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Hi I have an image who's position I get and store to a variable using

var position = $(".portfolio-items a").offset();

but for some reason it returns

Object { top=1227.5, left=416.5}

How would I go about rounding it up and adding the px on the end so that I can then assign it to a new element to place it over the top of the current one?

Thanks.

I've uploaded the site to www.pixelcoding.co.uk so that you can see where the problem is now. When you click on the AJLComputers portfolio link the new image should be displayed over the old one but it is off by about 200pxs vertically.

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2 Answers

up vote 0 down vote accepted

Simply use Math.round() on the returned positions:

var position = $(".portfolio-items a").offset(),
    top = Math.round(position.top) + 'px',
    left = Math.round(position.left) + 'px';

This will always round appropriately (so 0.4 rounds down to 0, 0.5 rounds up to 1); if you always want to round up then you can use Math.ceil() in place of Math.round():

var position = $(".portfolio-items a").offset(),
    top = Math.cel(position.top) + 'px',
    left = Math.ceil(position.left) + 'px';

There's also Math.floor() which, as you might imagine, always rounds down to the integer.

But while you can use the functions, it's not necessary to do so, since jQuery can, and will, use them as-is.

References:

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This works but I have another problem, the new image I'm trying to overlay is static and that means I need to remove the page offset, I tried it with $(document).scrollTop(); but it's still not in the correct position, am I missing something? –  Pixel Coding Jan 30 '13 at 12:07
    
You're missing the code in your question. Add the relevant*/sscce JavaScript, HTML and CSS. Provide a JS Fiddle demo if you can. Then we can see what's happening. Explain what you *want to happen, and what's going wrong. –  David Thomas Jan 30 '13 at 12:15
    
I've uploaded the website to www.pixelcoding.co.uk if you click on the first portfolio image (AJL Computers) then you'll see what happens, the new image should appear in the same place as the old one but it's coming up about 200px too low. –  Pixel Coding Jan 30 '13 at 13:59
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You can just use the object as-is.

var position = $(".portfolio-items a").offset();
$( '#new-item' ).offset( position );
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I tried that and the object doesn't show on the page, for some reason it gets top: -316px; left: 416.5px; –  Pixel Coding Jan 30 '13 at 11:41
1  
Then it seems the problem lies elsewhere. Can you reproduce your problem with a minimal/sscce JS Fiddle demo? –  David Thomas Jan 30 '13 at 11:42
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