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This is just a simple question. I'm currently using Mozilla's Rhino to develop a little webapp. As one step, I need to get a webpage and filter all of it's nodes. For doing that, I use E4X. I thought I could do this like that:

var pnodes = doc..*(p);

But that produces an error. How is it done right?

(BTW: this is just a step for increasing performance. The code already does well, it's just a bit slow.)

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do you just want to get all nodes on the page, including nested ones? –  Anurag May 25 '10 at 17:34
    
Yes, I want to get every node which has p-nodes as it's children. –  fb55 May 25 '10 at 18:10

1 Answer 1

up vote 2 down vote accepted

You should be able to use the following:

doc..*.(name() == "p")

Note that this there is a bug in the Rhino and SpiderMonkey implementations where the filter expression name() == "p" is not correctly scoped to the current node, so none of the XML or XMLList methods are defined.


Another workable solution is to lookup all p nodes in the document and accumulate the parent of each in an array.

var elements = [];

for each (var p in doc..p) {
    var parent = p.parent();
    if(elements.indexOf(parent) === -1)
        elements.push(parent);
}
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Yes, efficiency is my problem. My current resolution is checking every node for p-nodes before processing it, this takes some time, for a normal page around 0.5s. I guess that just collecting nodes efficiently might cut this time dramatically. I saw people filtering nodes in the way I tried it before, I just can't figure out how to do this. –  fb55 May 25 '10 at 19:18
    
The above version natively filters all p nodes, and collects the parent of each into an array rather than checking if each node is a p. You could use the parent node as a key in an object to make lookups O(1) instead of using indexOf to check if node already exists in Array. –  Anurag May 25 '10 at 19:51

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