Welcome to OStack Knowledge Sharing Community for programmer and developer-Open, Learning and Share
Welcome To Ask or Share your Answers For Others

Categories

0 votes
558 views
in Technique[技术] by (71.8m points)

c# - How to generate XML from JSON with parent node of array items

I am trying to create an XML document that closely conforms to a C# object graph and its JSON representation, but am having difficulty with the list representation in the XML. Given this graph

public class X
{
    public List<A> Aa { get; set; }
}

public class A
{
    public int B;
    public bool C;
}

I took the JSON from the above, and tried converting it a couple of ways:

var json = @"{""Aa"":[{""B"":186,""C"":true},{""B"":9,""C"":false},{""B"":182,""C"":true}]}";
var xml = JsonConvert.DeserializeXNode(json, typeof(T).Name, false);
var xml2 = JsonToXml(json);

This produced the following for xml (no Aa "container node"):

<X>
  <Aa><B>186</B><C>true</C></Aa>
  <Aa><B>9</B><C>false</C></Aa>
  <Aa><B>182</B><C>true</C></Aa>
</X>

And for xml2 (has "container" node, but some extra noise):

<root type="object">
  <Aa type="array">
    <item type="object">
      <B type="number">186</B>
      <C type="boolean">true</C>
    </item>
    <item type="object">
      <B type="number">9</B>
      <C type="boolean">false</C>
    </item>
    <item type="object">
      <B type="number">182</B>
      <C type="boolean">true</C>
    </item>
  </Aa>
</root>

The method used to produce the value for xml2 comes from a different approach using the .NET Framework:

    XDocument JsonToXml(string jsonString)
    {
        using (var stream = new MemoryStream(Encoding.ASCII.GetBytes(jsonString)))
        {
            var quotas = new XmlDictionaryReaderQuotas();
            return XDocument.Load(JsonReaderWriterFactory.CreateJsonReader(stream, quotas));
        }
    }

What I want to produce is

<X>
  <Aa>
    <A><B>186</B><C>true</C></A>
    <A><B>9</B><C>false</C></A>
    <A><B>182</B><C>true</C></A>
  </Aa>
</X>

I have tried changing the writeArrayAttribute parameter of DeserializeXDocument to true, but that doesn't work either. The documentation for converting between JSON and XML does not help.

How can I produce the compact version that contains the items in a parent Aa node? Is this going to require some custom deserializer?

The original JSON was created via

var json = JsonConvert.SerializeObject(new X { etc }, Formatting.None, settings);
See Question&Answers more detail:os

与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
Welcome To Ask or Share your Answers For Others

1 Answer

0 votes
by (71.8m points)

The Problem.

Your difficulty arises because there are two common ways to serialize a collection to XML, and Json.NET only supports automatic JSON-to-XML conversion for one of them.

Specifically, when serializing a c# collection to XML (with, say, XmlSerializer), the collection can be serialized either with, or without, an outer container element. The former looks like the following:

<X>
  <Aa>
    <A>
      <B>186</B>
      <C>true</C>
    </A>
    <A>
      <B>9</B>
      <C>false</C>
    </A>
  </Aa>
</X>

While the latter looks like:

<X>
  <Aa>
    <B>186</B>
    <C>true</C>
  </Aa>
  <Aa>
    <B>9</B>
    <C>false</C>
  </Aa>
</X>

When Json.NET converts a JSON array to XML elements, it uses the second format for the array, since the JSON only contains one property name while the two-level XML format requires both inner and outer element names. I.e. in your JSON:

{"Aa":[{"B":186,"C":true},{"B":9,"C":false}]}

Only the name "Aa" appears. The name "A" never does, so DeserializeXNode() cannot know to insert it. This makes the second format the straightforward choice for canonical conversion, whereas you require the first.

The Solution.

To generate a two-level XML collection from a JSON array, you'll need to either insert synthetic JSON objects before conversion, or synthetic XML elements afterwards. For the former, this can be done by parsing the JSON string to an intermediate JToken, and modifying it as follows:

var jObject = JObject.Parse(json);

jObject.SelectTokens("Aa").WrapWithObjects("A");

var finalXml = jObject.ToXElement(typeof(X).Name, false);

Using the extension methods:

public static class JsonExtensions
{
    public static void WrapWithObjects(this IEnumerable<JToken> values, string name)
    {
        foreach (var value in values.ToList())
        {
            var newParent = new JObject();
            if (value.Parent != null)
                value.Replace(newParent);
            newParent[name] = value;
        }
    }

    public static XElement ToXElement(this JObject obj, string deserializeRootElementName = null, bool writeArrayAttribute = false)
    {
        if (obj == null)
            return null;
        using (var reader = obj.CreateReader())
            return JsonExtensions.DeserializeXElement(reader, deserializeRootElementName, writeArrayAttribute);
    }

    static XElement DeserializeXElement(JsonReader reader, string deserializeRootElementName, bool writeArrayAttribute)
    {
        var converter = new Newtonsoft.Json.Converters.XmlNodeConverter() { DeserializeRootElementName = deserializeRootElementName, WriteArrayAttribute = writeArrayAttribute };
        var jsonSerializer = JsonSerializer.CreateDefault(new JsonSerializerSettings { Converters = new JsonConverter[] { converter } });
        return jsonSerializer.Deserialize<XElement>(reader);
    }
}

Alternatively, you could tell XmlSerializer to (de)serialize the Aa list without a container element by marking it with [XmlElement]:

public class X
{
    [XmlElement]
    public List<A> Aa { get; set; }
}

Now the xml generated by JsonConvert.DeserializeXNode will be deserializable directly.


与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
Welcome to OStack Knowledge Sharing Community for programmer and developer-Open, Learning and Share
Click Here to Ask a Question

...