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What is the best way to get the complement of a jQuery selector's result set? I want to do something like the following:

jQuery(this).find("div:contains('someValue')").show();

But I want the complement of this selection hidden:

jQuery(this).find("div:not(:contains('someValue'))").hide();

Is there a more elegant solution to this than just executing the complementary selector? An alternative I can see is finding all divs first, storing the result, and filter this:

var results = jQuery(this).find("div");
results.find(":contains('someValue')").show();
results.find(":not(:contains('someValue'))").hide();

But that doesn't seem that much better. Any ideas?

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4 Answers 4

up vote 1 down vote accepted

Try like this,

jQuery(this).find("div").hide();
jQuery(this).find("div:contains('someValue')").show();
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That's a simple and good solution ;-) –  Claudix Sep 7 '12 at 11:30
    
Well, sometimes we don't have to look very far :) Why didn't I think of that –  Jeroen Moons Sep 7 '12 at 11:34
    
But why not just use $('div:not(:contains("someValue"))', this).hide(); then? The others are visible anyway... –  Simon Sep 7 '12 at 11:37
    
@Simon That's not true in my situation, because I'm filtering a set of divs based on a textbox value, when using backspace some of these divs have to be shown again. –  Jeroen Moons Sep 7 '12 at 11:40
var results = jQuery(this).find("div"),
    selector = ":contains('someValue')";

results.filter(selector).show();
results.not(selector).hide();

as @Simon mentioned in the comments there is a way to improve this particular solution:

var results = jQuery("div", this),
    selector = ":contains('someValue')";

results.filter(selector).show();
results.not(selector).hide();
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This looks very clean, but the filter and not methods each loop over the result set so Claudix's solution might be faster I think? –  Jeroen Moons Sep 7 '12 at 11:22
1  
this solution is probably faster than claudix', for even better performance use the context parameter instead of find() because find is extremly slow, especially on something generic like divs: var results = $('div', this); –  Simon Sep 7 '12 at 11:30
1  
It is 1 iteration as opposed to 2 iterations. Filter loops over the results, and not does this again. His solution loops over the results once, and checks each item. –  Jeroen Moons Sep 7 '12 at 11:30
1  
@Jeroen Moons: there is a brief googling results jsperf.com/jquery-context-speed But I remember there was some better example there –  zerkms Sep 7 '12 at 11:41
1  
As a reference, other context, find is still faster :P jsperf.com/jquery-context-vs-find –  Simon Sep 7 '12 at 11:56

Well, I think your code is fairly good, but another option could be running this single statement:

jQuery(this).find("div").each(
    function() {
        var me = $(this);
        var f = me.is(":contains('someValue')") ? "show" : "hide";
        me[f]();
    }
);
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This seems more efficient than zerkms' solution but looks a bit messier. –  Jeroen Moons Sep 7 '12 at 11:23
    
Better use filter() instead of is() –  Simon Sep 7 '12 at 11:26
1  
@Jeroen Moons: you could reduce the code by eliminating verbosity, but I agree it's quite messy. @Simon: filter() does not return a boolean but a reduced set. In my code, the boolean returned by is lets me switch between show and hide. The complement is done with a fast javascript statement instead of a jQuery function. –  Claudix Sep 7 '12 at 11:30
/** $.grepl 
*   uses a regular expression for text matching within an internal $.grep.
*/

$.extend({ 
 "grepl": function(el, exp){ 
  exp=new RegExp(exp,'gi'); // create RegExp
  return $( 
   this.grep( el, function(n,i){ // run internal grep
    return el[i].textContent.match(exp) != null; // match RegExp against textContent
   })
  );
 }
});

$.grepl( $('div'), '^.*someRegexp.*$' ).css('display','none'); // usage of the function

I know that this does not exactly use the ":contains" expression, but the result should be the same.

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