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Using spring-batch and JPA (provided by hibernate).

I have a step that does the following:

  • reads all clients from DB (Client entity)
  • enhances them with data from 3rd party. The ItemProcessor goes to the 3rd party data source, fetches some data that it stores in the Client entity itself (its fields) but also brings more data that is stored as different entities (ClientSale) and Client has a property of List which is mapped by ManyToOne.
  • The modified entity (Client) and the new ones (ClientSale) need to be stored in DB.

The reader part is straight forward, and for the writer I used JPAItemWriter. At the processing stage I tried to update the fields, create the new ones and add them to the client's list and return the client, hoping that the writer will write both the referenced objects and the client itself to the DB.

Instead, I got an error saying that ClientSale with id #123213213 doesn't exist in the DB.

How to I overcome this? Should I return a list of objects (different types) from my processor (the client + all ClientSale)? Can JPAItemWriter handle a list of objects? Another problem with that is that I'll have to manually update the client_id in the ClientSale entities instead of adding them to the list and having hibernate to understand the relation between them and who points where..

What's the best practice here?

Thanks!

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2 Answers 2

up vote 1 down vote accepted

OK.. Here is what I did at the end based on everything: I created a MultiEntityItemWriter that can receive as item a list (and in that case it opens it and writes all elements to the delegated ItemWriter.

Code:

public class MultiEntityItemWriter implements ItemWriter<Object>{

private ItemWriter<Object> delegate;

@Override
public void write(List<? extends Object> items) throws Exception {
    List<Object> toWrite = new ArrayList<>();

    for (Object item : items) {
        if (item instanceof Collection<?>) {
            toWrite.addAll((Collection<?>)item);
        } else {
            toWrite.add(item);
        }
    }
    delegate.write(toWrite);
}


public ItemWriter<Object> getDelegate() {
    return delegate;
}

public void setDelegate(ItemWriter<Object> delegate) {
    this.delegate = delegate;
}

}

Now, my ItemProcessor can output a list with all entities to be written and I don't need to rely on JPA to understand that there are more entities to be committed to the DB.

hope it helps...

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I think you are trying to accommodate multiple steps in single step. Try finding a way and define your job as two step process instead of one.

    <batch:job id="MyJob" incrementer="incrementer" job-repository="jobRepository">
     <batch:step id="step1" next="step2">
       <tasklet >
          <chunk reader="reader1" 
                     writer="writer1" 
                     processor="processor1" 
                     commit-interval="10" />
       </tasklet>
     </batch:step>
     <batch:step id="step2">
       <tasklet >
          <chunk reader="reader2" 
                     writer="writer2" 
                     processor="processor2" 
                     commit-interval="10" />
       </tasklet>
     </batch:step>
    </batch:job>

If required, use appropriate caching for optimal performance.

EDIT:

In your item writer, please make sure you are using entityManager/session of first data source. Also use merge to persist your eneities in place of persist.

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thanks Singh! Can you please elaborate more on how you'd split the step described into two? I want to access the data source once and enhance an entity with more data. Do you suggest one processor will create the ClientSales objects and the other will read the clients again and only set some fields on them? –  Zach Moshe Oct 14 '12 at 7:58
    
I didn't say read twice. If you intend to use step1 data in step2, use appropriate caching to cache the data along with appropriate chunking. –  Yogendra Singh Oct 14 '12 at 15:09
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