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0

tasks.Descendants("updateInstance").ToList().ForEach(updateNode => { var createNode = tasks.Descendants("createInstance").FirstOrDefault(x => x.GetAttributeValue("name") == updateNode.GetAttributeValue("name")); if (createNode == null) return; var dupes = updateNode.Descendants("uda").Where(e => createNode.Descendants("uda").Contains(e, ...


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Responding to your Edit section.. you need to use XNamespace as pointed by @Selman22 because the XML has default namespace decalred : XElement xdoc = XElement.Load(@"c:\form.xml"); XNamespace ns = xdoc.GetDefaultNamespace(); var classDetails = from classDetail in xdoc.Descendants(ns + "ClassDetails") select new FormClass ...


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Descendents is a good option if you aren't looking to filter, just to get "everything". The documentation on XDocument.Descendents can be found on MSDN. Make sure you include a reference to System.Xml.Linq in your class file. Here is an option to parse the XML to your desired type: XDocument xdoc = XDocument.Load(@"c:\form7.txt"); var classDetails = ...


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Your elements have a namespace so you must specify the namespace when you are getting them: XNamespace ns = xdoc.GetDefaultNamespace(); var query = from datas in xdoc.Root.Elements(ns + "ArrayOfArrayOfClassDetails") select datas;


2

You can simply concatenate string representation of nodes: var xml = String.Concat(myNodes);


1

You can use the Remove extension method on IEnumerable<T> where T : XNode: xml.Elements() .Where(item => !JustThisProperties.Contains(item.Name.ToString())) .Remove(); (You might want to make JustThisProperties an IEnumerable<XName>, which would let you get rid of the ToString() call.)


2

XElement.Element method expects an element name, not an attribute value. It doesn't know which attribute value is the name of your element.... You should try: flowData.Root.Element("flows") .Elements("flow") .Where(f => (string)f.Attribute("name") == flow.Name);


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Your code is correct to get all elements one level down the Root, but it isn't clear what kind of output you want to get. I assume you want to get complete markup of those aforementioned elements : foreach (XElement x in oPbcXDocument.Root.Elements()) { Console.WriteLine(x.ToString()); }


0

Here is a solution that is based on LINQ Query Syntax: string customerName = "bla1"; XElement dataElem = XElement.Parse(dataXml); var ipAddresses = from customerElem in dataElem.Elements("Customer") where (string)customerElem.Element("Name") == customerName from ipElem in customerElem.Descendants("IP") select (string)ipElem; foreach (var ...


0

Don't use Value property as it will always contain the text representation of all descendants. Process the elements as needed.


1

First you need to load the xml string, second you get the position where you want to insert the xml, then insert the new xml. Here is an example how to do it. var reader = new StringReader(@"<Employees> <Person> <ID>1000</ID> <Name>Nima</Name> <LName>Agha</LName> </Person> ...


0

Here is a solution that uses LINQ Query Syntax: XDocument document = XDocument.Parse(xml); var query = from el in document.Root.Elements("Record") where (string)el.Element("Field").Attribute("guid") == "07a188d3-3f8c-4832-8118-f3353cdd1b73" select new { ModuleId = (string)el.Attribute("moduleId"), Field = ...


2

Give this a try: var doc = XDocument.Parse(xml); var r = doc.Descendants("Record") .Where(n => n.Element("Field").Attribute("guid").Value == "07a188d3-3f8c-4832-8118-f3353cdd1b73") .Select(n => new { ModuleId = n.Attribute("moduleId").Value, Field = n.Element("Field").Value }); var a = r.ToArray();


3

I want to get e.g. all IPs of a specific Customer into a List I guess you are looking for something like this (Using Linq2Xml and Xpath) var xDoc = XDocument.Parse(xmlstring); // XDocument.Load(filename) string custName = "bla1"; var ips = xDoc.XPathSelectElement("//Customer[Name[text()='" + custName + "']]") .Descendants("IP") ...


-1

try this it worked for me var xml = XDocument.Load("IPs.xml"); var Ips = from ip in xml.Descendants("IP") select ip.Value; from the above code line 1 will help you load the xml using the XDocument.Load method, IPs.xml is the name of the xml file .once u have the xml loaded with the second line of code you will have ...


1

If you want to use namespaces, LINQ to XML makes that really easy: xml.Attribute(XNamespace.Xmlns + "xsi").Remove(); here final clean and universal C# solution for removing all XML namespaces: public static string RemoveAllNamespaces(string xmlDocument) { XElement xmlDocumentWithoutNs = RemoveAllNamespaces(XDocument.Load(xmlDocument).Root); ...


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you can try the following //here I suppose that I'm loading your Xelement from a file :) var xml = XElement.Load("tst.xml"); xml.RemoveAttributes(); from MSDN Removes the attributes of this XElement


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I would use xml.Attributes().Where(a => a.IsNamespaceDeclaration).Remove(). Or use xml.Attribute(XNamespace.Xmlns + "xsi").Remove().


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var query = from el in document.Root.Elements("Order") select new Orders { Id = (int)el.Element("Id"), Names = el.Elements("BillingAddress") .Select(ba=> new { FirstName = ...


1

Add a BillingAddress property to your Orders class then you can do the following: var query = from el in document.Root.Elements("Order") select new Orders { Id = (int) el.Element("Id"), BillingAddress = new BillingAddress { FirstName = (string) ...


0

Remove the unnecessary ToList call Call the Replace method only when it's necessary, and only once for element Call int.Parse method once and compare that value with from and to Also you might consider filtering the elements first, then do the projection IEnumerable<CategoryItem> alphabetItems = data.Select(x => new CategoryItem { Id ...


2

Just pass the XElement to the constructor of XDocument: var xdoc = new XDocument(new XElement("a", "b"));


4

The LineInformations are not always loaded, when you load xml via XDocument. You need to specify that you also want to load the LineInformation when you load the XML. That is done by using one of the Load methods that you can pass in a value of LoadOptions of the XDocument class. var document = XDocument.Load(file, LoadOptions.SetLineInfo);


0

From here XDocument xdoc = XDocument.Load(file); IEnumerable<XElement> nodes = xdoc.Descendants("nodeName"); foreach (XElement node in nodes) { IXmlLineInfo info = node; int lineNumber = info.LineNumber; }


1

it seems Data is already your root element. You can use root.Elements("Customer") or root.Descendants("Customer") instead. Apart from that XElement.Value property is of type string, so you don't need to call ToString on it.Also you may consider using explicit casts like (string)x.Element("Name") == old to avoid exceptions if the elements isn't found.


3

You can use this : XElement rootelement = XElement.Load(@"path_to_your_file") ; var name = rootElement.Attribute("name").Value ; var classname = rootElement.Attribute("class").Value ; var module = rootElement.Attribute("module").Value ;


0

Figured out a solution in case anyone else needs help. Controller XDocument xmlFile = XDocument.Load(@"http://na.leagueoflegends.com/en/rss.xml"); var LoLtitles = from service in xmlFile.Descendants("item") select (string)service.Element("title"); var LoLlinks = from service in xmlFile.Descendants("item") select ...


2

You need to specify namespace to get your elements: var ns = "http://schemas.microsoft.com/2003/10/Serialization/Arrays"; var elements = xdoc.Descendants(ns + "KeyValueOfstringint"); For more information about xml namespaces take a look at: Working with XML Namespaces


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i am using mono 3.6 (= very new version compiled from source) on Debian and got System.Xml.Linq working. The only problem i encountered has been that System.Xml.Linq.dll was copied local.


0

Try following: var mynode = doc.Descendants("field").Elements("field").Select(f=>f.Value);


1

you can use below menioned code var node = doc.Descendants("field").Elements("field").Select(p=>p.Value); so you will get the List of Images Name. O/P you can use it like foreach (var item in node) { string value = item.ToString(); }


0

Try to add Regex.Split to your query result : XElement rootElement = XDocument.Load(@"YourPath").Root; var images = (from title in rootElement.Elements() .Where(node => node.Attribute("name").Value.Equals("Images"))select (string)title.Value); string[] GroupsItems = Regex.Split((string)images, "png");


0

The problem lies in the fact that you don't enumerate the Images, but instead return the contents of it, which is the string you have shown. Try this one: var images = from title in doc.Root.Elements("field").Where(node => node.Attribute("name").Value.Equals("Images")).Descendants().Where( node => node.Attribute("name").Value.Equals("FileName")) ...


0

Use Split() function to get an array of string and convert it to List if necessary: pertinent to your case, string[] _arrImages = ((string)images).Split([separator]) where separator is a proper delimiter char, e.g. (' '). String array _arrImages can be converted to List<string> by applying _arrImages.ToList() function if necessary. Rgds,


0

Given the following xml: Dim xml = <Report> <File id="1"> <Variables> <Variable id="1" name="integer">1</Variable> <Variable id="1" name="string">x</Variable> </Variables> ...


1

Assuming you've already loaded your XML to XDocument instance, you can do following: var files = from f in xDoc.Root.Elements("File") where f.Element("Variables") .Elements("Variable") .Any(v => (string)v.Attribute == "string" && (string)v == "x") select f; ...


2

Use e.g. pp.Code = sec.Elements("COLUMN").First(c => c.Attribute("NAME").Value == "STOCK.STOCK_CODE").Value; and so on.


0

Simply get the response stream and deserealize into string array and store it to List Code Snippet: List<string> listNew=new List<string>(); using (Stream answer = webResponse.GetResponseStream()) { DataContractSerializer xmlSer = new DataContractSerializer(typeof(string[])); ...


1

OuterXml/InnerText methods may be slow as they need to walk XML tree and build new XML/text from all elements. It looks like you are looking for matches value of some <ID> nodes. If such nodes contain just single value and not sub-trees use XmlElement.Value. Side note: accessing XML from multiple threads with Parallel.For/Parallel.ForEach is not ...


0

In your query, you are calling ToString on an IEnumerable<XElement> which will never give you the expected result, instead look for field elements under your Root and get their value: var values = doc.Root .Elements("field") .Select(element => (string)element); If you want to access your values using the name attribute you ...


0

I think you want IEnumerable<XElement> MyElements = from e in GroupA.Elements("Element") where GroupB.Elements("Element").Any(b => b.Value == e.Value) select e;


1

You can try this out.It will return a projection with the name and food just to prove it has picked both: var query = from c in xml.Root.Elements("person") //Descendants("person") from f in c.Descendants("food") where (string)f == "apple" select new { Food = f.Value,Name = c.Element("name").Value }; Output of query: ...


0

Your code won't add "Roger", but "apple" to the resulting IEnumerable. I assume you want to select the name element of your person. As an alternative to the previous answer, you could also search for all apples and then get the name element of their parents. var result = xml.Root.Descendants("food") .Where(x=> (string)x == "apple") ...


0

Using Lambda (short cutting since apple is hard coded): var doc = XDocument.Parse(@"<root><person><name>Joe</name><food>orange</food><food>apple</food></person><person><name>Roger</name><food>apple</food></person></root>"); var results = ...


0

Several options are available, however you will like this one: http://blogs.msdn.com/b/cdndevs/archive/2013/09/27/web-essentials-for-visual-studio-open-data-made-simple.aspx It allows you to 'Copy' the xml and then 'Paste' a c# class. Serializing or deserializing will result in the xml that you used to generate that class.


1

does this help? string data = "<your xml data>"; XElement elem = XElement.Parse(data); var departments = elem.Descendants("dept").ToList(); foreach (var dept in departments) { var sLegal = dept.Elements("startDate") .First(p => p.Attribute("type").Value == "legal").Value; var eLegal = dept.Elements("endDate") ...


0

Try this one: Dim doc As XDocument = XDocument.Load("PurchaseOrder.xml") Xdocument is a class from the System.Linq namespace so from this point there are ways to access it via LINQ.


0

It can be achieved by following ways Convert your XML as DataSet() object and apply LINQ to fetch required columns (or) Apply XPATH on XMLDocument --SJ


0

You can select all classes using an absolute XPath expression: /Root/Class or a descendant axis expression like: //Class which will select a node-set containing all classes, independend of their nesting (if there are Class elements deeper in the hierarchy, they will also be selected in this case. With a positional predicate like the one suggested in ...


1

Since there is only one root, you can also use XPATH: /Class



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