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I do have a XML which looks like this

<root>
    <name value="test">
        <contact>
            <id>1</id>
            <Name>myname mylastname</Name>
            <phone>
                <number1_1>123456789</number1_1>
                <number2_1>987654321</number2_1>
            </phone>
        </contact>
        <contact>
            <id>2</id>
            <Name>myname mylastname</Name>
            <phone>
                <number1_2>123456789</number1_2>
                <number2_2>987654321</number2_2>
            </phone>
        </contact>
    </name>
    <name value="test1">
        <contact>
            <id>1</id>
            <Name>myname mylastname</Name>
            <phone>
                <number1_1>123456789</number1_1>
                <number2_1>987654321</number2_1>
            </phone>
        </contact>
    </name>
</root>

with this code I can add a new node, but it will be always added under the firstname value test. How can I add it under name value test1 ?

xmldoc.Element("root").Element("Name").Add( 
    new XElement("contact",
            new XElement("id", "2"),
            new XElement("Name", "notset"),
            new XElement("phone",
                new XElement("number1_1", "notset"),
                new XElement("number2_1", "notset")

            )
        )
    );

Can someone give me hint or a line of code how I can do this!

Regards Martin

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1 Answer 1

Element("name") returns first element that matches the name. That's why you to query for your <name> element.

.Elements("Name").First(x => (string)x.Attribute("value") == "test1")

It should do the trick. Whole code would look like that:

xmldoc.Element("root")
      .Elements("Name").First(x => (string)x.Attribute("value") == "test1").Add( 
    new XElement("contact",
            new XElement("id", "2"),
            new XElement("Name", "notset"),
            new XElement("phone",
                new XElement("number1_1", "notset"),
                new XElement("number2_1", "notset")

            )
        )
    );
share|improve this answer
    
thanks, it does the trick –  user2367263 Aug 22 '13 at 9:18

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