我是jpql的新手,我有以下情况。一对多查询jpql
我有两个实体地址和地址。
@Entity
public class Place{
@OneToMany
private List<Address> addresses;
....
}
@Entity
public class Address{
String description;
Date dataFrom;
Date dataTo;
@ManyToOne
private Place place;
....
}
我想得到最后一个地址的描述。 我试图做到这一点:
select a.description from place p join p.addresses a.....
,现在我应该按时间顺序获得最后的最后一个地址。 我该怎么办?
SELECT addresses.description
FROM place p JOIN p.addresses addresses
ORDER BY addresses.dateFrom
然后返回这是一个resultList并获得名单上的第一个项目,我会说你也许可以做到像在T-SQL SELECT TOP 1,但是,我不相信JPQL支持这一点。
完美!谢谢你。 –
Criteria criteria = session.createCriteria(Place.class, "place");
criteria.createAlias("place.addresses", "addresses")
criteria.add(Order.desc("addresses.dataFrom"));
criteria.setProjection(Projections.property("addresses"));
List<Address> addresses = criteria.list();
for (Address address : addresses) {
System.out.println(address.description);
}
如果你想找到基于地点ID使用下面一个地址的地址。
Criteria criteria = session.createCriteria(Place.class, "place");
criteria.add(Restrictions.eq("place.id", put the place id here);
criteria.createAlias("place.addresses", "addresses")
criteria.add(Order.desc("addresses.dataFrom"));
criteria.setProjection(Projections.property("addresses"));
List<Address> addresses = criteria.list();
for (Address address : addresses) {
System.out.println(address.description);
}
尝试使用子查询,像
select a.description from place p join p.addresses a where a.dataFrom = (select max(address.dataFrom) from Address address where address.place = p)
是地址类有参考的地方。像@Entity 公共课地址{Place place} – Prabhakaran
是的,我有一个双向关联 – Skizzo
如果你还好吧,添加了答案.... else注释确切的要求。 – Prabhakaran