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Example:

<div id="parent">
    <div id="1" style="display:block"></div>
    <div id="23" style="display:block"></div>
    <div id="42" style="display:block"></div>
    <div id="32" style="display:none"></div>
</div>

According to this example i want to get the id of div id=42 which is at the second last position. i want to find div which is display block and find from last.

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you need to show some code i guess... –  Muhammad Sannan Mar 29 '12 at 5:59
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6 Answers

up vote 1 down vote accepted

In your case u can use:

var last_id = $('div:visible').last().attr('id');
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You can find it by this way

$("#parent div[style*='display:block']'").last().attr("id")

See jsfiddle http://jsfiddle.net/UhzRU/4/

If you want to find all visible div's(not only display:block) it will be better to use this

$("#parent div:visible").last().attr("id")
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Downvoter, please tell me your downvote's reason. –  Chuck Norris Mar 29 '12 at 6:26
    
add a space between the : and block and you get undefined. it can be faulty that way. –  Joseph the Dreamer Mar 29 '12 at 6:35
    
Yes, :visible is better. –  Chuck Norris Mar 29 '12 at 6:43
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I want to get the id for div which is display block from last to first div?

here's a demo

$(function(){

    var ids = [];

    $('#parent > *').filter(function(){
        return this.style.display === 'block'; 
    }).each(function(){
        ids.unshift(this.id);
    });

    console.log(ids)
});​
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Don't you think it's very long solution? –  Chuck Norris Mar 29 '12 at 6:11
    
@ChuckNorris nope. the only things important here is the filter, the get and reverse. –  Joseph the Dreamer Mar 29 '12 at 6:22
    
Yes, there are too more actions when this can be done with more simple way :) –  Chuck Norris Mar 29 '12 at 6:24
1  
@ChuckNorris Your solution is shorter, but does something completely different. Your solution simply finds the id of the last div, while Joseph's answer gets a list of divs in reverse order. The OP is not very clear on what he wants exactly, but I interpreted his question just like Joseph. –  Steve Mar 29 '12 at 6:34
1  
@ChuckNorris so what's there to do "last-to-first" if you only get one? the title of the OP's post says it all. –  Joseph the Dreamer Mar 29 '12 at 6:45
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This works for your test HTML

x = $('#parent div').filter(function() {if ($(this).css('display') == 'block') return $('this')});
x = x[x.length - 1];

x is now the last div with display: block;

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Use nth-last-child function: Here is a link

http://benalman.com/projects/jquery-misc-plugins/#nth-last-child

(function($){
  '$:nomunge'; // Used by YUI compressor.

  $.fn.queueFn = function( fn ) {
    var i,
      that,
      args = Array.prototype.slice.call( arguments, 1 );

    if ( typeof fn === 'boolean' ) {
      if ( fn ) {
        that = this;
        i = this.length;
      }
      fn = args.shift();
    }

    fn = $.isFunction( fn ) ? fn : $.fn[ fn ];

    return this.queue(function(){
      !--i && fn.apply( that || this, args );
      $.dequeue( this );
    });
  };

})(jQuery);

var elems = $('#parent div:nth-last-child(2)');
alert(elems.attr('id'));
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I hope this works

var reqId = ""
var child = $("#parent").children().last();
while($(child).css("display")!="block" && $(child).length!=0){
    child = $(child).prev();
}
if($(child).length!=0){
   reqId = $(child).attr("id");
}
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thk to all for reply –  pargan Mar 29 '12 at 8:02
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