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I've built advanced validation plugin which shows the errors in a specific way.

However , when a user input is not valid , I scroll the page to the first element that has failed in validation.

this is how it looks :

enter image description here

So where is the problem ?

I've bolded the TD's in black.

So you can see that Currency textbox is on the first TD where Owner Name textbox is on the second TD

so Currency textbox has validated first , and so , the page scroll to the Currency location and not to the OwnerName text box location . ( as I wish)

Question :

How can I find the topmost element ( lets assume that all failed elements has .failed class - just for simplicity).

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4 Answers 4

up vote 7 down vote accepted

Just iterate through each of the elements:

var $failed = $('.failed');
var top = null;    // current "smallest" value
var found = null;  // current "topmost" element

$failed.each(function() {
    var $this = $(this);
    var cur = $this.offset().top;
    if (top === null || cur < top) {
        found = this;
        top = cur;
    }
});     

Alternative, if you don't actually care which element it is, but just want the scroll position:

var tops = $failed.map(function() {
    return $(this).offset().top;
}).get();

var top = Math.min.apply(null, tops);

NB: code corrected to use .offset instead of .scrollTop

share|improve this answer
    
scrollTop when there's no scroll yields 0? ( i cant test , i'm out) –  Royi Namir Apr 2 '13 at 12:14
    
yeah, something like that - that's why I changed to .offset() –  Alnitak Apr 2 '13 at 12:15

There is nothing in jQuery built in to give what you want. You would have to loop through all of the elements and use offset() to see which one has the smallest top and left.

var failed = $(".failed");
var firstElem = failed.eq(0);
var firstPos = firstElem.offset();
failed.splice(0,1);
failed.each( function() {
    var elem = $(this);
    var pos = elem.offset();
    if (pos.top < firstPos.top || (pos.top===firstPos.top && pos.left<firstPos.left) {
        firstElem = elem;
        firstPos = pos;
    }    
});
share|improve this answer
    
ITYM .offset() rather than .position() –  Alnitak Apr 2 '13 at 12:10
1  
whoops, I did not have my morning coffee yet! Fixed. –  epascarello Apr 2 '13 at 12:11

Try this:

var el;

$.each($(".failed"), function () {
    if (!el || el.offset().top > $(this).offset().top) {
        el = $(this);
    }
});
share|improve this answer

You could use sort to sort by position:

var topElement = $('.invalid-elements')
    .sort(function(a, b) { return $(a).offset().top - $(b).offset().top })[0];

Demo

share|improve this answer
    
hmm, sort which is typically O(n log n), vs min which is O(n)... –  Alnitak Apr 2 '13 at 12:12
    
@Alnitak: true that, and I've upvoted your answer, too. I thought it was a bit neat in terms of readability compared to the other approaches, but of course there is a tradeoff for performance. OP hopefully has an idea of the number of elements that will be involved and will be able to make an informed decision. I think both approaches should be put up there, but then again, so should your remark on performance impact :) –  David Hedlund Apr 2 '13 at 12:22

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