270

I get the following exception:

Exception in thread "main" org.hibernate.LazyInitializationException: could not initialize proxy - no Session
    at org.hibernate.proxy.AbstractLazyInitializer.initialize(AbstractLazyInitializer.java:167)
    at org.hibernate.proxy.AbstractLazyInitializer.getImplementation(AbstractLazyInitializer.java:215)
    at org.hibernate.proxy.pojo.javassist.JavassistLazyInitializer.invoke(JavassistLazyInitializer.java:190)
    at sei.persistence.wf.entities.Element_$$_jvstc68_47.getNote(Element_$$_jvstc68_47.java)
    at JSON_to_XML.createBpmnRepresantation(JSON_to_XML.java:139)
    at JSON_to_XML.main(JSON_to_XML.java:84)

when I try to call from main the following lines:

Model subProcessModel = getModelByModelGroup(1112);
System.out.println(subProcessModel.getElement().getNote());

I implemented the getModelByModelGroup(int modelgroupid) method firstly like this :

public static Model getModelByModelGroup(int modelGroupId, boolean openTransaction) {

    Session session = SessionFactoryHelper.getSessionFactory().getCurrentSession();     
    Transaction tx = null;

    if (openTransaction) {
        tx = session.getTransaction();
    }

    String responseMessage = "";

    try {
        if (openTransaction) {
            tx.begin();
        }
        Query query = session.createQuery("from Model where modelGroup.id = :modelGroupId");
        query.setParameter("modelGroupId", modelGroupId);

        List<Model> modelList = (List<Model>)query.list(); 
        Model model = null;

        for (Model m : modelList) {
            if (m.getModelType().getId() == 3) {
                model = m;
                break;
            }
        }

        if (model == null) {
            Object[] arrModels = modelList.toArray();
            if (arrModels.length == 0) {
                throw new Exception("Non esiste ");
            }

            model = (Model)arrModels[0];
        }

        if (openTransaction) {
            tx.commit();
        }

        return model;

   } catch(Exception ex) {
       if (openTransaction) {
           tx.rollback();
       }
       ex.printStackTrace();
       if (responseMessage.compareTo("") == 0) {
           responseMessage = "Error" + ex.getMessage();
       }
       return null;
    }
}

and got the exception. Then a friend suggested me to always test the session and get the current session to avoid this error. So I did this:

public static Model getModelByModelGroup(int modelGroupId) {
    Session session = null;
    boolean openSession = session == null;
    Transaction tx = null;
    if (openSession) {
        session = SessionFactoryHelper.getSessionFactory().getCurrentSession(); 
        tx = session.getTransaction();
    }
    String responseMessage = "";

    try {
        if (openSession) {
            tx.begin();
        }
        Query query = session.createQuery("from Model where modelGroup.id = :modelGroupId");
        query.setParameter("modelGroupId", modelGroupId);

        List<Model> modelList = (List<Model>)query.list(); 
        Model model = null;

        for (Model m : modelList) {
            if (m.getModelType().getId() == 3) {
                model = m;
                break;
            }
        }

        if (model == null) {
            Object[] arrModels = modelList.toArray();
            if (arrModels.length == 0) {
                throw new RuntimeException("Non esiste");
            }

            model = (Model)arrModels[0];

            if (openSession) {
                tx.commit();
            }
            return model;
        } catch(RuntimeException ex) {
            if (openSession) {
                tx.rollback();
            }
            ex.printStackTrace();
            if (responseMessage.compareTo("") == 0) {
                responseMessage = "Error" + ex.getMessage();
            }
            return null;        
        }
    }
}

but still, get the same error. I have been reading a lot for this error and found some possible solutions. One of them was to set lazyLoad to false but I am not allowed to do this that's why I was suggested to control the session

0

24 Answers 24

268

If you using Spring mark the class as @Transactional, then Spring will handle session management.

@Transactional
public class MyClass {
    ...
}

By using @Transactional, many important aspects such as transaction propagation are handled automatically. In this case if another transactional method is called the method will have the option of joining the ongoing transaction avoiding the "no session" exception.

WARNING If you do use @Transactional, please be aware of the resulting behavior. See this article for common pitfalls. For example, updates to entities are persisted even if you don't explicitly call save

8
  • 34
    I cannot overstate the importance of this answer. I'd seriously recommend trying this option first. Jul 29, 2016 at 16:19
  • 8
    Also note that you have to add @EnableTransactionManagement to your configuration in order to enable transactions. "if another transactional method is called the method will have the option of joining the ongoing transaction" this behavior is different for the different ways transactions are implemented, i.e. interface proxy vs class proxy or AspectJ weaving. Refer to the documentation.
    – Erik Hofer
    Aug 25, 2016 at 11:30
  • 2
    Should we understand the Spring Transactional annotation is thus advised, not only for modifying transactions, but also for accessing only ones ?
    – Stephane
    May 28, 2018 at 12:43
  • 10
    I'd seriously recommend to use this annotation on top of class only for testing. Real code should mark each method as transaction in class separately. Unless all the methods in class will require opened connection with transaction to database.
    – m1ld
    Dec 6, 2018 at 13:10
  • 4
    Isn't it safe to put @Transactional(readOnly = true) instead of just @Transactional ?
    – Hamedz
    Jun 2, 2019 at 23:33
108

You can try to set

<property name="hibernate.enable_lazy_load_no_trans">true</property>

in hibernate.cfg.xml or persistence.xml

The problem to keep in mind with this property are well explained here

7
  • 9
    Can you explain its meaning as well? Jul 13, 2015 at 11:26
  • 2
    I'm also curious what this does. It did fix the issue I was having, but I'd like to understand why.
    – user377628
    Oct 1, 2015 at 22:46
  • After thousands of "just put lazy=false in your configuration file" and "just initialize every object with Hibernate.initialize()" finally a concrete and viable solution for me. This option should be made standard in hibernate! Jan 21, 2016 at 9:23
  • 3
    for persistence.xml: <property name="hibernate.enable_lazy_load_no_trans" value="true"/>
    – ACV
    Aug 24, 2016 at 19:15
  • 22
    DO NOT USE THIS PROPERTY, IF SPRING MANAGES YOUR TRANSACTIONS THIS PROPERTY WILL LEAD TO TRANSACTIONS EXPLOSION, SIMPLY SPRING WILL SHUTDOWN THE APPLICATION
    – Youans
    Oct 18, 2017 at 12:09
104

What is wrong here is that your session management configuration is set to close session when you commit transaction. Check if you have something like:

<property name="current_session_context_class">thread</property>

in your configuration.

In order to overcome this problem you could change the configuration of session factory or open another session and only then ask for those lazy loaded objects. But what I would suggest here is to initialize this lazy collection in getModelByModelGroup itself and call:

Hibernate.initialize(subProcessModel.getElement());

when you are still in active session.

And one last thing. A friendly advice. You have something like this in your method:

for (Model m : modelList) {
    if (m.getModelType().getId() == 3) {
        model = m;
        break;
    }
}

Please insted of this code just filter those models with type id equal to 3 in the query statement just couple of lines above.

Some more reading:

session factory configuration

problem with closed session

2
  • 1
    Thank you! I solved my problem using openSession() instead of getCurrentSession() as one of the links you gave me suggested this, but now I'm affraid if it is wrong to do so Feb 5, 2014 at 11:39
  • 2
    No it is probably fine. But read some more to be able to fully control your sessions and transactions. It is realy important to know the basics because all higher level technologies like Spring, Hibernate and more operate on the very same concept.
    – goroncy
    Feb 5, 2014 at 12:08
91

The best way to handle the LazyInitializationException is to use the JOIN FETCH directive:

Query query = session.createQuery("""
    select m
    from Model m
    join fetch m.modelType
    where modelGroup.id = :modelGroupId
    """
);

Anyway, DO NOT use the following Anti-Patterns as suggested by some of the answers:

Sometimes, a DTO projection is a better choice than fetching entities, and this way, you won't get any LazyInitializationException.

7
  • How Can I Identify which call is having problem ? I am finding it as hard to identify the call. Is there any way ? For testing purpose I used FetchType=EAGER, but this is not correct solution, right ? Nov 22, 2017 at 7:25
  • Just use logging. And EAGER is bad, yes. Nov 22, 2017 at 11:56
  • Then, you should use either DTOs or initialize all associations before leaving the @Transactional service. Nov 22, 2017 at 12:26
  • 2
    We should advocate the best enterprise practice but not the quick fix.
    – etlds
    Feb 22, 2018 at 17:08
  • 2
    This is the best fix
    – phamductri
    Jul 27, 2020 at 2:53
27

if you use spring data jpa , spring boot you can add this line in application.properties

spring.jpa.properties.hibernate.enable_lazy_load_no_trans=true
3
  • 16
    This is considered as an anti-pattern. vladmihalcea.com/… Aug 24, 2018 at 11:11
  • 1
    If it's an antipattern, could you please suggest an alternative? I'm also working with Spring Data and the other answers I've looked at don't help me. Jan 19, 2021 at 12:42
  • 1
    Thanks this works for me. Dec 8, 2021 at 22:31
23

I was getting the same error for a one to many relationships for below annotation.

@OneToMany(mappedBy="department", cascade = CascadeType.ALL)

Changed as below after adding fetch=FetchType.EAGER, it worked for me.

@OneToMany(mappedBy="department", cascade = CascadeType.ALL, fetch=FetchType.EAGER)
2
  • 49
    Yes it may fix it but now you are loading the whole tree of data. This will have negative performance impacts in most cases
    – astro8891
    Jun 11, 2018 at 1:39
  • solved my problem thank you so much Dec 18, 2021 at 23:01
10

This exception because of when you call session.getEntityById(), the session will be closed. So you need to re-attach the entity to the session. Or Easy solution is just configure default-lazy="false" to your entity.hbm.xml or if you are using annotations just add @Proxy(lazy=false) to your entity class.

1
  • How do you re-attach the entity to the session?
    – Pere
    Jan 12, 2021 at 2:12
6

I encountered the same issue. I think another way to fix this is that you can change the query to join fetch your Element from Model as follows:

Query query = session.createQuery("from Model m join fetch m.element where modelGroup.id = :modelGroupId")
6

This means that the object which you are trying to access is not loaded, so write a query that makes a join fetch of the object which you are trying to access.

Eg:

If you are trying to get ObjectB from ObjectA where ObjectB is a foreign key in ObjectA.

Query :

SELECT objA FROM ObjectA obj JOIN FETCH obj.objectB objB
5

Faced the same Exception in different use case.

enter image description here

Use Case : Try to read data from DB with DTO projection.

Solution: Use get method instead of load.

Generic Operation

public class HibernateTemplate {
public static Object loadObject(Class<?> cls, Serializable s) {
    Object o = null;
    Transaction tx = null;
    try {
        Session session = HibernateUtil.getSessionFactory().openSession();
        tx = session.beginTransaction();
        o = session.load(cls, s); /*change load to get*/
        tx.commit();
        session.close();
    } catch (Exception e) {
        e.printStackTrace();
    }
    return o;
}

}

Persistence Class

public class Customer {

@Id
@GeneratedValue(strategy = GenerationType.IDENTITY)
@Column(name = "Id")
private int customerId;

@Column(name = "Name")
private String customerName;

@Column(name = "City")
private String city;

//constructors , setters and getters

}

CustomerDAO interface

public interface CustomerDAO 
     {
   public CustomerTO getCustomerById(int cid);
     }

Entity Transfer Object Class

public class CustomerTO {

private int customerId;

private String customerName;

private String city;

//constructors , setters and getters

}

Factory Class

public class DAOFactory {

static CustomerDAO customerDAO;
static {
    customerDAO = new HibernateCustomerDAO();
}

public static CustomerDAO getCustomerDAO() {
    return customerDAO;
}

}

Entity specific DAO

public class HibernateCustomerDAO implements CustomerDAO {

@Override
public CustomerTO getCustomerById(int cid) {
    Customer cust = (Customer) HibernateTemplate.loadObject(Customer.class, cid);
    CustomerTO cto = new CustomerTO(cust.getCustomerId(), cust.getCustomerName(), cust.getCity());
    return cto;
}

}

Retrieving data: Test Class

CustomerDAO cdao = DAOFactory.getCustomerDAO();
CustomerTO c1 = cdao.getCustomerById(2);
System.out.println("CustomerName -> " + c1.getCustomerName() + " ,CustomerCity -> " + c1.getCity());

Present Data

enter image description here

Query and output generated by Hibernate System

Hibernate: select customer0_.Id as Id1_0_0_, customer0_.City as City2_0_0_, customer0_.Name as Name3_0_0_ from CustomerLab31 customer0_ where customer0_.Id=?

CustomerName -> Cody ,CustomerCity -> LA

4

This means you are using JPA or hibernate in your code and performing modifying operation on DB without making the business logic transaction. So simple solution for this is mark your piece of code @Transactional

1
  • Thank you! I had the problem on one method, while on other similar methods it worked just fine. Thanks to you, I figured out that I simply forget to make it transactional, what fixed it for me. +1
    – marcel
    Aug 31, 2022 at 10:07
3

There are several good answers here that handle this error in a broad scope. I ran into a specific situation with Spring Security which had a quick, although probably not optimal, fix.

During user authorization (immediately after logging in and passing authentication) I was testing a user entity for a specific authority in a custom class that extends SimpleUrlAuthenticationSuccessHandler.

My user entity implements UserDetails and has a Set of lazy loaded Roles which threw the "org.hibernate.LazyInitializationException - could not initialize proxy - no Session" exception. Changing that Set from "fetch=FetchType.LAZY" to "fetch=FetchType.EAGER" fixed this for me.

0
2

If you are using JPQL, use JOIN FETCH is the easiest way: http://www.objectdb.com/java/jpa/query/jpql/from#LEFT_OUTER_INNER_JOIN_FETCH_

2

In Spring Application Just Add

@Transactional(readOnly = true)

on your Function.

Remind that import spring Transactional annotation

import org.springframework.transaction.annotation.Transactional;

2

Use @NamedEntityGraph. Eagar fetch will deteriorate the performance. Refer https://thorben-janssen.com/lazyinitializationexception/ for in-depth explanation.

1

If you are using Grail's Framework, it's simple to resolve lazy initialization exception by using Lazy keyword on specific field in Domain Class.

For-example:

class Book {
    static belongsTo = [author: Author]
    static mapping = {
        author lazy: false
    }
}

Find further information here

1

In my case a misplaced session.clear() was causing this problem.

1
  • springBootVersion = '2.6.7'
  • hibernate = 5.6.8.Final'

For me i get the error in:

MyEntity myEntity = myEntityRepository.getById(id);

I change to this:

MyEntity myEntity = myEntityRepository.findById(id).orElse(null);

and i add @ManyToOne(fetch = FetchType.EAGER) in entity

0

This happened to me when I was already using @Transactional(value=...) and was using multiple transaction managers.

My forms were sending back data that already had @JsonIgnore on them, so the data being sent back from forms was incomplete.

Originally I used the anti pattern solution, but found it was incredibly slow. I disabled this by setting it to false.

spring.jpa.properties.hibernate.enable_lazy_load_no_trans=false

The fix was to ensure that any objects that had lazy-loaded data that weren't loading were retrieved from the database first.

Optional<Object> objectDBOpt = objectRepository.findById(object.getId());

if (objectDBOpt.isEmpty()) {
    // Throw error
} else {
    Object objectFromDB = objectDBOpt.get();
}

In short, if you've tried all of the other answers, just make sure you look back to check you're loading from the database first if you haven't provided all the @JsonIgnore properties and are using them in your database query.

0

All answers about adding JOIN FETCH (or left join fetch) are correct, I want only to add this: if you have converter be sure the getAsObject sub uses a "find" than includes in the sql the Join Fetch too. I lost much time to fix a similar problem, and the problem was in the converter.

0

I was getting this error in my JAX-RS application when I was trying to get all the Departments. I had to add the @JsonbTransient Annotation to the attributes of both classes. My entities are Department and Employee, and the DB relationship is Many to Many.

Employee.java

...
@ManyToMany
@JoinTable(
        name = "emp_dept",
        joinColumns = {@JoinColumn(name = "emp_id", referencedColumnName = "id")},
        inverseJoinColumns = {@JoinColumn(name = "dept_id", referencedColumnName = "id")}
)
@JsonbTransient
private Set<Department> departments = new HashSet<Department>();
...

Department.java

...
@ManyToMany(mappedBy = "departments")
@JsonbTransient
private Set<Employee> employees = new HashSet<Employee>();
...
-2

uses session.get(*.class, id); but do not load function

1
  • 4
    can you please explain this?
    – newday
    Oct 14, 2015 at 20:42
-3

you could also solved it by adding lazy=false into into your *.hbm.xml file or you can init your object in Hibernate.init(Object) when you get object from db

2
  • 10
    generally adding lazy=false is not a good idea. that is why lazy is true by default
    – MoienGK
    Nov 6, 2014 at 11:51
  • The OP clearly said beforehand that he's not allowed to do that.
    – GingerHead
    May 19, 2015 at 16:09
-3

Do the following changes in servlet-context.xml

    <beans:property name="hibernateProperties">
        <beans:props>

            <beans:prop key="hibernate.enable_lazy_load_no_trans">true</beans:prop>

        </beans:props>
    </beans:property>

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