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What I have is the following code to create a div.

function makeLinkdiv () {
  gCurrentBlock = $gBlockDivName + $gBlockPointer;
  var idPointer = gCurrentBlock;
  var linksBlock = $('<div id ="' + gCurrentBlock + '" class="LinksBlock EditBlock"></div>').appendTo("#canvas");
  linksBlock.draggable({containment: "#canvas", scroll: false, grid: [10, 10]}, {cursor: "move", cursorAt: {top: 125, left: 50}});
  linksBlock.append('<div class="article_title EditBlock fontCenter fontBold font24">Article Title</div>');
  //
  // log the div data to the div object
  //
  var x = gCurrentBlock.css('left');
  var y = gCurrentBlock.css('top');
  alert ('top is - ' + y + ' left is - ' + x);
  divData.items.push({ID: $gBlockPointer, Block: gCurrentBlock, posTop : "450", posLeft : "540" });
  //
  // increment the block pointer
  //
  $gBlockPointer = $gBlockPointer + 1;
  //
}

What happens is that I do not get the CSS properties for top and left. Actually, nothing happens. I know that there must be something wrong in how I am using the variable gCurrentBlock, but I can't figure it out.

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What does you code do? What outer scope variables does that function use (and what do those variables represent)? –  Šime Vidas Dec 25 '12 at 16:56
    
I use it to create new divs for newspaper style layouts. The variable are pointers and div id's –  Chris Dec 25 '12 at 16:57
1  
You are using gCurrentBlock as a string variable, a string doesn't have css method. –  undefined Dec 25 '12 at 16:58
    
So what to I need to do to cast it as a div id? –  Chris Dec 25 '12 at 16:59
    
@Chris You can select the element after appending it. –  undefined Dec 25 '12 at 17:01
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5 Answers

up vote 1 down vote accepted

Not really sure what your code is trying to accomplish... but you need to check out jQuery's position and offset methods, which will give you coordinates for your element.

I would expect your code to look more like this:

...
var position = $('#' + gCurrentBlock).position();
var x = position.left;
var y = position.top;
...

And if the values are not what you expect, try changing position to offset.

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Thanks for this suggestion. Your code works fine except that I am getting coordinates of the document, not the window that my div is in. I tried both .offset and .position but no difference. Any suggestions? –  Chris Dec 25 '12 at 19:26
    
Just found the problem, it had nothing to do with jquery; my container div was not set to position relative. I changed that and all is good. –  Chris Dec 25 '12 at 20:00
    
Glad you figured it out. –  Ryan Wheale Dec 28 '12 at 17:47
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You can't use .css() without using it as a jQuery-object.

Try the following instead:

var x = document.getElementById(gCurrentBlock).style.left;
var y = document.getElementById(gCurrentBlock).style.top;
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Just tried your suggestion and nothing happened. There wasn't an alert box popping up at all. –  Chris Dec 25 '12 at 17:03
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The gCurrentBlock is a variable which contains the id of the div only, Thus

Replace this

var x = gCurrentBlock.css('left');

With

var x = $("#"+gCurrentBlock).css('left');

Hope this will help !!

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Here gCurrentBlock is a id in which you are directly using jquery method, so it will not work.

Try x=$('#'+gCurrentBlock).css('left') //it will return you left position in pixel like 150px if you want left position in number you can use

 x=$('#'+gCurrentBlock).position().left; //will return x as 150

same you can do for y.

y=$('#'+gCurrentBlock).css('top');

or

y=$('#'+gCurrentBlock).position().top;
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I think you are not selecting the selector in a proper way:

 var x = gCurrentBlock.css('left');
 var y = gCurrentBlock.css('top');

you have appended it like this:

var linksBlock = $('<div id ="' + gCurrentBlock + '" class="LinksBlock EditBlock"></div>').appendTo("#canvas");
//--------------------------------^^^^^^^^^^^^^---this is the id of the div

so your code should be :

 var x = $('#'+gCurrentBlock).css('left');
 var y = $('#'+gCurrentBlock).css('top');
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