14

I'm working on a backend module, so Node.GetCurrent() is not an option. I need to find a way to call something like Node currentNode = new Node(parentNodeId); and get the root node of the site. I've seen samples in XSLT, but nothing for C#. Does anyone know how I can accomplish this?

Even just getting the ID of the root node so I can call new Node() would be great.

6 Answers 6

15

The rootnode is always available as:

var rootNode = new Node(-1);
10

Update for Umbraco 7 (may work in earlier versions too)

@{
    var siteroot = CurrentPage.AncestorOrSelf(1);
}

For further info, check out the documentation -> http://our.umbraco.org/Documentation/Reference/Querying/DynamicNode/Collections

0
6

Update for Umbraco 6+

public static IPublishedContent GetRootNode()
{
    var umbracoHelper = new UmbracoHelper(UmbracoContext.Current);
    var rootNode = umbracoHelper.TypedContentSingleAtXPath("//root"));

    return rootNode;
}

This just takes a document type alias and finds the root node as IPublishedContent using the current Umbraco context. UmbracoHelper gives you quite a few options off this also.

5

Brennan is correct,

var rootNode = new DynamicNode(-1);

works as well!

5

Umbraco 7:

Umbraco.TypedContentAtRoot();
3
  • 1
    Umbraco.TypedContentAtRoot().First() might work better. Jul 22, 2016 at 18:33
  • 1
    @ThomHubers that requires only one root node. If currentpage is in the second root node, this will not work. Oct 26, 2016 at 12:41
  • It's an addition to this answer, which returns a list of root nodes, which was not asked for. The best way to retrieve the root node of a node in a non-first tree depends on the use case. I make use of Document Types in most cases. Oct 27, 2016 at 19:43
0

I frequently use this one. I like that it's relative so that if you have multiple root nodes you can target both without a foreach loop.

IPublishedContent topNode = Model.Content.AncestorOrSelf(1);

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