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 feel like I am overlooking something really simple here. I need another set of eyes. I've spent much more time on this than I should.

Take a look at this fiddle => http://jsfiddle.net/R8SxU/

Why won't the Icon Update after adding more than one year? I want the top one to always be a plus to symbolize adding a new year, and the remaining ones below to be a minus to remove. It works on the first one, but only the first one. I believe I have the correct selector as the function (console out) is activated correctly with each button.

HTML

<div>
    <label for="year-0">Enter Year</label>
    <input id="year-0" type="number" title="Enter Year"/>
    <button id="addYear" title="Add Year">Year</button>
</div>

Jquery

$('#addYear')
    .button({icons: { primary: 'ui-icon-circle-plus' } })
    .on('click', function() { 
        var clone      = $('div').first().clone(true),
            peroid     = $('div').length;

        //update ID
        $(clone).find('label').prop('for','year-' + peroid);
        $(clone).find('input').prop('id','year-' + peroid);

        $('div:first button')
            .prop('id','')
            .attr('title','Remove Year')
            .addClass('removeYear');


        $(clone).insertBefore('div:first');
        $('.removeYear:first')
             .off('click')
             .button({ icons: { primary: 'ui-icon-circle-minus' } })  // Why Wont This Work
             .on('click', function() { console.log('remove function');  });

    });
share|improve this question
1  
What do you mean by why won't it update? –  j08691 Mar 8 '13 at 17:33
    
@j08691 look at the fiddle for the clear demonstration. You Hit the Button, It adds another input/label/button combo. The icon on the last button changes from a plus to a minus (to remove). This works the first time, but any subsequent times it simply stays a plus. –  matchew Mar 8 '13 at 17:36
    
Not sure if this is part of the problem or not, but you should be using attr() instead of prop() (except for accessing an element's ID where I believe the two are interchangeable). –  Matt Browne Mar 8 '13 at 17:36
    
@MattB. Thanks Matt! I always love improving my code. But you are right, this is not relevant to my problem. –  matchew Mar 8 '13 at 17:37
1  
jsfiddle.net/Y33GV –  Vohuman Mar 8 '13 at 17:57

2 Answers 2

up vote 5 down vote accepted

Try the following:

$('#addYear').button({
    icons: {
        primary: 'ui-icon-circle-plus'
    }
}).on('click', function () {
    var clone = $(this).parent().clone(),
        peroid = $('div').length;

    clone.find('label').prop('for', 'year-' + peroid).end()
         .find('input').prop('id', 'year-' + peroid).end()
         .find('button').prop('id', 'id' + peroid).prop('title', 'Remove Year')
         .addClass('removeYear').find('span:first').addClass('ui-icon-circle-minus');

    clone.insertAfter('div:last');
});

$(document).on('click', 'div:not(":first") button', function () {
    $(this).closest('div').remove();
});

http://jsfiddle.net/Y33GV/

share|improve this answer
1  
you even wrote the remove function for me! how kind. I dislike this method of directly targeting the span and adding the desired class, I feel like this should be done with .button, but I cannot argue with what works. +1 Thanks! –  matchew Mar 8 '13 at 18:04
    
@matchew You are welcome, sorry, honestly I haven't used button method so far, but I think adding a class is more efficient than calling a method. –  Vohuman Mar 8 '13 at 18:10

Try this out:-http://jsfiddle.net/adiioo7/R8SxU/4/

var clone = $('div').last().clone(true),
         peroid = $('div').length;

instead of

var clone=$('div').first().clone(true),
            peroid=$('div').length;
share|improve this answer
    
This almost works, but it fails to preserve the logical order. Notice if would If I clicked the button 3 times and had four years I would expect the ids to be as followed: id-3,id-2,id-1,id-4. Your answer would return id-1,id-3,id-2,id-0. This would be confusing to a user and therefore I would consider it undesirable. I am sorry I cannot accept this answer, but I will give you a +1. –  matchew Mar 8 '13 at 17:56

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.