Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a problem I cant seem to solve here. Lets say I have some html like beneth here that I want to parse. All this html is within one list on the page. And the names repeat themself like in the example I wrote.

<li class = "seperator"> a date </li>
<li class = "lol"> some text </li>
<li class = "lol"> some text </li>
<li class = "lol"> some text </li>

<li class = "seperator"> a new date </li>
<li class = "lol"> some text </li>


<li class = "seperator"> a nother new date </li>
<li class = "lol"> some text </li>
<li class = "lol"> some text </li>

I did manage to use htmlagility pack to parse every li object seperate, and almost formating it how I want. My print atm looks something like this:

"a date"    "some text"
"some text"
"some text"
"some text"

"a new date"  "some text"

"a nother new date "    "some text"
"some text"
"some text"

What I want to achive:

"a date"    "some text"
"a date"    "some text"
"a date"    "some text"
"a date"    "some text"

"a new date"    "some text"

"a nother new date "    "some text"
"a nother new date "    "some text"
"a nother new date "    "some text"

But the problem is that beneath every seperator, the count of every lol object may vary. So one day, the webpage may have one lol object beneth date 1, and the next day it may have 10 lol objects. So I am woundering if there is an smart/easy way to somehow count the number of lol objects in between the seperators. Or if there is another way to figure this out? Within for example htmlagilitypack. And yes, I need the correct date in front of every lol object, not just infront the first one. This would have been a pice of cake if the seperator class would have ended beneath the last lol object, but sadly that is not the case... I dont think that I need to paste my code here, but basicly what I do is to parse the page, extract the seperators and lol objects and add them to a list, where I split them up to seperator and lol objects. Then I print it out to a file and since the seperator only occure 3 times(in the example) I will only get out 3 seperate dates.

share|improve this question

1 Answer 1

Here's the plan, select all the seperator elements then find all consecutive sibling elements with the desired class.

Unfortunately, there is no simple way to get a collection of siblings in the current versions of HTML Agility Pack, you only have access to the (one) next sibling. It's hard to collect data from linked structures nicely using LINQ. And since there is no real hierarchy in the HTML, this would be somewhat of a challenge.

If you have XPath available, you can use the following-sibling axis to get all following sibling elements in conjunction with the TakeWhile() method to do the following:

var htmlStr = @"<li class = ""seperator""> a date </li>
<li class = ""lol""> some text </li>
<li class = ""lol""> some text </li>
<li class = ""lol""> some text </li>

<li class = ""seperator""> a new date </li>
<li class = ""lol""> some text </li>


<li class = ""seperator""> a nother new date </li>
<li class = ""lol""> some text </li>
<li class = ""lol""> some text </li>";

var doc = new HtmlDocument();
doc.LoadHtml(htmlStr);
var data =
    from li in doc.DocumentNode.SelectNodes("li[@class='seperator']")
    select new
    {
        Separator = li.InnerText,
        Content = li.SelectNodes("following-sibling::li")
            .TakeWhile(sli => sli.Attributes["class"].Value == "lol")
            .Select(sli => sli.InnerText)
            .ToList(),
    };

Otherwise if you don't have XPaths available, you can create an enumerable from any linked structure with the following:

public static class Extensions
{
    public static IEnumerable<TSource> ToLinkedEnumerable<TSource>(
        this TSource source,
        Func<TSource, TSource> nextSelector,
        Func<TSource, bool> predicate)
    {
        for (TSource current = nextSelector(source);
                predicate(current);
                current = nextSelector(current))
            yield return current;
    }

    public static IEnumerable<TSource> ToLinkedEnumerable<TSource>(
        this TSource source, Func<TSource, TSource> nextSelector)
        where TSource : class
    {
        return ToLinkedEnumerable(source, nextSelector, src => src != null);
    }
}

Then your query now becomes this:

var data =
    from li in doc.DocumentNode.Elements("li")
    where li.Attributes["class"].Value == "seperator"
    select new
    {
        Separator = li.InnerText,
        Content = li.ToLinkedEnumerable(sli => sli.NextSibling)
            .Where(sli => sli.Name == "li")
            .TakeWhile(sli => sli.Attributes["class"].Value == "lol")
            .Select(sli => sli.InnerText)
            .ToList(),
    };
share|improve this answer
    
Thanks for your tip! I think this will help me solve my problem! :) –  dtd Oct 7 '12 at 22:36

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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