added an even shorter way to do it :) –  nbrooks Dec 16 '12 at 13:42
    
Hey man, i also have another set, with the data data-paper="a3-90", how do i implement this? –  Magnus Kristoffersen Dec 16 '12 at 15:42
    
I should say i am using the first method, since it toggles! –  Magnus Kristoffersen Dec 16 '12 at 15:43

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