Tag Info

New answers tagged

3

The problem appears to be caused by your use of LoadOptions.PreserveWhitespace. This seems to trump XmlWriterSettings.Indent - you've basically said, "I care about this whitespace"... "Oh, now I don't." If you remove that option, just using: XDocument xDoc = XDocument.Load(path); ... then it indents appropriately. If you want to preserve all the original ...


0

According to the XML specification attribute value are normalized when parsing a document. The normalization replaces all newline character in attribute values with blank characters (#x20). Note that this normalization happens already when you create the XDocument, not when you write it back to a file and that it is totally conformant to the XML ...


2

Linq to Xml approach - get all elements under root (gives you both Aggregation and Interpolation) and get 'method' attribute values from each element: var xdoc = XDocument.Load(xmlFile); var methods = xdoc.Root.Elements() .Select(e => (string)e.Attribute("method")) .Distinct(); Output: [ "summation", "linear" ] ...


0

I know this post is a little old but I thought this may perhaps help someone coming across this post. If you want to add a third party dll to a project in unity, the best method is usually to add it to the \Assets\Plugins folder, and it'll be included automatically as a reference in your -csharp.sln file. Adding libraries this way ensures you overcome ...


3

Your data has multiple namespaces where each child is in a different namespace, you'll need to adjust your queries accordingly. ShowPositionOpening http://data.usajobs.gov DataArea http://www.hr-xml.org/3 Show http://www.openapplications.org/oagis/9 var namespaceManager = new XmlNamespaceManager(new NameTable()); ...


2

I would actually think about readability before performance, unless you know you have a performance issue. But even so, you can definitely improve the code. I would consider using ToDictionary to convert each detail element into a Dictionary<string, string>, then you can get the bits you want: var query = details.Select(d => d.Elements("node") ...


0

Try this:- var result = xdoc.Root.Descendants("states") .GroupBy(x => x.Element("state").Attribute("id").Value) .Select(x => x.First()); If you want to fetch the elements instead of nodes, you can use anonymous types like this:- var result = xdoc.Root.Descendants("states") .GroupBy(x ...


1

Well it's not quite as you were asking for, but this does replace an element with a commented version: using System; using System.Xml.Linq; public class Test { static void Main() { var doc = new XDocument( new XElement("root", new XElement("value1", "This is a value"), new XElement("value2", ...


1

Given that you appear to simply be deserializing the entire Xml Structure into a, I believe Xml Deserialization is a better strategy for what you are attempting: Given the below DTO structures (noting also that ParentMenu items have no wrapper): public class Submenu { public string SubName { get; set; } } public class ParentMenu { public string ...


0

You can get that value even without explicit LINQ query (and it looks more elegant for me) like this: var value = your_XElement .XPathSelectElement("Property[@name='IDValue2']") .Attribute("value") .Value;


2

XElement class provides Value property. You can use it to get the text associated with the element: IEnumerable<string> meID = from el in linkedTeethInfo.DescendantsAndSelf("Property") where (string)el.Attribute("name") == "IDValue2" select el.Attribute("value").Value; You could also cast your attribute to string the way you did in the ...


0

For read/write on XML file, I use XMLSerializer. It's very simple : You have to create a class : public class Supplier { public int ID {get;set;} public int AccountingUnitId {get;set;} public string ShortName {get;set;} public int AccountNumber {get;set;} public string BankAddress {get;set;} public string SupplierAddress {get;set;} ...


0

There's a couple of problems : Supplier is in namespace xmlns="http://www.example.com/xsd/2012/09/, yet you are defineing XNamespace ns = "http://www.example.com/xsd/2012/09"; (note the missing trailing slash Also, several of the elements, such as DaysForDiscountFirst, DiscountPercentFirst and DiscountPercentFirst are not present in both child ...


2

Your namespace is wrong. You have: XNamespace ns = "http://www.example.com/xsd/2012/09"; But the XML specifies: http://www.example.com/xsd/2012/09/ You are missing the trailing /, which will prevent any elements from matching. Once that's corrected, you will also need to consider the root "Supplier" node; you don't have to get to it by name, but you ...


1

XContainer.Elements(name) only looks for the named elements amongst its immediate children. But there is no TermsOfPayment that is a child of the document root. Perhaps you wamt: …XElement.Parse(textresult).Elements(ns+"Supplier").Elements(ns+"TermsOfPayment")


0

I'm not certain it's an answer to the above, but it certainly is a solution. I am using the xsd converter to turn the xml to an xsd file and then convert the xsd file to a c# sharp class that can be used to load the xml and perform subsequent processing.


0

You can use the Attribute method doc.XPathSelectElement("/items/item[att='102']").Attributes().First(o=> o.Name == "some").Value;


1

Use XElement item = xdoc.Root.Elements("item").FirstOrDefault(i => (string)i.Attribute("att") == "102"); if (item != null) { string s = (string)item.Attribute("some"); } else { // treat case that no matching item was found }


0

This generally happens if you are trying to create XML file with spaces in any of its XElement/ nodes. Make sure you don't have any spaces in Xml Node Names. Example: This will throw error as there is a space in "Account Number" XElement or node,which is not allowed in XML. XDocument xdoc = new XDocument( new ...


0

This solution creates an object, saves it to the xml file, sets it to nothing, then loads it back from the xml file. Make a new console app and overwrite all the code with what you see below. Bonus: ToArray() is used to prove that the class' list member is IEnumerable Imports System.Xml.Serialization Imports System.IO Module Module1 Private targets ...


1

Your original code was only missing the declaration of cert: foreach (var certcard in xdoc.Root.Element("Diver").Element("Certifications") .Elements("Certification_Card")) { var cert = new Cert(); cert.Level = certcard.Element("Level").Value; cert.Agency = certcard.Element("Agency").Value; cert.Number = ...


0

Try this : foreach (var certcard in xdoc.Root.Element("Diver").Element("Certifications") .Elements("Certification_Card")) { certlist.Add(new Cert() { Level = certcard.Element("Level").Value, Agency = certcard.Element("Agency").Value, Number = certcard.Element("Number").Value, ...


0

My guess is that "Digital_Scuba_Log" is the root node of your XML. In that case, when you use xdoc.Root, you're already traversing into that node. Here are 2 ways to do it based on your XML. "Digital_Scuba_Log" as your root node: XDocument xDoc2 = ...


1

var xml = @" <root> <Object type=""element""> <Property name=""test1"" value=""testvalue1""/> <Property name=""test2"" value=""testvalue2""/> <Property name=""test3"" value=""testvalue3""/> </Object> <Object ...


0

I did like this string distributorInfo = string.Empty; XDocument distributors = new XDocument(); //below is important else distributors.Declaration.ToString() throws null exception distributors.Declaration = new XDeclaration("1.0", "utf-8", "yes"); XElement rootElement = new XElement("Distributors"); XElement ...


0

In my case I was trying to add more than one XElement to xDocument which throw this exception. Please see below for my correct code which solved my issue string distributorInfo = string.Empty; XDocument distributors = new XDocument(); XElement rootElement = new XElement("Distributors"); XElement distributor = null; ...


1

First you don't really need the Node or ListNode classes. You should be able to get the same results using KeyValuePair<string,string> (or Tuple<string,string>) and List<KeyValuePari<string,string>> (or List<Tuple<string,string>>). Here's how you can get your desired results as a List<List<KeyValuePair>> ...


0

You've not really said where you're stuck... Anyway, this should do the trick. var xdoc = XDocument.Load("Test.xml"); var listNodeDetails = xdoc.Root .Elements("detail") .Elements("node").Select( n => new Node { Key = n.Element("key").Value, Value = n.Element("value").Value }).ToList();


2

You have an xml namespace in your document.All the child elements of AccountingUnitList inherits the namespace so you need to specify it via element name: XNamespace ns = "http://www.google.com"; var accountingunit = ( from e in XDocument.Parse(textresult).Elements(ns + "AccountingUnit") select new node { ...


0

My problem is that i only get the data from 6:00 and don´t know how to get the data from 17:00 or 23:00 Seems like you should have a condition in your xpath, for ex., string wind = doc.XPathSelectElement("/city/forecast/date/time[@value='17:00']/ws") .Value + " km/h"; (See [@value='17:00']) If you want to get all values then you ...


0

If what you want to do is perform a query over your XML for a specific time, then it is very easy to get what you want by using Linq To XML: XDocument doc = XDocument.Load(@"somePath\SO.xml"); // E.g. get ws value for time = "17:00" XElement specificElement = doc.Descendants("time") .Where(t => ...


0

Change List<Folder> folders = (from c in doc.Descendants("Folders") select new Folder() { Caption = c.Element("Folder").Attribute("Caption").Value }).ToList<Folder>(); to List<Folder> folders = (from c in ...


0

If the data can be in any format then you will have to preprocess the data before trying to parse it into a DateTime. If i were going to implement this the first thing i would do is break the input into an array of integers, if there is only one item in the array i would check the length, if it was 4 long then I would assume that it is a year and ...


0

If you know the Unicode as a hex number you can use e.g. aNode.InnerText = '\u03B1';. Or of course you can directly write aNode.InnerText = "α";. If you really want to use numeric character reference then set InnerXml, not InnerText: aNode.InnerXml = "&#x3B1;";.


0

Just set the PreserveWhitespace property of XMLDocument to false before loading xml. XmlDocument doc = new XmlDocument(); doc.PreserveWhitespace = false; doc.Load("your.xml");


0

string nameToSearch = "Restaurant12"; string xml = File.ReadAllText(<<pathtoxml>>, Encoding.Default); XmlDocument doc = new XmlDocument(); doc.LoadXml(xml); //this depends on your xml structure: i assumed that the attribute of the restaurant is name XmlNode node = doc.selectSingleNode("foodplaces/foodplace[@name = '"+nameToSearch +"']"); if(node ...


0

To remove whitespace and perhaps consider case sensitivity: where String.Equals(_foodplaces.Value.Trim(), restaurant, StringComparison.OrdinalIgnoreCase)


0

You have a few bugs here: The XML for "Restauran Italian" is not bracketed by a <foodplace> </foodplace>. It should be. You select elements named "monday", store their data in a tuesday class, them set them in the m field, which is a monday. Surely those should all be "monday". Have you even fixed your compiler errors? There are three food ...


0

I think this should do it. This assumes there will always be at least one <phone> with at least one <phonenumber> and we just want the first of each: List<Customer> customersList = ( from e in XDocument.Load(file).Root.Elements("cust") select new Customer { ...


1

Try: XDocument doc = XDocument.Load(file); XElement phoneElement = doc.Element("phone"); doc.Element("phone") will grab the first element of "phone" in the xml file. var phoneNumber = phoneElement.Attribute("phonenumber").Value.ToString(); Use the Attribute method to grab the value of the attribute.


0

As far as I am aware, you need to set the Type of the column on the datatable, otherwise it will presume string (because nearly everything can be converted as such). Before you set the values, try: dataTable.Columns[2].Type = typeof (int); or, alternatively, you can specify it when defining the columns: dataTable.Columns.Add("ShowsNumber", typeof(int)); ...


2

You need to specify the column as integer while defining the datatable. Like this:- dataTable.Columns.Add("customerID", typeof(int)); Edit: The other reason i suspect is probably the way you are binding your datatable (I mean the order of columns) doesn't match with that of database table. Reason being I think default mapping is not Name to Name rather ...


1

I created a Class with Auto Property fields as follows public class Customers { public int CustomerID {get; set;} public string FirstName { get; set; } public string LastName { get; set; } public int ShowsNumber { get; set; } public int VisitNumber { get; set; } public int Cancellation { get; set; } } next I added a path to where I am ...


2

You are selecting Element(), but custid, fname, etc.are not elements rather they are attributes. Update it like this:- List<Customer> customersList = ( from e in XDocument.Load(file).Root.Elements("cust") select new Customer { CustomerID = ...


0

a) If performance could be an issue I would suggest use XMLReader instead of LINQ. b) If the ids are unique you can update values in a Dictionary with Field_ID as key which will give you faster access. The dictionary can be built quickly using XML Reader.


5

The problem is that you're only looking at one param element - always the first one, because that's what the Element does. You want to match if any of the parameters is a "Store" element with a value of 1, so you want to use the Any method and use Elements to find all the parameters: var query = from item in doc.Descendants("order") where ...


0

internal static class ExtensionMethods { public static List<XElement> Find(this XElement _objXElement, string _strFindXName) { List<XElement> _lsXElementsFound = new List<XElement>(); try { List<XElement> _lsXElementsBundle = new List<XElement>(); ...



Top 50 recent answers are included