我有一个实体(人),它是另一个实体(用户)的一对一。我需要使用CriteriaQuery查找与User.name匹配的所有Person实体。
我可以对Person的直接属性做简单的CriteriaQuery:
builder.like(builder.lower(root.get(column)), "%" + pattern.toLowerCase() + "%")
在这种更复杂的情况下,我对如何执行CriteriaQuery查询有些迷惑。从我在这里和其他地方的搜索来看,我认为我必须使用某种Join,但是我无法为之困惑。
@Entity()
public class Person extends ModelCore {
@Basic()
private String iD = null;
@OneToOne(cascade = { CascadeType.ALL })
@JoinColumns({ @JoinColumn(name = "T_User") })
private User user = null;
}
@Entity()
public class User extends ModelCore {
@Basic()
private String iD = null;
@Basic()
private String name = null;
}
@Entity()
public class ModelCore{
@Basic()
private Long dbID = null;
}
已解决
Nikos的解决方案效果很好(谢谢!):
String username = ... // the criterion
EntityManager em = ...
CriteriaBuilder cb = em.getCriteriaBuilder();
CriteriaQuery<Person> query = cb.createQuery(Person.class);
Root<Person> root = query.from(Person.class);
Join<Person, User> joinUser = root.join("user");
query.where(cb.like(cb.lower(joinUser.get("name")), "%" + username.toLowerCase() + "%"));
编辑1:添加了ModelCore作为基类。 编辑2:添加工作解决方案
答案 0 :(得分:1)
随着复杂性的增加,标准API可能会造成混乱。我始终遵循的第一步是写下JPQL查询。在这种情况下:
SELECT p
FROM Person p
JOIN User u
WHERE LOWER(u.name) LIKE :username
将其转换为Criteria API是:
// These are initializations
String username = ... // the criterion
EntityManager em = ...
CriteriaBuilder cb = em.getCriteriaBuilder();
// Next line means "the result of the query is Person"
CriteriaQuery<Person> query = cb.createQuery(Person.class);
// This matches the "FROM Person p" part of the JPQL
Root<Person> root = query.from(Person.class);
// This matches the "JOIN User u" part of the JPQL
Join<Person, User> joinUser = root.join("user"); // if you have created the metamodel, adjust accordingly
// This is the "WHERE..." part
query.where(cb.like(cb.lower(joinUser.get("name")), "%" + username.toLowerCase() + "%"));
WHERE部分令人困惑,因为您必须将中缀SQL / JPQL运算符转换为前缀(即x LIKE y变为cb.like(x, y)),但是映射很简单。