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i know there is other places that give this answer but what i am trying to achieve is more complicated, this is my code for deserialization :

this is the json data for exemple :

data = @"{""ShiftID"":""2"",""EmpName"":""dsdsfs""}";

Dictionary<string, string> values = JsonConvert.DeserializeObject<Dictionary<string, string>>(data);
List<string> list = new List<string>(values.Keys);
// Loop through list
foreach (string k in list)
{
    System.Diagnostics.Debug.Print("'{0}', '{1}'", k, values[k]);
}

this will return ShiftID,2 and EmpName, dsdsfs like you know but!

What happen if my json string look like this with multiple values :

data = @"{""ShiftID"":""2"",""EmpName"":""dsdsfs""},{""ShiftID"":""4"",""EmpName"":""dsdsfd""}";

Thanks!

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2 Answers

What happen if my json string look like this with multiple values

data = @"{""ShiftID"":""2"",""EmpName"":""dsdsfs""}, {""ShiftID"":""4"",""EmpName"":""dsdsfd""}";

An error because this is not valid JSON. You probably meant:

data = @"[{""ShiftID"":""2"",""EmpName"":""dsdsfs""},{""ShiftID"":""4"",""EmpName"":""dsdsfd""}]";

Now you could deserialize into an array of dictionaries:

var values = JsonConvert.DeserializeObject<Dictionary<string, string>[]>(data);
foreach (var element in values)
{
    foreach (var entry in element)
    {
        System.Diagnostics.Debug.Print("'{0}', '{1}'",
            entry.Key,
            entry.Value
        );
    }
}

or even better, define a model to represent your entities:

public class Employee
{
    public string ShiftID { get; set; }
    public string EmpName { get; set; }
}

and now deserialize into a list of employees:

var employees = JsonConvert.DeserializeObject<Employee[]>(data);
foreach (var employee in employees)
{
    System.Diagnostics.Debug.Print("'{0}', '{1}'",
        employee.ShiftID,
        employee.EmpName
    );
    }
}
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your a pro! thanks –  user181248 Mar 14 '12 at 18:36
    
Well i get the values but not the columns? you got an idea –  user181248 Mar 14 '12 at 19:11
    
I need to get the value ShiftID and EmpName because it will always be something different –  user181248 Mar 14 '12 at 19:19
    
and also your first code doesnt work –  user181248 Mar 14 '12 at 19:19
    
@user181248, I have fixed my first code. It should be foreach (var entry in element) instead of foreach (string entry in element). –  Darin Dimitrov Mar 14 '12 at 20:31
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Thats invalid JSON. I think what you are looking for is a JSON array, which would enclose the entire string you have within brackets... [{"ShiftID": "2",...},{"ShiftId": "3",...}]

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