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 was trying to convert a whole document from javascript to jquery. So then I ran into a brick wall.

So on my script I have my array:

var phones = new Array();
phones[0] = 'http://www.cellunlocker.net/blog/wp-content/uploads/2011/11/iphone-4.jpg" title="ipod" alt="ipod image';
phones[1] = 'http://upload.wikimedia.org/wikipedia/commons/thumb/1/17/Blackberry-Bold-9650-Verizon.jpg/365px-Blackberry-Bold-9650-Verizon.jpg';
phones.push('http://www.wired.com/images_blogs/gadgetlab/2010/03/samsung-galaxys-536x536.jpg');
phones.push('http://handies.phandroid.com/media/motorola-spice-1286473916-630.jpg');
phones.push('http://www.pitchpoleenterprises.com/shop/ImageUnavailable.jpg');

And then I have my function as well:

function checkCase(){

    var phone = $('#cel')[0]; //document.getElementById('cel');
    var phone_div = $('#phone_display')[0]; //document.getElementById('phone_display');

Followed by the brick wall. I want to transform this particular code (currently commented as javascript). I tried a few things (with only the last ones being displayed there). Basically, I am trying to have the picture of the blackberry displayed. Right now, the image itself doesn't show up (the other pics work fine, because they are currently all in javascript), but I am trying to change them - and I have decided to start with the blackberry picture.

Basically, I do not know how to change the variable itself as jquery. Since it's a variable and not an id, I am completely lost in what to do.

case 'bb':
        /*phone_div.innerHTML*/ /*$('phone_div').html()*/ $('phone_div')[0].innerHTML = '<img src="'+phones[1]+'" title="blackberry" alt="blackberry image" />';
share|improve this question
    
Can you post the HTML that goes with this and a jsFiddle if possible? –  j08691 Feb 12 '13 at 18:19
    
Sure jsfiddle.net/ENqFb –  Midevil Chaos Feb 12 '13 at 18:32
    
Seems to work for me: jsfiddle.net/j08691/ENqFb/1. Note you were including two versions of jQuery. I just cleaned up what you had; didn't change any actual code. –  j08691 Feb 12 '13 at 18:37

3 Answers 3

up vote 0 down vote accepted

Since phone_div is a DOM element, if you want to get a jQuery wrapper around it just do it like this:

$(phone_div).html('<img src="'+phones[1]+'" title="blackberry" alt="blackberry image" />');

Also you should use the html() method as shown, otherwise I have no idea why you would jQuery at all, you could just as easily do:

phone_div.innerHTML = '<img src="'+phones[1]+'" title="blackberry" alt="blackberry image" />';

Really I don't even see why you are doing this:

var phone_div = $('#phone_display')[0];

This is very non-jQuery like. You could just as easily eliminate this line of code altogether and just set teh html on that element like:

$('#phone_display').html('<img src="'+phones[1]+'" title="blackberry" alt="blackberry image" />');

That is the most "jQuery-like" approach to this.

share|improve this answer
    
Thank you very much! The coding works fine :) As for the reason why I want everything into jQUERY, it's because I am revising my work and trying to eliminate javascript altogether (although technically, jQUERY is javascript). In reality, I am trying to have my javascript commented, while my jquery would be my focus. I want to have both so that I can understand what I`m doing in both JS and JQ. –  Midevil Chaos Feb 12 '13 at 18:44
    
@MidevilChaos Be careful with that approach. There are often times where basic javascript is a better solution to a problem than jQuery. When one becomes proficient in javascript, you will be able to identify these cases. –  Mike Brant Feb 12 '13 at 18:47

I would suggest doing something link this to create a new img within the div

$('#phone_div').append('<img id="bb" src="'+phones[1]+'" />');
share|improve this answer
    
Thank you!. Counter intuitive for me this approach. Would not appending it mean that you would simply keep adding things? –  Midevil Chaos Feb 12 '13 at 18:41
    
Yes that's correct. You are adding elements within the div. I guess you should go with the .html("..") that was posted earlier –  valentinos Feb 13 '13 at 11:01

As it seems you use it the following way:

// id selector (returns an array), you grep the first one
var phone_div = $('#phone_display')[0];
// not necessary, keep it to jQuery:
var phone_div = $('#phone_display');

// now this won't work at all, you use a string, 
// which would be interpreted as an DOM Element selector.
$('phone_div')[0]

// i guess you want it like this:
var phone_div = $('#phone_display');
phone_div.html(<img src="'+phones[1]+'" title="blackberry" alt="blackberry image" />);
share|improve this answer
    
Concerning the first portion, I did not realize that. Thank you. I understand, a string. Gotcha! That makes a lot of sense. As for the last part, you and someone else mentioned this. It works like a charm. Thanks to both of you :D –  Midevil Chaos Feb 12 '13 at 18:47

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.