I have data class/table "User" that has column "preferences"

CREATE table "user"; 
ALTER TABLE "user" ADD COLUMN preferences TEXT;

Preferences type is TEXT and I am storing JSON there.

public class User extends AbstractEntity{
public String preferences;
}

so user.preferences value is "{notifyByEmail:1, favouriteColor:"blue" }"

How can I wrap it with some annotation so I can access it like

user.preferences.notifyByEmail

or without need to wrap into data object

user.preferences.get("notifByEmail");
user.preferences.set("notifByEmail",true);

I imagine there could be some Jackson annotation that I can add to field like

@JsonGenerate
public String preferences;

I am fairly new to JPA and documentation is steep.

I believe my case is quite common. Can anyone give any examples?

  • What's the rationale to want to store this data as JSON Strings and not separate, distinct fields (Here, of types boolean and enum)? – Samuel Aug 14 '12 at 9:24
  • Rationale being I don't want to support every key-value preference as separate field. Preference key:values are growing and hanges and there's quite a lot of them. changing model or adding field to database for each of them is an overkill. – Roman Aug 14 '12 at 10:35
  • Have you then considered using an attribute table to story the values? The use case is indeed common, but your proposed solution is not quite fitting into a relational model. – Samuel Aug 14 '12 at 11:16
up vote 5 down vote accepted

Honestly I think your best solution is to create a separate table (preference) for your properties.

+------------+
| preference |
+------------+---------+------+-----+
| Field      | Type    | Null | Key |
+------------+---------+------+-----+
| user_id    | bigint  | NO   | PRI |
| key        | varchar | NO   | PRI |
| value      | varchar | NO   |     |
+------------+---------+------+-----+

You can map this in your entity like this:

@Entity
public class User
{
    @Id
    private Long id;

    @ElementCollection
    @MapKeyColumn(name = "key")
    @Column(name = "value")
    @CollectionTable(name = "preference",
        joinColumns = @JoinColumn(name = "user_id"))
    private Map<String, String> preferences;
}

This way your database is more normalized and you don't have to fool around with 'creative solutions' like storing preferences as JSON.

  • Thank you for providing comprehensive description. I will try it! – Roman Sep 8 '12 at 9:45
  • 9
    This does not do it the way the question requested it. – Hiram Chirino Nov 10 '13 at 17:24
  • 2
    @HiramChirino I do not see anything wrong with providing an alternative to the questioner. Especially when an alternative may provide a better solution. The questioner seemed satisfied with this solution (helpful), the answer isn't effortless or incorrect so I don't see any reason to vote down. Please see the help pages on when to vote down, for the sake of Stackoverflow. – siebz0r Nov 11 '13 at 6:24
  • So THAT's how this is done. The way I read how those mapping annotations were used always lead me to believe this type of key-value storage was impossible under JPA. Thanks. – coladict Feb 22 '16 at 9:18

Can achieve this using JPA Converter.

Entity;

@Id
@GeneratedValue
Long id;

@Column(name = "mapvalue")
@Convert(converter = MapToStringConverter.class)
Map<String, String> mapValue;

Converter:

@Converter
public class MapToStringConverter implements AttributeConverter<Map<String, String>, String> {

    ObjectMapper mapper = new ObjectMapper();

    @Override
    public String convertToDatabaseColumn(Map<String, String> data) {
        String value = "";
        try {
            value = mapper.writeValueAsString(data);
        } catch (JsonProcessingException e) {
            e.printStackTrace();
        }
        return value;
    }

    @Override
    public Map<String, String> convertToEntityAttribute(String data) {
        Map<String, String> mapValue = new HashMap<String, String>();
        TypeReference<HashMap<String, Object>> typeRef = new TypeReference<HashMap<String, Object>>() {
        };
        try {
            mapValue = mapper.readValue(data, typeRef);
        } catch (IOException e) {
            e.printStackTrace();
        }
        return mapValue;
    }

}

Saving data :

Map<String, String> mapValue = new HashMap<String, String>();
mapValue.put("1", "one");
mapValue.put("2", "two");
DataEntity entity = new DataEntity();
entity.setMapValue(mapValue);
repo.save(entity);

The value will store in DB as

{"1":"three","2":"two"}

If you really need something like that the most recommendable is to do the next:

public class User extends AbstractEntity{
  @JsonIgnore //This variable is going to be ignored whenever you send data to a client(ie. web browser)
  private String preferences;

  @Transient //This property is going to be ignored whenever you send data to the database
  @JsonProperty("preferences") //Whenever this property is serialized to the client, it is going to be named "perferences" instead "preferencesObj"
  private Preferences preferencesObj;

  public String getPreferences() {
    return new ObjectMapper().writeValueAsString(preferencesObj);
  }

  pbulic void setPreferneces(String preferences) {
    this.preferences = preferences;
    this.preferncesObj = new ObjectMapper().readValue(preferences, Preferences.class);
  }

  pubilc Preferences getPreferencesObj() {
    return preferencesObj;
  }

  public void setPreferencesObj(Preferences preferencesObj) {
    this.preferencesObj = preferencesObj;
  }
}

Additional Notes:

  • Maybe the private property "preferences" could be deleted and only use getter and setter.
  • I haven't test that code.
  • The above code is intended to use Jackson ObjectMapper and Hibernate module.
  • can u please provide the example of JSON Array as well. I ve been struggling deserializing JSON Array with annotaion. – Azerue Aug 21 '16 at 16:32
  • Would this not require a Class called Preferences which needs all the different preferences that a User can have? – Christian Dec 27 '17 at 10:25
  • yes. If you prefer something dynamic, you better use a map instead. – Luis Vargas Jan 30 at 19:37

As I explained in this article, it's very easy to persist JSON object using Hibernate.

You don’t have to create all these types manually, you can simply get them via Maven Central using the following dependency:

<dependency>
    <groupId>com.vladmihalcea</groupId>
    <artifactId>hibernate-types-52</artifactId>
    <version>${hibernate-types.version}</version> 
</dependency> 

For more info, check out the hibernate-types open-source project.

Now, you need to declare the new type on either class level or in a package-info.java package-level descriptior:

@TypeDef(
    name = "jsonb-node", 
    typeClass = JsonNodeBinaryType.class
)

And the entity mapping will look like this:

@Type(type = "json-node")
@Column(columnDefinition = "json")
private JsonNode preferences;

That's it!

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