无限递归与杰克逊JSON和Hibernate JPA问题

当尝试将具有双向关联的JPA对象转换为JSON时，我不断得到

org.codehaus.jackson.map.JsonMappingException: Infinite recursion (StackOverflowError)

我所找到的是这个帖子，基本上是建议避免双向关联。有人有解决这个春季bug的方法吗?

------ edit 2010-07-24 16:26:22 -------

代码片段:

业务对象1:

@Entity
@Table(name = "ta_trainee", uniqueConstraints = {@UniqueConstraint(columnNames = {"id"})})
public class Trainee extends BusinessObject {

    @Id
    @GeneratedValue(strategy = GenerationType.TABLE)
    @Column(name = "id", nullable = false)
    private Integer id;

    @Column(name = "name", nullable = true)
    private String name;

    @Column(name = "surname", nullable = true)
    private String surname;

    @OneToMany(mappedBy = "trainee", fetch = FetchType.EAGER, cascade = CascadeType.ALL)
    @Column(nullable = true)
    private Set<BodyStat> bodyStats;

    @OneToMany(mappedBy = "trainee", fetch = FetchType.EAGER, cascade = CascadeType.ALL)
    @Column(nullable = true)
    private Set<Training> trainings;

    @OneToMany(mappedBy = "trainee", fetch = FetchType.EAGER, cascade = CascadeType.ALL)
    @Column(nullable = true)
    private Set<ExerciseType> exerciseTypes;

    public Trainee() {
        super();
    }

    //... getters/setters ...
}

业务对象2:

import javax.persistence.*;
import java.util.Date;

@Entity
@Table(name = "ta_bodystat", uniqueConstraints = {@UniqueConstraint(columnNames = {"id"})})
public class BodyStat extends BusinessObject {

    @Id
    @GeneratedValue(strategy = GenerationType.TABLE)
    @Column(name = "id", nullable = false)
    private Integer id;

    @Column(name = "height", nullable = true)
    private Float height;

    @Column(name = "measuretime", nullable = false)
    @Temporal(TemporalType.TIMESTAMP)
    private Date measureTime;

    @ManyToOne(fetch = FetchType.EAGER, cascade = CascadeType.ALL)
    @JoinColumn(name="trainee_fk")
    private Trainee trainee;
}

控制器:

import org.slf4j.Logger;
import org.slf4j.LoggerFactory;
import org.springframework.beans.factory.annotation.Autowired;
import org.springframework.stereotype.Controller;
import org.springframework.ui.Model;
import org.springframework.web.bind.annotation.RequestBody;
import org.springframework.web.bind.annotation.RequestMapping;
import org.springframework.web.bind.annotation.RequestMethod;
import org.springframework.web.bind.annotation.ResponseBody;

import javax.servlet.http.HttpServletResponse;
import javax.validation.ConstraintViolation;
import java.util.*;
import java.util.concurrent.ConcurrentHashMap;

@Controller
@RequestMapping(value = "/trainees")
public class TraineesController {

    final Logger logger = LoggerFactory.getLogger(TraineesController.class);

    private Map<Long, Trainee> trainees = new ConcurrentHashMap<Long, Trainee>();

    @Autowired
    private ITraineeDAO traineeDAO;
     
    /**
     * Return json repres. of all trainees
     */
    @RequestMapping(value = "/getAllTrainees", method = RequestMethod.GET)
    @ResponseBody        
    public Collection getAllTrainees() {
        Collection allTrainees = this.traineeDAO.getAll();

        this.logger.debug("A total of " + allTrainees.size() + "  trainees was read from db");

        return allTrainees;
    }    
}

学员DAO的jpa实现:

@Repository
@Transactional
public class TraineeDAO implements ITraineeDAO {

    @PersistenceContext
    private EntityManager em;

    @Transactional
    public Trainee save(Trainee trainee) {
        em.persist(trainee);
        return trainee;
    }

    @Transactional(readOnly = true)
    public Collection getAll() {
        return (Collection) em.createQuery("SELECT t FROM Trainee t").getResultList();
    }
}

persistence . xml

<persistence xmlns="http://java.sun.com/xml/ns/persistence"
             xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
             xsi:schemaLocation="http://java.sun.com/xml/ns/persistence http://java.sun.com/xml/ns/persistence/persistence_1_0.xsd"
             version="1.0">
    <persistence-unit name="RDBMS" transaction-type="RESOURCE_LOCAL">
        <exclude-unlisted-classes>false</exclude-unlisted-classes>
        <properties>
            <property name="hibernate.hbm2ddl.auto" value="validate"/>
            <property name="hibernate.archive.autodetection" value="class"/>
            <property name="dialect" value="org.hibernate.dialect.MySQL5InnoDBDialect"/>
            <!-- <property name="dialect" value="org.hibernate.dialect.HSQLDialect"/>         -->
        </properties>
    </persistence-unit>
</persistence>

当前回答

我有这个问题，但我不想在我的实体中使用注释，所以我通过为我的类创建一个构造函数来解决，这个构造函数必须没有对引用这个实体的实体的引用。假设这种情况。

public class A{
   private int id;
   private String code;
   private String name;
   private List<B> bs;
}

public class B{
   private int id;
   private String code;
   private String name;
   private A a;
}

如果你试图用@ResponseBody发送类B或A到视图，可能会导致一个无限循环。您可以在类中编写构造函数，并像这样使用entityManager创建查询。

"select new A(id, code, name) from A"

这是带有构造函数的类。

public class A{
   private int id;
   private String code;
   private String name;
   private List<B> bs;

   public A(){
   }

   public A(int id, String code, String name){
      this.id = id;
      this.code = code;
      this.name = name;
   }

}

然而，这个解决方案有一些限制，正如你可以看到的，在构造函数中我没有引用List bs，这是因为Hibernate不允许它，至少在3.6.10版本中。最后，所以当我需要在一个视图中显示两个实体时，我做以下工作。

public A getAById(int id); //THE A id

public List<B> getBsByAId(int idA); //the A id.

这个解决方案的另一个问题是，如果您添加或删除一个属性，您必须更新构造函数和所有查询。

2015-11-30 20:20:50

其他回答

在做了更多的分析后，我也有同样的问题，我知道，我们也可以通过在OneToMany注释中保持@JsonBackReference来获得映射实体

@Entity
@Table(name = "ta_trainee", uniqueConstraints = {@UniqueConstraint(columnNames = {"id"})})
public class Trainee extends BusinessObject {

@Id
@GeneratedValue(strategy = GenerationType.TABLE)
@Column(name = "id", nullable = false)
private Integer id;

@Column(name = "name", nullable = true)
private String name;

@Column(name = "surname", nullable = true)
private String surname;

@OneToMany(mappedBy = "trainee", fetch = FetchType.EAGER, cascade = CascadeType.ALL)
@Column(nullable = true)
@JsonBackReference
private Set<BodyStat> bodyStats;

2020-07-23 02:24:01

这对我来说非常有效。在提到父类引用的子类上添加注释@JsonIgnore。

@ManyToOne
@JoinColumn(name = "ID", nullable = false, updatable = false)
@JsonIgnore
private Member member;

2015-06-09 21:02:26

现在有一个Jackson模块(针对Jackson 2)专门设计来处理序列化时Hibernate的惰性初始化问题。

https://github.com/FasterXML/jackson-datatype-hibernate

只需添加依赖项(注意Hibernate 3和Hibernate 4有不同的依赖项):

<dependency>
  <groupId>com.fasterxml.jackson.datatype</groupId>
  <artifactId>jackson-datatype-hibernate4</artifactId>
  <version>2.4.0</version>
</dependency>

然后在初始化Jackson的ObjectMapper时注册模块:

ObjectMapper mapper = new ObjectMapper();
mapper.registerModule(new Hibernate4Module());

目前的文档不是很好。有关可用选项，请参阅Hibernate4Module代码。

2014-12-14 04:50:52

@JsonIgnoreProperties是答案。

使用如下代码::

@OneToMany(mappedBy = "course",fetch=FetchType.EAGER)
@JsonIgnoreProperties("course")
private Set<Student> students;

2018-05-02 00:45:38

我来晚了，而且已经有这么长一段了。但我也花了几个小时试图弄清楚这一点，我想把我的情况作为另一个例子。

我尝试了JsonIgnore, JsonIgnoreProperties和BackReference解决方案，但奇怪的是，它们好像没有被选中。

我使用Lombok，并认为它可能会干扰，因为它创建构造函数并覆盖toString(在stackoverflowerror堆栈中看到toString)。

最后，这不是Lombok的错——我使用了从数据库表自动生成JPA实体的NetBeans，没有考虑太多——而且，添加到生成的类中的注释之一是@XmlRootElement。一旦我把它取出来，一切都开始工作了。哦。

2020-05-12 14:52:05

无限递归与杰克逊JSON和Hibernate JPA问题

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