问题
I have the following arbitrary JSON object(The field names may be changed).
{
firstname: "Ted",
lastname: "Smith",
age: 34,
married : true
}
-
public JsonResult GetData(??????????){
.
.
.
}
I know that I can define a class just like the JSON object with the same field names as the argument, But I would like my controller to accept arbitrary JSON object with different field names.
回答1:
If you want to pass custom JSON object to MVC action then you can use this solution, it works like a charm.
public string GetData()
{
// InputStream contains the JSON object you've sent
String jsonString = new StreamReader(this.Request.InputStream).ReadToEnd();
// Deserialize it to a dictionary
var dic =
Newtonsoft.Json.JsonConvert.DeserializeObject<Dictionary<String, dynamic>>(jsonString);
string result = "";
result += dic["firstname"] + dic["lastname"];
// You can even cast your object to their original type because of 'dynamic' keyword
result += ", Age: " + (int)dic["age"];
if ((bool)dic["married"])
result += ", Married";
return result;
}
The real benefit of this solution is that you don't require to define a new class for each combination of arguments and beside that, you can cast your objects to their original types easily.
UPDATED
Now, you can even merge your GET and POST action methods since your post method doesn't have any argument any more just like this :
public ActionResult GetData()
{
// GET method
if (Request.HttpMethod.ToString().Equals("GET"))
return View();
// POST method
.
.
.
var dic = GetDic(Request);
.
.
String result = dic["fname"];
return Content(result);
}
and you can use a helper method like this to facilitate your job
public static Dictionary<string, dynamic> GetDic(HttpRequestBase request)
{
String jsonString = new StreamReader(request.InputStream).ReadToEnd();
return Newtonsoft.Json.JsonConvert.DeserializeObject<Dictionary<string, dynamic>>(jsonString);
}
回答2:
Have a ViewModel with the same signature and use that as the argument type.Model binding will work then
public class Customer
{
public string firstname { set;get;}
public string lastname { set;get;}
public int age{ set;get;}
public string location{ set;get;}
//other relevant proeprties also
}
And your Action method will look like
public JsonResult GetData(Customer customer)
{
//check customer object properties now.
}
回答3:
you can also use this in MVC 4
public JsonResult GetJson(Dictionary<string,string> param)
{
//do work
}
来源:https://stackoverflow.com/questions/12069171/pass-json-object-to-mvc-controller-as-an-argument