目前,我有一个HQL查询,可以从一组指定的奖项中返回所有拥有 ANY 奖励的会员:
from Member m left join m.awards as a where a.name in ("Trophy","Ribbon");
我现在需要的是HQL,它将返回所有拥有所有奖项的会员。
所以,假设这个数据:
Joe has Trophy, Medal
Sue has Trophy, Ribbon
Tom has Trophy, Ribbon, Medal
上面的查询会返回Joe,Sue和Tom,因为这三个人至少拥有一个Trophy或Ribbon。但我只需要回归苏和汤姆,因为他们是唯一拥有所有指定奖项(奖杯和彩带)的人。
这是类结构(简化):
class Member {
private String name;
private Set<Award> awards;
}
class Award {
private String name;
}
答案 0 :(得分:3)
select m from Member m left join m.awards as a where a.name in ("Trophy","Ribbon") group by m having count(a)=2
答案 1 :(得分:2)
重复自己...... 获得完全具有给定奖项的成员的代码:
from Member m
where not exists (
from Award a where a.name in {"Trophy", "Ribbon"}
and a not in(
select * from Award a2 where a2.owner = m
)
) and not exists (
from Award a3 where a3.owner = m and a3 not in {"Trophy", "Ribbon"}
)
答案 2 :(得分:0)
您可以通过向查询调用IE中添加DISTINCT_ROOT_ENTITY结果转换器来强制执行不同的结果:
getSession().createQuery(hql).setResultTransformer(Criteria.DISTINCT_ROOT_ENTITY)
我遇到了类似的问题,但我需要做的是(按照你的例子)选择所有成员,他们拥有所有奖项,而不是更多。因此,在您的示例中,唯一正确的结果是Sue。有任何想法吗?