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I am trying to create a new database object, save it, and check to see if the save succeeded. What is the right way to do this:

class Document {
    String externalId;

    static constraints {
        externalId(blank: false, unique: true);
    }        
}

def createDocuments(List<String> ids) {

    Document.withTransaction() {
        ids.each { String id ->
            new Document(externalId: id).save();
        }
    }

    // want to test here if transaction succeeded.
}

This transaction may fail because some other user may have created one of the documents at the same time. Thus while an instance is valid (i.e., its externalId is not blank) it may not be unique. But there is no way to tell without running the transaction.

What to do?

UPDATE

Based on the answers provided so far, here is the crux of my problem:

If I run a transaction that calls multiple saves, when do the saved objects become available to other hibernate sessions? Some possibilities:

  1. When the save call returns
  2. When the transaction is committed
  3. Some other indeterminate time (presumably before #2)

If a save on one object fails because of a uniqueness constraint, and I roll back the transaction, will all other saves be rolled back too, even though they did not have a conflict? If not, what is the point of wrapping all this in a transaction?

share|improve this question
    
.save returns the persisted object itself in case of successful save. You can us groovy truth on that. Have a look at save in grails docs. –  dmahapatro Jun 18 '13 at 18:17
    
I thought that the transaction will not commit until everything executes, so it wasn't clear to me that the save() would be able to detect duplicate violations. I don't want to specify flush: true on my saves because I want to optimize performance: I want to have one transaction for a bunch of documents. –  Gene Golovchinsky Jun 18 '13 at 18:22
    
Understandable. But validation here will be handled by hibernate even before flushing to database, so without using flush: true you should be able to validate it efficiently. –  dmahapatro Jun 18 '13 at 18:46
    
I don't see how it can validate uniqueness before committing the transaction. –  Gene Golovchinsky Jun 18 '13 at 21:18
    
That is the whole point in having an ORM persistence layer like Hibernate. When you say unique: true in constraints, while saving hibernate (session) would check if there is any other record with the same externalId present in persistence layer. If found, then hibernate save would throw a validation message back which is in the same session/transaction. Based on that validation message you can decide what you need to do. –  dmahapatro Jun 18 '13 at 21:38

2 Answers 2

You can validate the object before actually saving to database.
Also you can use exception handling too, to rollback transaction in case.
General pattern that I follow in these type of scenarios is like,

DomainClass.withTransaction{ tx ->
   try{
       def ref = new DomainClass(...)
       if(ref.validate()){
           ref.save()
       }
        else{
           //throw some invalid instance 

        }

    }
    catch(e){
      tx.setRollbackOnly()
      log.error e
    }
}
share|improve this answer
    
As with @dmahapatro's example, this is not thread-safe, and doesn't seem to do anything that a save() followed by a null test doesn't do. –  Gene Golovchinsky Jun 19 '13 at 16:47
    
To clarify a bit, I could make this thread-safe by synchronizing the method, but that would introduce a huge performance bottleneck. –  Gene Golovchinsky Jun 19 '13 at 20:45

Ok. It does make sense after reading my favorite article for the n-th time.

Is externalId the primary key for Document? If yes, then the optimized approach to use here would be to check the existence of the document before saving it:

//Avoid duplication in the submission as well by using Set<String>
def createDocuments(Set<String> ids) { 
    Document.withTransaction {
        ids.each { String id ->
            //If `id` is not the primary key then use
            //if(!Document.findByExternalId(id)){}
            //This way you maintain the integrity of the Document.
            if(!Document.exists(id)){
                if(!new Document(externalId: id).save()){
                    //Validation failed on constraints. Handle them here
                }

                //You may not need to call save on each Document, 
                //unless you need to validate the constraints
                //as all of the Documents created will be automatically saved to 
                //cache and ultimately flushed to db by end of the session, which
                //is in this case exiting the action method.
            }
        }
    }

    // You do not need to test here if transaction succeeded.
}
share|improve this answer
    
Two points: the sequence if(!Document.exists(id)) ... new Document(externalId: id).save() is not atomic: another thread might also be trying to insert the same document at the same time, and both may pass the (not) existence test, but one of the transactions will not succeed. Second: the article you cite says "If you just create a new instance via the new keyword, then the object is not attached to the session until the save() method is called." –  Gene Golovchinsky Jun 19 '13 at 16:36
    
I edited the question (and the title) to focus more clearly on what I think is the crux of the issue I am facing. –  Gene Golovchinsky Jun 19 '13 at 16:48
    
@GeneGolovchinsky Have you tried testing that with a multi-threaded scenario to see how does it behave? –  dmahapatro Jun 19 '13 at 17:36
    
I tested using two threads saving the same documents using the save() method and it appears that save() will return null when a document instance was created by the other thread. But then I don't understand why I need a transaction. Hence the re-worded question. –  Gene Golovchinsky Jun 19 '13 at 18:14

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