150

.offset([coordinates]) method set the coordinates of an element but only relative to the document. Then how can I set coordinates of an element but relative to the parent?

I found that .position() method get only "top,left" values relative to the parent, but it doesn't set any values.

I tried with

$("#mydiv").css({top: 200, left: 200});

but does not work.

237

To set the position relative to the parent you need to set the position:relative of parent and position:absolute of the element

$("#mydiv").parent().css({position: 'relative'});
$("#mydiv").css({top: 200, left: 200, position:'absolute'});

This works because position: absolute; positions relatively to the closest positioned parent (i.e., the closest parent with any position property other than the default static).

2
  • 13
    $("#mydiv").css({top: '200px', left: '200px', position:'absolute'}); <-- good $("#mydiv").css({top: '200', left: '200', position:'absolute'}); <-- bad. Apparently, if position values are strings, you must include the units, or it'll have no effect. – Bob Stein Jul 13 '16 at 4:18
  • 1
    That note about having a relative positioned parent saved me a lot of frustration. Thank you. – NuclearPeon Sep 15 '16 at 23:26
42
$("#mydiv").css('top', 200);

$("#mydiv").css('left', 200);
3
  • 7
    some more instruction would help here – dove Oct 5 '12 at 11:14
  • 1
    or $("#mydiv").css({'top': 200, 'left': 200}); – Nick B Mar 31 '16 at 12:41
  • In other words, the OP would have been correct if they had simply quoted "top" and "left"? – RufusVS Apr 7 '19 at 1:31
13

You could try jQuery UI's .position method.

$("#mydiv").position({
  of: $('#mydiv').parent(),
  my: 'left+200 top+200',
  at: 'left top'
});

Check the working demo.

4
  • 10
    .position() doesn't have a setter – devnull69 Oct 5 '12 at 11:11
  • Where exactly does it say that it can set the position? I think it can only find the values, not change them. – Chris Oct 5 '12 at 11:11
  • 1
    .position() method doesn't set values! – Max Oct 5 '12 at 11:12
  • Very interesting!!! Your code is very useful when You are not able to set parent element's css position property (as mentioned in the main answer) because it's a UI widget and You don't want change its settings for a smooth activity. Of course this only happens when you're using jQuery UI. I found this little issue with jQuery UI "draggable" widget. – Max Oct 5 '12 at 12:47
6

I found that if the value passed is a string type, it must be followed by 'px' (i.e. 90px), where if the value is an integer, it will append the px automatically. the width and height properties are more forgiving (either type works).

var x = "90";
var y = "120"
$(selector).css( { left: x, top: y } )        //doesn't work
$(selector).css( { left: x + "px", top: y + "px" } )        //does work

x = 90;
y = 120;
$(selector).css( { left: x, top: y } )        //does work
6

Code offset dynamic for dynamic page

var pos=$('#send').offset().top;
$('#loading').offset({ top : pos-220});
0
0

Refreshing my memory on setting position, I'm coming to this so late I don't know if anyone else will see it, but --

I don't like setting position using css(), though often it's fine. I think the best bet is to use jQuery UI's position() setter as noted by xdazz. However if jQuery UI is, for some reason, not an option (yet jQuery is), I prefer this:

const leftOffset = 200;
const topOffset = 200;
let $div = $("#mydiv");
let baseOffset = $div.offsetParent().offset();
$div.offset({
  left: baseOffset.left + leftOffset,
  top: baseOffset.top + topOffset
});

This has the advantage of not arbitrarily setting $div's parent to relative positioning (what if $div's parent was, itself, absolute positioned inside something else?). I think the only major edge case is if $div doesn't have any offsetParent, not sure if it would return document, null, or something else entirely.

offsetParent has been available since jQuery 1.2.6, sometime in 2008, so this technique works now and when the original question was asked.

0

Use offset() function of jQuery. Here it would be:

$container.offset({
        'left': 100,
        'top': mouse.y - ( event_state.mouse_y - event_state.container_top ) 
    });

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