1

I have a question regarding the best way regarding the best way to parse a document to extract resource links.

You show in this cookbook:

The following method which builds a DOM representation:

    Document doc = Jsoup.connect(url).get();
    Elements links = doc.select("a[href]");

So I am not sure it's the most performing way.

  • Is it better to iterate on doc.getAllElements() ?
  • Or is there some kind of SAX parser equivalent ?

I asked this question on JSOUP googlegroups on 3 March, but I am not sure my mail has passed the filter.

3

The most performing way would be to use the NodeTraversor which is an implementation of Visitor pattern. It will scan the whole tree just as two other options, but

  • it won't require to parse the CSS query and match it 'dynamically' - it's less possible to JIT-optimize a custom query than a static filter
  • it won't store the elements to a list as with getAllElements()

SAX parsing model is not supported because Jsoup always creates a DOM-tree, so there is no need in less-capable SAX. And so does HtmlCleaner.

final List<Element> elements = new ArrayList<Element>();

new NodeTraversor(new NodeVisitor() {
    public void head(Node node, int depth) {
        if (node instanceof Element) {
            Element element = (Element) node;
            if(element.tagName().equalsIgnoreCase("a") && element.hasAttr("href")){
                elements.add(element);
            }
        }
    }

    public void tail(Node node, int depth) {
    }
}).traverse(doc);

return elements;
0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.