48

I have a string that comes out of a database which is in Json format.

I have tried to deserialize it with:

RestSharp.Deserializers.JsonDeserializer deserial = new JsonDeserializer();
var x = deserial .Deserialize<Customer>(myStringFromDB)

But the .Deserialize function expects an IRestResponse

Is there a way to use RestSharp to just deserialize raw strings?

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  • 1
    I feel your pain
    – Andy
    Mar 10, 2017 at 10:25

2 Answers 2

64

There are sereval ways to do this. A very popular library to handle json is the Newtonsoft.Json. Probably you already have it on your asp.net project but if not, you could add it from nuget.

Considering you have a response object, include the following namespaces and call the static method DeserializeObject<T> from JsonConvert class:

using Newtonsoft.Json;
using RestSharp;
return JsonConvert.DeserializeObject<T>(response.Content);

On the response.Content, you will have the raw result, so just deserialize this string to a json object. The T in the case is the type you need to deserialize.

For example:

var customerDto = JsonConvert.DeserializeObject<CustomerDto>(response.Content);

Update

Recently, Microsoft has added a namespace System.Text.Json which handle json format on the .Net platform. You could use it calling the JsonSerializer.Deserialize<T> static method:

using System.Text.Json;
var customer = JsonSerializer.Deserialize<Customer>(jsonContent);
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    The RestSharp serializer and deserializer was the problem. By using Newton soft the problem went away.
    – Ian Vink
    May 13, 2013 at 22:29
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    @BahaiResearch.com It's not that RestSharp's serializer/deserializer has/is a problem per se; it just doesn't have the functionality you need, since RestSharp is an http client library not a general serialization tool. As you pointed out it requires an IRestResponse, as opposed to let's say supporting an IRestResponse.Content (string type) as well. StevieJ81 below points out a potential way workaround if for some reason you want to or must use RestSharp for json deserialization: he directly plugs IRestResponse.Content.
    – Matthew
    Dec 26, 2015 at 20:00
57

If you want to avoid using extra libraries, try this:

RestSharp.RestResponse response = new RestSharp.RestResponse();

response.Content = myStringFromDB; 

RestSharp.Deserializers.JsonDeserializer deserial = new JsonDeserializer();

Customer x = deserial.Deserialize<Customer>(response);

Caveats apply - not extensively tested - but seems to work well enough.

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  • Works great. One less library I have to include in my application.
    – Brad Bruce
    Feb 5, 2017 at 15:56
  • 8
    In the version of RestSharp I'm using it looks like the JsonDeserializer class has been moved to RestSharp.Serialization.Json.JsonDeserializer
    – Michael
    Aug 16, 2019 at 17:23
  • I don't think this is valid anymore, at least for version "100.6.10" Oct 1, 2019 at 20:44
  • 1
    In my case the RestSharp deserializer handles funky object names in the json content much better than the Newtonsoft deserializer, so that's another argument not to include another library just for this. Oct 25, 2019 at 15:38

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