59

So I have a div like:

<div class="uiGrid">

<div class="trigger"></div>

</div>

And I want to know the position of trigger to uiGrid and have tried both these:

$('.trigger').offset('.uiGrid');

$('.trigger').position('.uiGrid');

but neither get it. Offset is relative to the document and position is relative to the parent and not the specified element.

How would I do this? Thanks

1

4 Answers 4

89

just do the subtraction your self...

var relativeY = $("elementA").offset().top - $("elementB").offset().top;

3
  • 18
    There's actually no such thing as offset().y it's offset().top
    – Hengjie
    Apr 10, 2013 at 9:55
  • worked perfectly on Chrome, but Firefox gives totally different numbers 😟
    – No Sssweat
    Mar 27, 2018 at 17:40
  • For my use case, since the Firefox numbers are off by a bit, all I did was a round relativeY to the nearest tenth 😀
    – No Sssweat
    Mar 27, 2018 at 18:02
11

what you can do here is basically, subtract parent property value from child property value.

var x = $('child-div').offset().top - $('parent-div').offset().top;
6
  • where to put theses subtracting value ? Jun 7, 2013 at 10:32
  • thanks” is appreciated. Sorry i forgot to show it by assigning to a variable. so what you have to do is just define a variable and assign the subtracting value. var x = $('child-div').offset().top - $('parent-div').offset().top; Jun 13, 2013 at 10:53
  • 7
    Why did you feel the need to post a redundant answer 2.5 years after the an accepted answer was posted?
    – VictorKilo
    Jan 24, 2014 at 20:57
  • 3
    It clarifies which element's position is subtracted from the other. See child/parent vs. A/B Jan 6, 2015 at 2:56
  • 4
    @MaxStrater Perhaps. but they could have commented on the original answer or at least give some kind of credit to the OP.
    – actaram
    May 17, 2017 at 14:19
4

You're missing the point here....

Besides that, try:

myPosY = $('.trigger').offset().left - $('.uiGrid').offset().left;
myPosX = $('.trigger').offset().top - $('.uiGrid').offset().top;
1
  • oh but : myPosY is top , myPosX is left
    – tiepnv
    May 3, 2017 at 12:02
4

The problem for me was the fact that I was in a div with a scrollbar and that I had to be able to take into account the hidden part down to the root element.

If I use ".offset()" it gave me wrong values, because it does not take into consideration the hide part of scrollbar as it is relative to the document.

However, I realized that the ".offsetTop" property relative to its first parent positioned (offsetParent) was always correct. So I made a loop to go recursively to the root element by additionning the values of ".offsetTop":

I did my own jquery function for that:

jQuery.fn.getOffsetTopFromRootParent = function () {
    let elem = this[0];
    let offset = 0;
    while (elem.offsetParent != null) {
        offset += elem.offsetTop;
        elem = $(elem.offsetParent)[0];
        if (elem.offsetParent === null) {
            offset += elem.offsetTop;
        }
    }
    return offset;
};

You can use the same with ".offsetLeft" I suppose...

If you want to get position of element relative to another element to answer the question:

let fromElem = $("#fromElemID")[0];
let offset = 0;
while (fromElem.id.toUpperCase() != "toElemID".toUpperCase()) {
    offset += fromElem.offsetTop;
    fromElem = $(fromElem.offsetParent)[0];
}
return offset;

An element (offsetParent) is said to be positioned if it has a CSS position attribute of relative, absolute, or fixed.

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