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How to skip/ignore/handle invalid json objects in Newtonsoft JSON?

Let's say we have string like:

[{
    "$id": "xc1",
    "sdfdsgds0sdfsadgdxc,sfgsagdfgdsfdm",
    "gxcgdfs"
}, {
    "$id": "2",
    "Property1": "Value",
    "Property2": "Value2"
}]

While doing

JsonConvert.DeserializeObject<T>(jsonString);

So the first object is invalid but I would like to read second valid one, but I've got JsonReaderException, is there a way to achieve ignoring/skipping invalid objects in array and go further with deserialization?

7
  • does this answer your question stackoverflow.com/questions/26107656/…
    – Kaj
    Commented Feb 28, 2020 at 12:12
  • Might be this will help you stackoverflow.com/questions/36576928/… Commented Feb 28, 2020 at 12:18
  • Does this answer your question? Ignore parsing errors during JSON.NET data parsing Commented Feb 28, 2020 at 12:29
  • First approach bubble the problem as well for collection so the whole collection is null.
    – user9335104
    Commented Feb 28, 2020 at 13:12
  • 1
    It's not easy when the JSON itself is malformed (which it is in your case), rather than just invalid for the current deserialization target. JsonTextReader is a state machine that maintains the current token type and a set of valid transitions, and if the JSON token stream does not conform to the JSON standard the parser will not know what to expect next. (In your case there is a property name but no value). Continuing onward becomes problematic in such situations.
    – dbc
    Commented Feb 28, 2020 at 15:40

1 Answer 1

1

I have use JsonSerializerSettings class for determine errors while getting serialize JSON string.

var settings = new JsonSerializerSettings
{
    Error = (obj, args) =>
    {
        var contextErrors = args.ErrorContext;
        contextErrors.Handled = true;
    }
};
var result = streamReader.ReadToEnd();
List<ViewModel> viewModel = JsonConvert.DeserializeObject<List<viewModel>>(result, settings);
3
  • This will set the collection to null, it won't get a second item.
    – user9335104
    Commented Feb 28, 2020 at 13:23
  • You have make view model for constant JSON object. In my case my model is public class ViewModel { public string Property1 { get; set; } public string Property2 { get; set; } } If mentioned properties was not found, then that properties will be excluded. Commented Feb 28, 2020 at 13:57
  • The object won't be even created. First object will throw 2 errors one for invalid object second for collection, but I don't see the way to continue deserializing.
    – user9335104
    Commented Feb 28, 2020 at 14:09

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