问题
I would like to have a collection of child objects (here cat-kitten example) that are ordered. And keep their order on adding of new elements.
@Entity
public class Cat {
@OneToMany(mappedBy = "cat", cascade = CascadeType.ALL)
@OrderBy("name ASC")
private List<Kitten> kittens;
public void setKittens(List<Kitten> kittens) { this.kittens = kittens; }
public List<Kitten> getKittens() { return kittens; }
}
When I do cat.getKittens.add(newKitten) the order by name will be broken.
Is it possible to let hibernate do the work of keeping the collection always ordered? By using the @Sort hibernate annotation?
@Sort has the disadvantage that it forces you to implement Comparable interface ...
What would be the right 'pure JPA' way to do that? Saving everything to DB and reloading it?
Makes it sense to combine @OrderBy and @Sort?
Update
Solution up to now is to combine @OrderBy and @Sort. @OrderBy leads to a ORDER BY clause in the generated SQL which is better for performance (I assume that java is "sorting" again on inserting into the sorted container, but that should be much faster because the elements are already sorted)
@Sort together with an implemented Comparable interface leads to a always sorted container. Note that I use now SortedSet instead of List. Here the updated Code:
@Entity
public class Cat {
@OneToMany(mappedBy = "cat", cascade = CascadeType.ALL)
@OrderBy("name ASC")
@Sort(type = SortType.NATURAL)
private SortedSet<Kitten> kittens;
public void setKittens(SortedSet<Kitten> kittens) { this.kittens = kittens; }
public SortedSet<Kitten> getKittens() { return kittens; }
}
回答1:
If you want to avoid non-standard annotations, you could make kittens use some sorted Collection implementation. This would ensure that kittens is always in sorted order. Something like this:
@Entity
public class Cat {
@OneToMany(mappedBy = "cat", cascade = CascadeType.ALL)
@OrderBy("name ASC")
private SortedSet<Kitten> kittens = new TreeSet<>();
}
Note that this approach also requires Kitten to implement Comparable (alternatively, you could pass a Comparator to your TreeSet constructor). Also, I'm using a Set because I'm not aware of any standard sorted List implementation and I'm assuming the Cat does not have any clones in its litter =p.
Update:
I'm not sure how picky Hibernate is with its getter/setter definitions, but with EclipseLink I've been able to remove a setter entirely and wrap the List returned by my getter in a Collections.unmodifiableList(...) call. I then defined special methods for modifying the collection. You could do the same thing and force callers to use an add method that inserts elements in sorted order. If Hibernate complains about not having the getter/setter, maybe you could change the access modifier? I guess it comes down to how far you're willing to go to avoid non standard dependencies.
回答2:
The latest version of Hibernate uses new annotations to accomplish this:
@SortNatural
@OrderBy("name ASC")
private SortedSet<Kitten> kittens = new TreeSet<>();
There are two parts to this:
- The
@OrderByannotation specifies that anorder byclause should be added to the database query when fetching the related records. - The
@SortNaturalannotation assumes thatKittenimplements theComparableinterface and uses that information when constructing theTreeSetinstance. Note that you can replace this with the@SortComparatorannotation, which allows you to specify aComparatorclass that will be passed to theTreeSetconstructor.
See documentation: https://docs.jboss.org/hibernate/orm/5.2/userguide/html_single/Hibernate_User_Guide.html#collections-sorted-set
回答3:
@Entity
public class Cat {
@OneToMany(mappedBy = "cat", cascade = CascadeType.ALL)
private Set<Kitten> kittens = new TreeSet<>();
}
No need to write
@OrderBy("name ASC")
Make Sure Kitten Class implements Comparable interface properly.
来源:https://stackoverflow.com/questions/19871765/jpa-hibernate-sorted-collection-orderby-vs-sort