我使用SVCUTIL生成一个XSD类。我很难搞清楚如何获取传入的请求对象并从对象中检索“MsgType”值。
我想通过这样做我只能使用:
来访问数据request.Request.MsgType
然而,事实并非如此简单。唯一的选择“请求”给我的是: 等于 GetHashCode的 的getSchema 的GetType 节点 ReadXML的 的ToString 中WriteXML
为了访问MsgType,是否需要对序列化对象进行某种转换?
public ServiceProviderTic callRequestFunc(ServiceProviderTic request) {
//How do I get request.Request.MsgType Value?
}
生成的类中的根元素:
using System.Runtime.Serialization;
[assembly: System.Runtime.Serialization.ContractNamespaceAttribute("", ClrNamespace="")]
[System.Diagnostics.DebuggerStepThroughAttribute()]
[System.CodeDom.Compiler.GeneratedCodeAttribute("System.Runtime.Serialization", "3.0.0.0")]
[System.Runtime.Serialization.DataContractAttribute(Name="RequestType", Namespace="")]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(ResponseType))]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(DateTimeInfoType))]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(OriginType))]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(LocaleInfoType))]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(ProductType))]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(ValueType))]
[System.Runtime.Serialization.KnownTypeAttribute(typeof(AuthInfoType))]
public partial class RequestType : object, System.Runtime.Serialization.IExtensibleDataObject
{
private RequestType.MsgTypeType MsgTypeField;
[System.Runtime.Serialization.DataMemberAttribute(IsRequired=true)]
public RequestType.MsgTypeType MsgType
{
get
{
return this.MsgTypeField;
}
set
{
this.MsgTypeField = value;
}
}
[System.Runtime.Serialization.DataContractAttribute(Name="RequestType.MsgTypeType", Namespace="")]
public enum MsgTypeType : int
{
[System.Runtime.Serialization.EnumMemberAttribute()]
act = 0
}
}
[System.Diagnostics.DebuggerStepThroughAttribute()]
[System.CodeDom.Compiler.GeneratedCodeAttribute("System.Runtime.Serialization", "3.0.0.0")]
[System.Xml.Serialization.XmlSchemaProviderAttribute("ExportSchema")]
[System.Xml.Serialization.XmlRootAttribute(IsNullable=false)]
public partial class ServiceProviderTic : object, System.Xml.Serialization.IXmlSerializable
{
private System.Xml.XmlNode[] nodesField;
private static System.Xml.XmlQualifiedName typeName = new System.Xml.XmlQualifiedName("ServiceProviderTic", "");
public System.Xml.XmlNode[] Nodes
{
get
{
return this.nodesField;
}
set
{
this.nodesField = value;
}
}
public void ReadXml(System.Xml.XmlReader reader)
{
this.nodesField = System.Runtime.Serialization.XmlSerializableServices.ReadNodes(reader);
}
public void WriteXml(System.Xml.XmlWriter writer)
{
System.Runtime.Serialization.XmlSerializableServices.WriteNodes(writer, this.Nodes);
}
public System.Xml.Schema.XmlSchema GetSchema()
{
return null;
}
public static System.Xml.XmlQualifiedName ExportSchema(System.Xml.Schema.XmlSchemaSet schemas)
{
System.Runtime.Serialization.XmlSerializableServices.AddDefaultSchema(schemas, typeName);
return typeName;
}
XML:
<ServiceProviderTic>
<Request>
<MsgType>act</MsgType>
XSD架构
<xs:schema xmlns:xs="http://www.w3.org/2001/XMLSchema" elementFormDefault="qualified" attributeFormDefault="unqualified">
<xs:element name="ServiceProvideTic" nillable="false">
<xs:annotation>
<xs:documentation></xs:documentation>
</xs:annotation>
<xs:complexType>
<xs:sequence>
<xs:element name="Version" type="xs:string" nillable="false"/>
<xs:choice>
<xs:element name="Request" type="RequestType" nillable="false"/>
<xs:element name="Response" type="ResponseType" nillable="false"/>
</xs:choice>
</xs:sequence>
</xs:complexType>
</xs:element>
<xs:complexType name="RequestType">
<xs:annotation>
<xs:documentation> Request Information</xs:documentation>
</xs:annotation>
<xs:sequence>
<xs:element name="MsgType" nillable="false">
<xs:simpleType>
<xs:restriction base="xs:string">
<xs:enumeration value="act"/>
答案 0 :(得分:0)
查看有关创建支持XML和JSON的REST Web服务的一些好建议here(参见WebHttpBehavior类)
除此之外,我不知道如何制作你的XSD。
答案 1 :(得分:0)
经过几天的学习和弄清楚如何访问数据而不用旧时尚的方式。以下是我的想法:
Microsoft提供了一个XSD和SVCUTIL,用于将xsd转换为类并使其可序列化。我被困在这个项目上的原因是因为复杂的类型,我以前从未这样做过。我用过:
命令提示符: XSD.exe ServiceProviderTic.xsd / CLASSES
生成了ServiceProviderTic.cs
我创建了一个Web服务:
接口:
[OperationContract]
[WebInvoke(Method = "POST", UriTemplate="/MyService", RequestFormat = WebMessageFormat.Xml, ResponseFormat = WebMessageFormat.Xml, BodyStyle = WebMessageBodyStyle.Bare)]
XElement callRequestFunc(XElement request);
类别:
public XElement callRequestFunc(XElement request)
{
ServiceProviderTic requestSer = Utility.DeserializeData(request);
if (requestSer.Item.GetType() == typeof(RequestType))
{
RequestType reqObj = (RequestType)requestSer.Item;
string datapiece = reqObj.MsgType.ToString();
}
XElement responseSer = Utility.SerializeData(requestSer);
return responseSer;
}
}
XElement帮助我接受普通的旧xml(POX)并使用普通的旧xml进行响应。下面是帮助函数,它序列化和反序列化我的xelement。我还包括额外的代码,删除了我不需要的命名空间。
public class Utility
{
public static ServiceProviderTic DeserializeData(XElement request)
{
var ser = new XmlSerializer(typeof(ServiceProviderTic));
return (ServiceProviderTic)ser.Deserialize(request.CreateReader());
}
public static XElement SerializeData(ServiceProviderTic response)
{
using (var memoryStream = new MemoryStream())
{
using (TextWriter streamWriter = new StreamWriter(memoryStream))
{
var xmlSerializer = new XmlSerializer(typeof(ServiceProviderTic));
xmlSerializer.Serialize(streamWriter, response);
return Utility.RemoveAllNamespaces(XElement.Parse(Encoding.ASCII.GetString(memoryStream.ToArray())));
}
}
}
public static XElement RemoveAllNamespaces(XElement source)
{
return !source.HasElements
? new XElement(source.Name.LocalName)
{
Value = source.Value
}
: new XElement(source.Name.LocalName, source.Elements().Select(el => RemoveAllNamespaces(el)));
}
}
我希望这有助于将来的某个人!