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d=<<"EOM"
<ul>
  <li><a id=t href="t">a</a></li>
  <li><a id=b href="b">b</a></li>
  <li>
    <ul>
      <li><a href="inner">don't want inner</a></li>
      <li><a href="inner">don't want inner</a></li>
    </ul>
  </li>
  <li><a id=c href="c">c</a></li>
</ul>
<ul>
  <li><a href="d">don't want</a></li>
</ul>
EOM

doc = Nokogiri.HTML(d)
t = doc.css("#t")[0]

how can i get all hrefs that have the same outer container as "t" and are at the same depth as "t"? in this case i'd want just the hrefs t,b,c. these will not always be in ul's, just using it as an example.

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3 Answers 3

up vote 1 down vote accepted

To get all a tags with the same 'grandparent' as t you could do:

doc.css('a').select{|a| a.parent.parent == t.parent.parent}

To get their hrefs:

doc.css('a').select{|a| a.parent.parent == t.parent.parent}.map{|a| a[:href]}
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If you know the IDs will be consistent:

puts doc.search('#t, #b, #c').map{ |n| n['href'] }

If you don't know what they would be, then XPath can get you there:

doc.search('//*[@id="t"]/../../*/*[@id]').to_html
=> "<a id=\"t\" href=\"t\">a</a><a id=\"b\" href=\"b\">b</a><a id=\"c\" href=\"c\">c</a>"

doc.search('//*[@id="t"]/../../*/*[@id]').map{ |n| n['href'] }
=> ["t", "b", "c"]

That means "find the node with an ID of 't', then back up two levels and look down finding the nodes with populated id attributes".

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Thanks @pguardiario

The parent node could be at any level, so I modified your code like so:

 t = doc.css("#a")[0]
 r = []
 p = t.parent
 x = 0
 while true
   break if p.node_name == "body" || p.node_name == "html"
   x += 1
   r = doc.css('a').select{|a| 
     m = a
     x.times { m = m.parent }
     m  == p
     } 
   break if r.length > 1
   p = p.parent
 end
 pp r.length

I'm sure there's a better way than this brute force method.

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