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Hi I am trying to create web api that I can call to view all the documents in the MongoDB, now the documents are very large and are heavily nested, I have Managed to return the document but in Json with the headers in XML.

I need to return this entire thing in Json!

This code takes the BsonDocument Product and returns this as Json because without this I get an error:

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

[DataMember]
        public string Product
        {
            get { return Product .ToJson(); }
            set { Product = BsonDocument.Parse(value); }
        }

Here is a sample of the Document(This is a basic example, the actual document is much larger with deeper levels:

{
    "product": {
        "Type": "Phone",
            "Size": {
            "Height": 10,
                "Lenght": 5,
                "Weight": 30
        }
        "Make": "Apple"
        "Model": {
            "Name": "IPhone",
                "Range": "4s"
        }

    }
}

it returns as

<Product>
{"product": {"Type": "Phone","Size": {"Height": 10,"Lenght": 5,"Weight": 30}"Make": "Apple", "Model": {"Name": "IPhone","Range": "4s"}}}
</Product>

How do i fix this?

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1 Answer 1

up vote 1 down vote accepted

How do i fix this?

Like this:

public HttpResponseMessage Get()
{
    MyViewModel model = ...
    // This will contain the JSON you want to return to the client
    string product = model.Product;

    var response = new HttpResponseMessage();
    response.Content = new StringContent(product, Encoding.UTF8, "application/json");
    return response;
}
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Thanks for the speedy response, do I put this in my product class which contains the first snippet of code in my question? –  Mike Barnes Jan 25 '13 at 12:05
1  
No, you put this in your Web API controller action which is supposed to serve this JSON. –  Darin Dimitrov Jan 25 '13 at 12:08
    
I see, so what would MyViewModel be? –  Mike Barnes Jan 25 '13 at 12:13
1  
I don't know. That's up to you. The important thing is to have some string property containing the JSON that you would pass to the StringContent constructor as shown in my answer. Where this is coming from is entirely your business. –  Darin Dimitrov Jan 25 '13 at 12:19
    
Thanks dude!! very helpful! –  Mike Barnes Jan 25 '13 at 12:20
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