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Quick question - is it possible to extend jQuery selectors to change the resultset (for example) via traversal instead of just by filtering an existing set?

To clarify - I don't want the selector equivalent of a call to $.filter() - I want something closer to $('foo:nth-child(n)') or $('foo:eq(n)'), where I can specify exactly which elements are returned by the selector. Any thoughts would be appreciated.

Edit: here's an example of what I want to implement:

$.expr[':']['nth-parent'] = function(deTarget, iIndex, aProperties, aStack) {
    var iN, $currentElement;

    if(!deTarget)
        return;
    if(!aProperties || aProperties.length < 4 || isNaN(iN = parseInt(aProperties[3])) || iN < 0)
        throw('jQuery.nth-parent(N) requires a non-negative integer argument');

    $currentElement = $(deTarget);
    while(--iN >= 0)
        $currentElement = $currentElement.parent();

    aStack = $currentElement.length ? [$currentElement.get(0)] : [];
    return aStack.length ? true : false;
};

So, ultimately, I'd want the new aStack array returned as the result set, in this particular case.

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1  
Yes you can extend the selectors, you'll have to provide examples of what you want to select so that we can help show you how. –  zzzzBov Jan 3 '11 at 18:56
    
"I want something closer to $('foo:nth-child(n)') or $('foo:eq(n)')" - why not just use those? –  hunter Jan 3 '11 at 18:59

4 Answers 4

up vote 1 down vote accepted

Yes you can do this, a proper example here would be what you're after in the question, here's how :eq() is implemented:

jQuery[":"].eq = function(elem, i, match) {
   return match[3] - 0 === i;
};

The signature has one more parameter, stack, like this:

function(elem, index, match, stack)

stack is the set of all elements, if you need use that in your filtering.

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Hey Nick - I think I was wrong with eq; you can get that information based on the current selector context; I want to return elements out of that context. See the updated snippet in the question. –  mway Jan 3 '11 at 19:05
1  
@mway - I think you have your selectors backwards, you're climbing to get the nth-parent(), this is better done as a function, selectors are for the current element. For example :nth-child() selectors elements that are the nth-child, not that have n-children, that would be backwards from how CSS selectors work altogether. –  Nick Craver Jan 3 '11 at 19:07
    
Ah yes, this was a little less about CSS and more about just providing a convenience selector for traversing up the tree. –  mway Jan 3 '11 at 19:09

This link should help you with what you need: http://jquery-howto.blogspot.com/2009/06/custom-jquery-selectors.html

But to answer your question yes it is possible to create custom selectors.

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No - that page shows you how to filter the current result set with a selector, eg, "any element that has a rel attribute" (with respect to that page). I want to traverse and return elements found (via traversal) with the selector - not filter. –  mway Jan 3 '11 at 18:59
    
Ok maybe I am not understanding then. Can you provide a pseudo code example of what exactly it is that you are looking for? –  spinon Jan 3 '11 at 19:00
    
Have a look at the updated question - maybe that will help clarify... sorry for the confusion! –  mway Jan 3 '11 at 19:05

I think you mean you want a custom selector with a parameter:

$.expr[':'].heightAbove = function(obj, idx, meta, stack) {
    return ($(this).height() > parseInt(meta, 10));
};

You can then call this as

$('div:heightAbove(40)');

to select divs with a height above 40px.

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Yes you can extend the selectors.

As far as examples: let me help you.

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