0

I'd like to map this JSON Data:

{"information":{
     "type": "typeA",
     "date": "2018-01-15 12:11:53",
     "user":{
         "name": "John"
         "lastName": "Doe"
     }
}}

To this java object:

@JsonIgnoreProperties(ignoreUnknown = true)
@JsonInclude(JsonInclude.Include.NON_NULL)
public class InformationModel {
    private String name;
    private String lastName;

    private String type;
    private String date;
}

But it fails and all the values are null. I tried adding @JsonProperty("information.type") above the type variable but without succes.

Is it possible to deserialize the JSON so that it maps to just (this) one class?

EDIT: I am using Spring StreamListener to do the mapping like this:

@StreamListener(value = Sink.INPUT)
public void on(InformationModel message) throws IOException {
    // some code using message
}
1

I must admit i don't know much about Spring so my answer might well be off the mark, but since you have tagged your question with java, here is my answer (using org.json):

String jsonString = "{\"information\":{\"type\": \"typeA\",\"date\": \"2018-01-15 12:11:53\",\"user\":{\"name\": \"John\",\"lastName\": \"Doe\"}}}";

JSONObject o = new JSONObject(jsonString);

JSONObject obj = o.getJSONObject("information");
String date = obj.getString("date");
//map whatever you want to map here.    
System.out.println(date);

Obviously it's pretty basic, but you get the idea. You could probably achieve the same with JSONArray.

Hope it helps!

1

We have several approaches for solving this problem. As explained here. .I have tried using Mapping with annotations but it didn't worked for me. What worked is JsonNode as explained below.

1 InformationModel.java

`@JsonIgnoreProperties(ignoreUnknown = true)
@JsonInclude(JsonInclude.Include.NON_NULL)
public class InformationModel {
private String type;
private String date;
private String lastName;
private String name;
//getters and setters
}
`

[2] TestDemo.java

    public class TestDemo { 
    public static void main(String args[]) throws JsonParseException,
            JsonMappingException, IOException { 
        ObjectMapper mapper = new ObjectMapper();
        JsonNode j = mapper.readTree(new File("information.json"));
        InformationModel m = new InformationModel();
        m.setType(j.get("information").get("type").textValue());
        m.setDate(j.get("information").get("date").textValue());
        m.setName(j.get("information").get("user").get("name").textValue());
        m.setLastName(j.get("information").get("user").get("lastName").textValue());        
        mapper.writeValue(new File("outputfile.json"), j);
    }
}
1

you can use Gson . there is a good tutorial here you can take advantage of custom serialization.

if you want to use your current POJO structure follow this : code to deserialize json

    GsonBuilder gsonBuilder = new GsonBuilder();

JsonDeserializer<UserDate> deserializer = InformationModelDeserializer() ; 
// implementation detail  
gsonBuilder.registerTypeAdapter(InformationModel .class, deserializer);

Gson customGson = gsonBuilder.create();  
InformationModel customObject = customGson.fromJson(yourJson, InformationModel .class);  

code for the InformationModelDeserializer.java

public class InformationModelDeserializer implements JsonDeserializer<InformationModel > {  
@Override
public InformationModel deserialize(JsonElement json, Type typeOfT, JsonDeserializationContext context) throws JsonParseException {
    //intercept the json to convert it to your desired shape
    JsonObject jsonObject = json.getAsJsonObject();
    JsonObject userJsonObject json.getAsJsonObject("user")


    return new InformationModel (
        userJsonObject.get("name").getAsString(),
        userJsonObject.get("lastname").getAsString(),
        jsonObject.get("type").getAsString(),
        jsonObject.get("date").getAsString(),

    );
}
}

finally put this @anotaion before your InformationModel class @JsonAdapter(InformationModelDeserialize.class)


or easily change your POJO to

Information.java

public class Information {
    private String type;
    private String date;

    private User user;

    //.....
}

User.java

public class User {
    private String name;
    private String lastName;

  // .....
 }

and easily deesrealize :

Information info=new Gson().fromJson(yourJson,Information.class);
0

So it seems the only solution is to have the same class structure as the JSON (left out the imports and packages for readability):

InformationModel.java

@JsonIgnoreProperties(ignoreUnknown = true)
@JsonInclude(JsonInclude.Include.NON_NULL)
public class InformationModel {
    private Information information;

    //Getter and Setter
}

Information.java

@JsonIgnoreProperties(ignoreUnknown = true)
@JsonInclude(JsonInclude.Include.NON_NULL)
public class Information {
    private String type;
    private String date;

    private User user;

    //Getters and Setters
}

User.java

@JsonIgnoreProperties(ignoreUnknown = true)
@JsonInclude(JsonInclude.Include.NON_NULL)
public class User {
    private String name;
    private String lastName;

    //Getters and Setters
}

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