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Is there a possibility in JPA 2.0 to asure that an embedded object is embedded with only one object, but not several?

In my case I have an Address that I can assign to a Customer. I want every customer to use its own address object and would like to create a constraint that makes sure that no two customers share the actually same object.

My code looks like this:

@Entity
public Customer {
    @Id
    @GeneratedValue
    private Long id;

    @Embedded
    private Address address;

    // ..   
}

@Embeddable
public Address {
    private String street;
    private String city;

    // ..
}

Currently, if I create two customers and assign them the same Address object, then persist and read them, they again share the object with the same identity. I want to prohibit saving such customers that share addresses with other customers.

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If I understand your point, you would want to create a unique address entry even if it's address is same in terms of data? –  Phani Apr 11 '12 at 15:06
    
@Phani Exactly. Future changes to the address should affect only the one customer that holds that address and not have any side-effects on other customers. One Java-way of solving this would be creating a copy of the address when setting it (I assume), but I'm looking for a JPA-based solution. –  riwi Apr 11 '12 at 15:10
1  
If you didn't override the equals method, it should ideally store 2 entries to database. Please check the sql generated for the action to identify what's causing it to be stored as 1. –  Phani Apr 11 '12 at 15:12

1 Answer 1

up vote 1 down vote accepted

The simpliest approach in this case is to create a copy of Address object in Customer.setAddress().

Also, I'm not sure that different Customers can share Address with the same identity when retrieved from the database. Perhaps you get the same objects from the session cache because you save and read them in the same session.

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