175

I have a JPA-persisted object model that contains a many-to-one relationship: an Account has many Transactions. A Transaction has one Account.

Here's a snippet of the code:

@Entity
public class Transaction {
    @Id
    @GeneratedValue(strategy = GenerationType.AUTO)
    private Long id;

    @ManyToOne(cascade = {CascadeType.ALL},fetch= FetchType.EAGER)
    private Account fromAccount;
....

@Entity
public class Account {
    @Id
    @GeneratedValue(strategy = GenerationType.AUTO)
    private Long id;
    @OneToMany(cascade = {CascadeType.ALL},fetch= FetchType.EAGER, mappedBy = "fromAccount")
    private Set<Transaction> transactions;

I am able to create an Account object, add transactions to it, and persist the Account object correctly. But, when I create a transaction, using an existing already persisted Account, and persisting the the Transaction, I get an exception:

Caused by: org.hibernate.PersistentObjectException: detached entity passed to persist: com.paulsanwald.Account
    at org.hibernate.event.internal.DefaultPersistEventListener.onPersist(DefaultPersistEventListener.java:141) 

So, I am able to persist an Account that contains transactions, but not a Transaction that has an Account. I thought this was because the Account might not be attached, but this code still gives me the same exception:

if (account.getId()!=null) {
    account = entityManager.merge(account);
}
Transaction transaction = new Transaction(account,"other stuff");
 // the below fails with a "detached entity" message. why?
entityManager.persist(transaction);

How can I correctly save a Transaction, associated with an already persisted Account object?

  • 8
    In my case, I was setting id of an entity which I was trying to persist using Entity Manager. When, I removed the setter for id, it started working fine. – Rushi Shah Jun 28 '16 at 11:23

13 Answers 13

107

This is a typical bidirectional consistency problem. It is well discussed in this link as well as this link.

As per the articles in the previous 2 links you need to fix your setters in both sides of the bidirectional relationship. An example setter for the One side is in this link.

An example setter for the Many side is in this link.

After you correct your setters you want to declare the Entity access type to be "Property". Best practice to declare "Property" access type is to move ALL the annotations from the member properties to the corresponding getters. A big word of caution is not to mix "Field" and "Property" access types within the entity class otherwise the behavior is undefined by the JSR-317 specifications.

  • 2
    ps: the @Id annotation is the one that hibernate uses to identify the access type. – Diego Plentz Mar 10 '15 at 18:59
  • 1
    The exception is : detached entity passed to persist Why improving consistency makes that it works? Ok, consistency was repaired but object is still detached. – Gilgamesz Mar 13 '18 at 20:17
  • @Gilgamesz, Bi-directional consistency is either satisfied or not. It is not a relative scale to improve. The question code has a Many-To-One bi-directional relationship which did not protect against the case when the Child Entity at the Target of the relationship is detached. I do see the answer which suggest CascadeType.merge had satisfied many people. Honestly, I used it myself provided that I invoke an entityManager.find(child) to ensure that it is in a Managed state by the Hibernate Runtime before invoking CRUD operations on the Parent Entity. – Sym-Sym Mar 14 '18 at 2:22
  • @Gilgamesz, You can not guarantee all fellow team members will follow the same practice though. Thus, I prefer my approach to protect my JPA mappings against other developers mis-understanding JPA exceptions and hacking a solution causing more damage!!!!! – Sym-Sym Mar 14 '18 at 2:29
  • 1
    @Sam, thanks a lot for your explanation. But, I don't understand still. I see that without 'special' setter the bi-directional relationship is not satisified. But, I don't see why object was detached. – Gilgamesz Mar 14 '18 at 9:33
206

The solution is simple, just use the CascadeType.MERGE instead of CascadeType.PERSIST or CascadeType.ALL.

I have had the same problem and CascadeType.MERGE has worked for me.

I hope you are sorted.

  • 4
    Surprisingly that one worked for me too. It makes no sense since CascadeType.ALL includes all other cascade types... WTF? I have spring 4.0.4, spring data jpa 1.8.0 and hibernate 4.X.. Does anyone have any thoughts why ALL doesn't work, but MERGE does? – Vadim Kirilchuk Oct 1 '15 at 11:03
  • 15
    @VadimKirilchuk This worked for me too and it makes total sense. Since Transaction is PERSISTED, it tries to PERSIST Account as well and that doesn't work since Account already is in the db. But with CascadeType.MERGE the Account is automatically merged instead. – Gunslinger Nov 26 '15 at 15:44
  • 2
    This can happen if you do not use transactions. – lanoxx Sep 10 '16 at 8:33
  • 2
    Thank you man. It's not possible to avoid inserting of persisted object, if you have restriction for the reference key to be NOT NULL. So this is the only solution. Thank you again. – makkasi Feb 12 '18 at 8:41
  • 1
    Thank you. Easy solutions. – Prasath Aug 24 '18 at 8:39
10

Using merge is risky and tricky, so it's a dirty workaround in your case. You need to remember at least that when you pass an entity object to merge, it stops being attached to the transaction and instead a new, now-attached entity is returned. This means that if anyone has the old entity object still in their possession, changes to it are silently ignored and thrown away on commit.

You are not showing the complete code here, so I cannot double-check your transaction pattern. One way to get to a situation like this is if you don't have a transaction active when executing the merge and persist. In that case persistence provider is expected to open a new transaction for every JPA operation you perform and immediately commit and close it before the call returns. If this is the case, the merge would be run in a first transaction and then after the merge method returns, the transaction is completed and closed and the returned entity is now detached. The persist below it would then open a second transaction, and trying to refer to an entity that is detached, giving an exception. Always wrap your code inside a transaction unless you know very well what you are doing.

Using container-managed transaction it would look something like this. Do note: this assumes the method is inside a session bean and called via Local or Remote interface.

@TransactionAttribute(TransactionAttributeType.REQUIRED)
public void storeAccount(Account account) {
    ...

    if (account.getId()!=null) {
        account = entityManager.merge(account);
    }

    Transaction transaction = new Transaction(account,"other stuff");

    entityManager.persist(account);
}
  • I m facing same issue., i have used the @Transaction(readonly=false) at the service layer., still i m getting the same issue, – Senthil Arumugam SP Jun 23 '16 at 16:14
  • I can't say I fully understand why things work this way but placing the persist method and view to Entity mapping together inside an Transactional annotation fixed my issue so thanks. – Deadron Jun 5 '17 at 18:14
  • This is actually a better solution than the most upvoted one. – Aleksei Maide Oct 1 '18 at 6:26
9

Probably in this case you obtained your account object using the merge logic, and persist is used to persist new objects and it will complain if the hierarchy is having an already persisted object. You should use saveOrUpdate in such cases, instead of persist.

  • 2
    it's JPA, so I think the analogous method is .merge(), but that gives me the same exception. To be clear, Transaction is a new object, Account is not. – Paul Sanwald Nov 13 '12 at 23:04
  • @PaulSanwald Using merge on transaction object you get the same error? – dan Nov 13 '12 at 23:06
  • actually, no, I mis-spoke. if I .merge(transaction), then transaction is not persisted at all. – Paul Sanwald Nov 13 '12 at 23:09
  • @PaulSanwald Hmm, are you sure that transaction was not persisted? How did you check. Note that merge is returning a reference to the persisted object. – dan Nov 13 '12 at 23:11
  • the object returned by .merge() has a null id. also, I am doing a .findAll() afterwards, and my object isn't there. – Paul Sanwald Nov 13 '12 at 23:18
8

Don't pass id(pk) to persist method or try save() method instead of persist().

  • Good advice! But only if id is generated. In case it is assigned it is normal to set the id. – Aldian Jul 4 '18 at 9:47
  • this worked for me. Also, you can use TestEntityManager.persistAndFlush() in order to make an instance managed and persistent then synchronize the persistence context to the underlying database. Returns the original source entity – Anyul Rivas Aug 21 '18 at 13:52
5

Remove cascading from the child entity Transaction, it should be just:

@Entity class Transaction {
    @ManyToOne // no cascading here!
    private Account account;
}

(FetchType.EAGER can be removed as well as it's the default for @ManyToOne)

That's all!

Why? By saying "cascade ALL" on the child entity Transaction you require that every DB operation gets propagated to the parent entity Account. If you then do persist(transaction), persist(account) will be invoked as well.

But only transient (new) entities may be passed to persist (Transaction in this case). The detached (or other non-transient state) ones may not (Account in this case, as it's already in DB).

Therefore you get the exception "detached entity passed to persist". The Account entity is meant! Not the Transaction you call persist on.


You generally don't want to propagate from child to parent. Unfortunately there are many code examples in books (even in good ones) and through the net, which do exactly that. I don't know, why... Perhaps sometimes simply copied over and over without much thinking...

Guess what happens if you call remove(transaction) still having "cascade ALL" in that @ManyToOne? The account (btw, with all other transactions!) will be deleted from the DB as well. But that wasn't your intention, was it?

4

In your entity definition, you're not specifying the @JoinColumn for the Account joined to a Transaction. You'll want something like this:

@Entity
public class Transaction {
    @ManyToOne(cascade = {CascadeType.ALL},fetch= FetchType.EAGER)
    @JoinColumn(name = "accountId", referencedColumnName = "id")
    private Account fromAccount;
}

EDIT: Well, I guess that would be useful if you were using the @Table annotation on your class. Heh. :)

  • 1
    yeah I don't think this is it, all the same, I added @JoinColumn(name = "fromAccount_id", referencedColumnName = "id") and it didn't work :). – Paul Sanwald Nov 13 '12 at 23:19
  • Yeah, I usually don't use a mapping xml file for mapping entities to tables, so I usually assume it's annotation based. But if I had to guess, you're using a hibernate.xml to map entities to tables, right? – NemesisX00 Nov 13 '12 at 23:21
  • no, I'm using spring data JPA, so it's all annotation based. I have a "mappedBy" annotation on the other side: @OneToMany(cascade = {CascadeType.ALL},fetch= FetchType.EAGER, mappedBy = "fromAccount") – Paul Sanwald Nov 13 '12 at 23:22
4

If nothing helps and you are still getting this exception, review your equals() methods - and don't include child collection in it. Especially if you have deep structure of embedded collections (e.g. A contains Bs, B contains Cs, etc.).

In example of Account -> Transactions:

  public class Account {

    private Long id;
    private String accountName;
    private Set<Transaction> transactions;

    @Override
    public boolean equals(Object obj) {
      if (this == obj)
        return true;
      if (obj == null)
        return false;
      if (!(obj instanceof Account))
        return false;
      Account other = (Account) obj;
      return Objects.equals(this.id, other.id)
          && Objects.equals(this.accountName, other.accountName)
          && Objects.equals(this.transactions, other.transactions); // <--- REMOVE THIS!
    }
  }

In above example remove transactions from equals() checks. This is because hibernate will imply that you are not trying to update old object, but you pass a new object to persist, whenever you change element on the child collection.
Of course this solutions will not fit all applications and you should carefully design what you want to include in the equals and hashCode methods.

1

Maybe It is OpenJPA's bug, When rollback it reset the @Version field, but the pcVersionInit keep true. I have a AbstraceEntity which declared the @Version field. I can workaround it by reset the pcVersionInit field. But It is not a good idea. I think it not work when have cascade persist entity.

    private static Field PC_VERSION_INIT = null;
    static {
        try {
            PC_VERSION_INIT = AbstractEntity.class.getDeclaredField("pcVersionInit");
            PC_VERSION_INIT.setAccessible(true);
        } catch (NoSuchFieldException | SecurityException e) {
        }
    }

    public T call(final EntityManager em) {
                if (PC_VERSION_INIT != null && isDetached(entity)) {
                    try {
                        PC_VERSION_INIT.set(entity, false);
                    } catch (IllegalArgumentException | IllegalAccessException e) {
                    }
                }
                em.persist(entity);
                return entity;
            }

            /**
             * @param entity
             * @param detached
             * @return
             */
            private boolean isDetached(final Object entity) {
                if (entity instanceof PersistenceCapable) {
                    PersistenceCapable pc = (PersistenceCapable) entity;
                    if (pc.pcIsDetached() == Boolean.TRUE) {
                        return true;
                    }
                }
                return false;
            }
1

Even if your annotations are declared correctly to properly manage the one-to-many relationship you may still encounter this precise exception. When adding a new child object, Transaction, to an attached data model you'll need to manage the primary key value - unless you're not supposed to. If you supply a primary key value for a child entity declared as follows before calling persist(T), you'll encounter this exception.

@Entity
public class Transaction {
    @Id
    @GeneratedValue(strategy = GenerationType.AUTO)
    private Long id;
....

In this case, the annotations are declaring that the database will manage the generation of the entity's primary key values upon insertion. Providing one yourself (such as through the Id's setter) causes this exception.

Alternatively, but effectively the same, this annotation declaration results in the same exception:

@Entity
public class Transaction {
    @Id
    @org.hibernate.annotations.GenericGenerator(name="system-uuid", strategy="uuid")
    @GeneratedValue(generator="system-uuid")
    private Long id;
....

So, don't set the id value in your application code when it's already being managed.

1

You need to set Transaction for every Account.

foreach(Account account : accounts){
    account.setTransaction(transactionObj);
}

Or it colud be enough (if appropriate) to set ids to null on many side.

// list of existing accounts
List<Account> accounts = new ArrayList<>(transactionObj.getAccounts());

foreach(Account account : accounts){
    account.setId(null);
}

transactionObj.setAccounts(accounts);

// just persist transactionObj using EntityManager merge() method.
0
cascadeType.MERGE,fetch= FetchType.LAZY
  • Hi James and welcome, you should try and avoid code only answers. Please indicate how this solves the problem stated in the question (and when it is applicable or not, API level etc.). – Maarten Bodewes Aug 23 '18 at 19:22
  • VLQ reviewers: see meta.stackoverflow.com/questions/260411/…. code-only answers do not merit deletion, the appropriate action is to select "Looks OK". – Nathan Hughes Aug 23 '18 at 21:08
0

In my case I was committing transaction when persist method was used. On changing persist to save method , it got resolved.

protected by Maarten Bodewes Aug 23 '18 at 19:22

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