Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to return the following sample class by an ApiController, which is probably just JSON.NET serialized, but I want to avoid just converting the whole class to a json-string.

public class Report
{
    [BsonId, JsonIgnore]
    public ObjectId _id { get; set; }

    public string name { get; set; }

    public BsonDocument layout { get; set; }
}

Now I have looked at several ways but only one worked so far, which is creating a second class and map manually between the two by converting the layout-property to a json-string like this:

layout.ToJson();

This seems not very elegant and I'm wondering if there is a better way. None of the following ideas work for various reasons:

public class Report
{
    [BsonId, JsonIgnore]
    public ObjectId _id { get; set; }

    public string name { get; set; }

    [JsonIgnore]
    public BsonDocument layout { get; set; }

    [JsonProperty(PropertyName = "layout")]
    public string layout2JSON()
    { 
        return layout.ToJson();
    }
}

Or:

public class Report
{
    [BsonId, JsonIgnore]
    public ObjectId _id { get; set; }

    public string name { get; set; }

    public BsonDocument layout 
    { 
        get 
        {
            return layout.ToJson();
        }
        set; 
    }
}

I'm pretty new to C# and might easily miss obvious answers.

share|improve this question

2 Answers 2

up vote 2 down vote accepted

If I understand your question correctly, you're just looking to get layout as JSON correct? I'm not 100% I can see what output you're trying to achieve, but if so, your second code sample was already very close, try this;

public class Report
{ 
     [BsonId, JsonIgnore]
     public ObjectId _id { get; set; }

     public string name { get; set; }

     [JsonIgnore]
     private BsonDocument layout { get; set; }

     [BsonIgnore]
     [JsonProperty(PropertyName = "layout")]
     public string layout2JSON
     { 
         get { return layout.ToJson(); }
     }
}
share|improve this answer
    
Correct, I'm trying to get the whole object as json, but JSON.NET does not serialize a BsonDocument out-of-the-box and gives me an error. Your solution works. Thanks! –  Benjamin E. Oct 14 '12 at 0:42

I found I was able to return BSON documents directly from an Api Controller by returning them as IDictionaries. You should be able to do something similar by declaring a layout property as an IDictionary. This trick allows you to really easily get data in and out of MongoDB since there is also a BsonDocument constructor that takes an IDictionary.

    public IEnumerable<IDictionary> Get()
    {
        using (var mongo = new Mongo())
        {
            var collection = mongo.GetCollection<BsonDocument>("Report");

            var cursor = collection.FindAll();
            cursor.SetFields(_summaryFields); 
            int i = 0;
            foreach (var doc in cursor)
            {
                i++;
                yield return doc.ToDictionary();
            }
        }        
    }
share|improve this answer
    
Your code only retrieves a list or an array, but not an unstructured object, right? Or is there a way to make Dictionary handle an unknown and unstructured object? –  Benjamin E. Oct 19 '12 at 10:53
    
It handles an arbitrary BsonDocument as it is. I pasted this from working code and my document has multiple levels of nesting including array child elements. The BsonDocument.ToDictionary() performs a deep conversion to a dictionary hierarchy and the JSON.Net serializer properly emits JSON for this dictionary hierarchy. –  Kevin English Oct 20 '12 at 1:09
    
It seems I got it working using type IDictionary<string, object> in the model and returning the layout object via .ToDictionary() Thanks very much! –  Benjamin E. Oct 20 '12 at 15:05

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.