69

I have model class like this, for hibernate

@Entity
@Table(name = "user", catalog = "userdb")
@JsonIgnoreProperties(ignoreUnknown = true)
public class User implements java.io.Serializable {

    private Integer userId;
    private String userName;
    private String emailId;
    private String encryptedPwd;
    private String createdBy;
    private String updatedBy;

    @Id
    @GeneratedValue(strategy = IDENTITY)
    @Column(name = "UserId", unique = true, nullable = false)
    public Integer getUserId() {
        return this.userId;
    }

    public void setUserId(Integer userId) {
        this.userId = userId;
    }

    @Column(name = "UserName", length = 100)
    public String getUserName() {
        return this.userName;
    }

    public void setUserName(String userName) {
        this.userName = userName;
    }

    @Column(name = "EmailId", nullable = false, length = 45)
    public String getEmailId() {
        return this.emailId;
    }

    public void setEmailId(String emailId) {
        this.emailId = emailId;
    }

    @Column(name = "EncryptedPwd", length = 100)
    public String getEncryptedPwd() {
        return this.encryptedPwd;
    }

    public void setEncryptedPwd(String encryptedPwd) {
        this.encryptedPwd = encryptedPwd;
    }

    public void setCreatedBy(String createdBy) {
        this.createdBy = createdBy;
    }

    @Column(name = "UpdatedBy", length = 100)
    public String getUpdatedBy() {
        return this.updatedBy;
    }

    public void setUpdatedBy(String updatedBy) {
        this.updatedBy = updatedBy;
    }
}

In Spring MVC controller, using DAO, I am able to get the object. and returning as JSON Object.

@Controller
public class UserController {

    @Autowired
    private UserService userService;

    @RequestMapping(value = "/getUser/{userId}", method = RequestMethod.GET)
    @ResponseBody
    public User getUser(@PathVariable Integer userId) throws Exception {

        User user = userService.get(userId);
        user.setCreatedBy(null);
        user.setUpdatedBy(null);
        return user;
    }
}

View part is done using AngularJS, so it will get JSON like this

{
  "userId" :2,
  "userName" : "john",
  "emailId" : "john@gmail.com",
  "encryptedPwd" : "Co7Fwd1fXYk=",
  "createdBy" : null,
  "updatedBy" : null
}

If I don't want to set encrypted Password, I will set that field also as null.

But I don't want like this, I dont want to send all fields to client side. If I dont want password, updatedby, createdby fields to send, My result JSON should be like

{
  "userId" :2,
  "userName" : "john",
  "emailId" : "john@gmail.com"
}

The list of fields which I don't want to send to client coming from other database table. So it will change based on the user who is logged in. How can I do that?

I hope You got my question.

11 Answers 11

95

Add the @JsonIgnoreProperties("fieldname") annotation to your POJO.

Or you can use @JsonIgnore before the name of the field you want to ignore while deserializing JSON. Example:

@JsonIgnore
@JsonProperty(value = "user_password")
public java.lang.String getUserPassword() {
    return userPassword;
}

GitHub example

  • 40
    Can I do it dynamically? Not in POJO? Can I do it in my Controller class? – iCode Apr 16 '14 at 6:36
  • 3
    @iProgrammer : here is a similar as you want :stackoverflow.com/questions/8179986/… – user3145373 ツ Apr 16 '14 at 6:38
  • 3
    @iProgrammer : very impressive answer here stackoverflow.com/questions/13764280/… – user3145373 ツ Apr 16 '14 at 6:41
  • 7
    remark:@JsonIgnore is com.fasterxml.jackson.annotation.JsonIgnore not org.codehaus.jackson.annotate.JsonIgnore. – xiaohuo Jul 26 '16 at 9:51
  • 3
    That ignores both while reading from request and while sending response. I want to ignore only while sending response because i need that property from the request object. Any ideas? – zulkarnain shah Sep 8 '17 at 10:39
26

I know I'm a bit late to the party, but I actually ran into this as well a few months back. All of the available solutions weren't very appealing to me (mixins? ugh!), so I ended up creating a new library to make this process cleaner. It's available here if anyone would like to try it out: https://github.com/monitorjbl/spring-json-view.

The basic usage is pretty simple, you use the JsonView object in your controller methods like so:

import com.monitorjbl.json.JsonView;
import static com.monitorjbl.json.Match.match;

@RequestMapping(method = RequestMethod.GET, value = "/myObject")
@ResponseBody
public void getMyObjects() {
    //get a list of the objects
    List<MyObject> list = myObjectService.list();

    //exclude expensive field
    JsonView.with(list).onClass(MyObject.class, match().exclude("contains"));
}

You can also use it outside of Spring:

import com.fasterxml.jackson.databind.ObjectMapper;
import com.fasterxml.jackson.databind.module.SimpleModule;
import static com.monitorjbl.json.Match.match;

ObjectMapper mapper = new ObjectMapper();
SimpleModule module = new SimpleModule();
module.addSerializer(JsonView.class, new JsonViewSerializer());
mapper.registerModule(module);

mapper.writeValueAsString(JsonView.with(list)
      .onClass(MyObject.class, match()
        .exclude("contains"))
      .onClass(MySmallObject.class, match()
        .exclude("id"));
  • 4
    Thank you! This was the way to go for me. I needed custom JSON views with the same objects in different locations and @JsonIgnore just wouldn't work. This library made it dead simple get done. – Jeff Aug 13 '16 at 3:28
  • 2
    You made my code cleaner and implementation easier. thank you – anindis Feb 12 '18 at 10:38
  • @monitorjbl : this is a bit off track, I have used json views and its solving my purpose. But I am not able to register custom serializer for java.util.Date class(no runtime/compile time error) were as for string I was able to register custom serializer. – Ninad Mar 5 at 7:06
7

Add @JsonInclude(JsonInclude.Include.NON_NULL) (forces Jackson to serialize null values) to the class as well as @JsonIgnore to the password field.

You could of course set @JsonIgnore on createdBy and updatedBy as well if you always want to ignore then and not just in this specific case.

UPDATE

In the event that you do not want to add the annotation to the POJO itself, a great option is Jackson's Mixin Annotations. Check out the documentation

  • Can I do it dynamically? Not in POJO? Can I do it in my Controller class? – iCode Apr 16 '14 at 6:33
  • Do you mean that you don't want to add the annotations to the POJO? – geoand Apr 16 '14 at 6:36
  • Because Sometimes I may want to send all the fields to client side. Sometimes few fields. The fields which I should send to client side is getting from database in the controller class only. After that only I need to set which fields should ignore. – iCode Apr 16 '14 at 6:40
  • @iProgrammer Check out my updated answer – geoand Apr 16 '14 at 6:43
3

If I were you and wanted to do so, I wouldn't use my User entity in Controller layer.Instead I create and use UserDto (Data transfer object) to communicate with business(Service) layer and Controller. You can use Apache ConvertUtils to copy data from User entity to UserDto.

3

Can I do it dynamically?

Create view class:

public class View {
    static class Public { }
    static class ExtendedPublic extends Public { }
    static class Internal extends ExtendedPublic { }
}

Annotate you model

@Document
public class User {

    @Id
    @JsonView(View.Public.class)
    private String id;

    @JsonView(View.Internal.class)
    private String email;

    @JsonView(View.Public.class)
    private String name;

    @JsonView(View.Public.class)
    private Instant createdAt = Instant.now();
    // getters/setters
}

Specify the view class in your controller

@RequestMapping("/user/{email}")
public class UserController {

    private final UserRepository userRepository;

    @Autowired
    UserController(UserRepository userRepository) {
        this.userRepository = userRepository;
    }

    @RequestMapping(method = RequestMethod.GET)
    @JsonView(View.Internal.class)
    public @ResponseBody Optional<User> get(@PathVariable String email) {
        return userRepository.findByEmail(email);
    }

}

Data example:

{"id":"5aa2496df863482dc4da2067","name":"test","createdAt":"2018-03-10T09:35:31.050353800Z"}
3

Yes, you can specify which fields are serialized as JSON response and which to ignore. This is what you need to do to implement Dynamically ignore properties.

1) First, you need to add @JsonFilter from com.fasterxml.jackson.annotation.JsonFilter on your entity class as.

import com.fasterxml.jackson.annotation.JsonFilter;

@JsonFilter("SomeBeanFilter")
public class SomeBean {

  private String field1;

  private String field2;

  private String field3;

  // getters/setters
}

2) Then in your controller, you have to add create the MappingJacksonValue object and set filters on it and in the end, you have to return this object.

import java.util.Arrays;
import java.util.List;

import org.springframework.http.converter.json.MappingJacksonValue;
import org.springframework.web.bind.annotation.GetMapping;
import org.springframework.web.bind.annotation.RestController;

import com.fasterxml.jackson.databind.ser.FilterProvider;
import com.fasterxml.jackson.databind.ser.impl.SimpleBeanPropertyFilter;
import com.fasterxml.jackson.databind.ser.impl.SimpleFilterProvider;

@RestController
public class FilteringController {

  // Here i want to ignore all properties except field1,field2.
  @GetMapping("/ignoreProperties")
  public MappingJacksonValue retrieveSomeBean() {
    SomeBean someBean = new SomeBean("value1", "value2", "value3");

    SimpleBeanPropertyFilter filter = SimpleBeanPropertyFilter.filterOutAllExcept("field1", "field2");

    FilterProvider filters = new SimpleFilterProvider().addFilter("SomeBeanFilter", filter);

    MappingJacksonValue mapping = new MappingJacksonValue(someBean);

    mapping.setFilters(filters);

    return mapping;
  }
}

This is what you will get in response:

{
  field1:"value1",
  field2:"value2"
}

instead of this:

{
  field1:"value1",
  field2:"value2",
  field3:"value3"
}

Here you can see it ignores other properties(field3 in this case) in response except for property field1 and field2.

Hope this helps.

  • This does not work for me. – Darlyn Sep 29 '18 at 17:19
  • @Shafqat Man, thank you so much, you are my savior. Spent almost a day trying to find out this kind of functionality. This solution is so elegant and simple? and does exactly what was requested. Should be marked as the right answer. – Oleg Kuts Oct 25 '18 at 14:53
2

We can do this by setting access to JsonProperty.Access.WRITE_ONLY while declaring the property.

@JsonProperty( value = "password", access = JsonProperty.Access.WRITE_ONLY)
@SerializedName("password")
private String password;
1

I've found a solution for me with Spring and jackson

First specify the filter name in the entity

@Entity
@Table(name = "SECTEUR")
@JsonFilter(ModelJsonFilters.SECTEUR_FILTER)
public class Secteur implements Serializable {

/** Serial UID */
private static final long serialVersionUID = 5697181222899184767L;

/**
 * Unique ID
 */
@Id
@JsonView(View.SecteurWithoutChildrens.class)
@Column(name = "id")
@GeneratedValue(strategy = GenerationType.IDENTITY)
private long id;

@JsonView(View.SecteurWithoutChildrens.class)
@Column(name = "code", nullable = false, length = 35)
private String code;

/**
 * Identifiant du secteur parent
 */
@JsonView(View.SecteurWithoutChildrens.class)
@Column(name = "id_parent")
private Long idParent;

@OneToMany(fetch = FetchType.LAZY)
@JoinColumn(name = "id_parent")
private List<Secteur> secteursEnfants = new ArrayList<>(0);

}

Then you can see the constants filters names class with the default FilterProvider used in spring configuration

public class ModelJsonFilters {

public final static String SECTEUR_FILTER = "SecteurFilter";
public final static String APPLICATION_FILTER = "ApplicationFilter";
public final static String SERVICE_FILTER = "ServiceFilter";
public final static String UTILISATEUR_FILTER = "UtilisateurFilter";

public static SimpleFilterProvider getDefaultFilters() {
    SimpleBeanPropertyFilter theFilter = SimpleBeanPropertyFilter.serializeAll();
    return new SimpleFilterProvider().setDefaultFilter(theFilter);
}

}

Spring configuration :

@EnableWebMvc
@Configuration
@ComponentScan(basePackages = "fr.sodebo")

public class ApiRootConfiguration extends WebMvcConfigurerAdapter {

@Autowired
private EntityManagerFactory entityManagerFactory;


/**
 * config qui permet d'éviter les "Lazy loading Error" au moment de la
 * conversion json par jackson pour les retours des services REST<br>
 * on permet à jackson d'acceder à sessionFactory pour charger ce dont il a
 * besoin
 */
@Override
public void configureMessageConverters(List<HttpMessageConverter<?>> converters) {

    super.configureMessageConverters(converters);
    MappingJackson2HttpMessageConverter converter = new MappingJackson2HttpMessageConverter();
    ObjectMapper mapper = new ObjectMapper();

    // config d'hibernate pour la conversion json
    mapper.registerModule(getConfiguredHibernateModule());//

    // inscrit les filtres json
    subscribeFiltersInMapper(mapper);

    // config du comportement de json views
    mapper.configure(MapperFeature.DEFAULT_VIEW_INCLUSION, false);

    converter.setObjectMapper(mapper);
    converters.add(converter);
}

/**
 * config d'hibernate pour la conversion json
 * 
 * @return Hibernate5Module
 */
private Hibernate5Module getConfiguredHibernateModule() {
    SessionFactory sessionFactory = entityManagerFactory.unwrap(SessionFactory.class);
    Hibernate5Module module = new Hibernate5Module(sessionFactory);
    module.configure(Hibernate5Module.Feature.FORCE_LAZY_LOADING, true);

    return module;

}

/**
 * inscrit les filtres json
 * 
 * @param mapper
 */
private void subscribeFiltersInMapper(ObjectMapper mapper) {

    mapper.setFilterProvider(ModelJsonFilters.getDefaultFilters());

}

}

Endly I can specify a specific filter in restConstoller when i need....

@RequestMapping(value = "/{id}/droits/", method = RequestMethod.GET)
public MappingJacksonValue getListDroits(@PathVariable long id) {

    LOGGER.debug("Get all droits of user with id {}", id);

    List<Droit> droits = utilisateurService.findDroitsDeUtilisateur(id);

    MappingJacksonValue value;

    UtilisateurWithSecteurs utilisateurWithSecteurs = droitsUtilisateur.fillLists(droits).get(id);

    value = new MappingJacksonValue(utilisateurWithSecteurs);

    FilterProvider filters = ModelJsonFilters.getDefaultFilters().addFilter(ModelJsonFilters.SECTEUR_FILTER, SimpleBeanPropertyFilter.serializeAllExcept("secteursEnfants")).addFilter(ModelJsonFilters.APPLICATION_FILTER,
            SimpleBeanPropertyFilter.serializeAllExcept("services"));

    value.setFilters(filters);
    return value;

}
  • 3
    why so complications for an easy question – Humoyun Nov 21 '17 at 0:39
1

I have created a JsonUtil which can be used to ignore fields at runtime while giving a response.

Example Usage : First argument should be any POJO class (Student) and ignoreFields is comma seperated fields you want to ignore in response.

 Student st = new Student();
 createJsonIgnoreFields(st,"firstname,age");

import java.util.logging.Logger;

import org.codehaus.jackson.map.ObjectMapper;
import org.codehaus.jackson.map.ObjectWriter;
import org.codehaus.jackson.map.ser.FilterProvider;
import org.codehaus.jackson.map.ser.impl.SimpleBeanPropertyFilter;
import org.codehaus.jackson.map.ser.impl.SimpleFilterProvider;

public class JsonUtil {

  public static String createJsonIgnoreFields(Object object, String ignoreFields) {
     try {
         ObjectMapper mapper = new ObjectMapper();
         mapper.getSerializationConfig().addMixInAnnotations(Object.class, JsonPropertyFilterMixIn.class);
         String[] ignoreFieldsArray = ignoreFields.split(",");
         FilterProvider filters = new SimpleFilterProvider()
             .addFilter("filter properties by field names",
                 SimpleBeanPropertyFilter.serializeAllExcept(ignoreFieldsArray));
         ObjectWriter writer = mapper.writer().withFilters(filters);
         return writer.writeValueAsString(object);
     } catch (Exception e) {
         //handle exception here
     }
     return "";
   }

   public static String createJson(Object object) {
        try {
         ObjectMapper mapper = new ObjectMapper();
         ObjectWriter writer = mapper.writer().withDefaultPrettyPrinter();
         return writer.writeValueAsString(object);
        }catch (Exception e) {
         //handle exception here
        }
        return "";
   }
 }    
0

Would not creating a UserJsonResponse class and populating with the wanted fields be a cleaner solution?

Returning directly a JSON seems a great solution when you want to give all the model back. Otherwise it just gets messy.

In the future, for example you might want to have a JSON field that does not match any Model field and then you're in a bigger trouble.

-3

In your entity class add @JsonInclude(JsonInclude.Include.NON_NULL) annotation to resolve the problem

it will look like

@Entity
@JsonInclude(JsonInclude.Include.NON_NULL)
  • Totally irrelevantly answered. The purpose of the question is different while the answer is about something else. -1 for that – Hammad Dar Jan 23 '18 at 16:56

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