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Json.net is handy to deserialize object, but I don't know how to use it to deserialize some simple type, such as string, int.

Not sure if I did it right, please help, thank you!

WCF return string looks like

{"PingResult":100}

If call

int result = JsonConvert.DeserializeObject<int>(jsonString);

Unity throw

JsonReaderException: Error reading integer. Unexpected token: StartObject. Path '', line 1, position 1.
Newtonsoft.Json.JsonReader.ReadAsInt32Internal ()
Newtonsoft.Json.JsonTextReader.ReadAsInt32 ()
Newtonsoft.Json.Serialization.JsonSerializerInternalReader.ReadForType (Newtonsoft.Json.JsonReader reader, Newtonsoft.Json.Serialization.JsonContract contract, Boolean hasConverter)
Newtonsoft.Json.Serialization.JsonSerializerInternalReader.Deserialize (Newtonsoft.Json.JsonReader reader, System.Type objectType, Boolean checkAdditionalContent)
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1 Answer 1

up vote 1 down vote accepted

You are not deserializing an integer, but an object containing an integer property. You need to provide such a class for the deserialization to work, for example:

class Ping
{
    public int PingResult {get; set;}
}

and then call

Ping ping = JsonConvert.DeserializeObject<Ping>(jsonString);
int result = ping.PingResult;

Another approach would be to use the JObject api:

string json="{\"PingResult\":100}"; 
JObject jo = JObject.Parse(json); 
JToken jToken = jo["PingResult"];
int result = (int)jToken;
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Oops, I thought it might can handle this since create new class for each ain't a awesome idea especially if we have lots of method to call :p Still, it's very handy to call JObject API to do so. Thank You dude :] Codes here incase someone need it. string json="{\"PingResult\":100}"; JObject jo = JObject.Parse(json); JToken result = jo["PingResult"]; –  zhuchun Aug 8 '13 at 13:57
    
I'm glad I've helped, added your example to my answer so that it's more complete. –  elolos Aug 9 '13 at 10:16

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