8

I want to make use of a @NamedQuery inside a JpaRepository. But it does not work:

public interface MyEntityRepository extends JpaRepository<MyEntity, Long> {
    @Query(name = MyEntity.FIND_ALL_CUSTOM)
    List<MyEntity> findAllCustom(Pageable pageable);
}

@Entity
@NamedQuery(
    name = MyEntity.FIND_ALL_CUSTOM, query = "select * from MyEntity me where me.age >= 18"
)
public class MyEntity {
    public static final String FIND_ALL_CUSTOM = "findAllCustom";
}

Result:

org.springframework.data.mapping.PropertyReferenceException: No property findAllCustom found for type MyEntity!
    at org.springframework.data.mapping.PropertyPath.<init>(PropertyPath.java:75)
    at org.springframework.data.mapping.PropertyPath.create(PropertyPath.java:327)
    at org.springframework.data.mapping.PropertyPath.create(PropertyPath.java:307)
    at org.springframework.data.mapping.PropertyPath.from(PropertyPath.java:270)
    at org.springframework.data.mapping.PropertyPath.from(PropertyPath.java:241)
    at org.springframework.data.repository.query.parser.Part.<init>(Part.java:76)
    at org.springframework.data.repository.query.parser.PartTree$OrPart.<init>(PartTree.java:235)
    at org.springframework.data.repository.query.parser.PartTree$Predicate.buildTree(PartTree.java:373)
    at org.springframework.data.repository.query.parser.PartTree$Predicate.<init>(PartTree.java:353)
    at org.springframework.data.repository.query.parser.PartTree.<init>(PartTree.java:84)
    at org.springframework.data.jpa.repository.query.PartTreeJpaQuery.<init>(PartTreeJpaQuery.java:61)
    at org.springframework.data.jpa.repository.query.JpaQueryLookupStrategy$CreateQueryLookupStrategy.resolveQuery(JpaQueryLookupStrategy.java:94)
    at org.springframework.data.jpa.repository.query.JpaQueryLookupStrategy$CreateIfNotFoundQueryLookupStrategy.resolveQuery(JpaQueryLookupStrategy.java:205)
    at org.springframework.data.jpa.repository.query.JpaQueryLookupStrategy$AbstractQueryLookupStrategy.resolveQuery(JpaQueryLookupStrategy.java:72)
    at org.springframework.data.repository.core.support.RepositoryFactorySupport$QueryExecutorMethodInterceptor.<init>(RepositoryFactorySupport.java:369)
    at org.springframework.data.repository.core.support.RepositoryFactorySupport.getRepository(RepositoryFactorySupport.java:192)
    at org.springframework.data.repository.core.support.RepositoryFactoryBeanSupport.initAndReturn(RepositoryFactoryBeanSupport.java:239)
    at org.springframework.data.repository.core.support.RepositoryFactoryBeanSupport.afterPropertiesSet(RepositoryFactoryBeanSupport.java:225)
    at org.springframework.data.jpa.repository.support.JpaRepositoryFactoryBean.afterPropertiesSet(JpaRepositoryFactoryBean.java:92)
    at org.springframework.beans.factory.support.AbstractAutowireCapableBeanFactory.invokeInitMethods(AbstractAutowireCapableBeanFactory.java:1633)
    at org.springframework.beans.factory.support.AbstractAutowireCapableBeanFactory.initializeBean(AbstractAutowireCapableBeanFactory.java:1570)
    ... 28 more

Update:

public interface MyEntityRepository extends JpaRepository<MyEntity, Long> {
    List<MyEntity> findAllCustom(Pageable pageable);
}

@Entity
@NamedQuery(
    name = "MyEntity.findAllCustom", query = "select * from MyEntity me where me.age >= 18"
)
public class MyEntity {

}

Still same exception:

PropertyReferenceException: No property findAllCustom found for type MyEntity!
7

Take a look at the documentation of Spring Data JPA - Using JPA NamedQueries.

I advise you follow the conventions set in the documentation (starting with the simple name of the configured domain class, followed by the method name separated by a dot). Cut the underscore and name the query like

@NamedQuery(name = "MyEntity.findAllCustom", query="...")

or even better add a suggestive name like findByAge or sth.

To allow execution of these named queries all you need to do is to specify MyEntityRepository as follows:

public interface MyEntityRepository extends JpaRepository <MyEntity, Long> {
    List<MyEntity> findAllCustom();
}

I implemented it with the JpaRepository as the documentation exemplifies. But you could try with a simple CrudRepository and see if that works.

I think the problem was you where using @Query and the Queries annotated to the query method will take precedence over queries defined using @NamedQuery. Read the docs for the @Query usage, i think you where also using it wrong.


Update To use the Pageable, according to this answer

to apply pagination, a second subquery must be derived. Because the subquery is referring to the same fields, you need to ensure that your query uses aliases for the entities/tables it refers to

that means you would rewrite your query like query ="select * from MyEntity me where me.age >= 18".

The example was used for @Query, but that is also a named query so it should apply to your case as well. The only difference is that with @Query you actually bind them directly rather than annotating them to the domain class.


Update 2

I tried in my own app. First off you should have the query using the alias instead of * (i.e me). Secondly the string you use FIND_ALL_CUSTOM is not following the convention which is "MyEntity.findAllCustom".

Solution

Copy paste this:

public interface MyEntityRepository extends JpaRepository<MyEntity, Long> {
    List<MyEntity> findAllCustom(Pageable pageable);
    List<MyEntity> findAllCustom();
}

@Entity
@NamedQuery(
    name = MyEntity.FIND_ALL_CUSTOM, query = "select me from MyEntity me where me.age >= 18"
)
public class MyEntity {
    public static final String FIND_ALL_CUSTOM = "MyEntity.findAllCustom";
}

Both will work. For the one with the pageable method argument call it as myEntityRepository.allCustom(new PageRequest(0,20)). Ofc, you know that myEntityRepository is injected.

  • I just discovered that it indeed works as expected, BUT my problem is the parameter Pageable pageable that somehow seems to confuse spring in resolving the named query. Do you know what can be done here? – membersound Aug 6 '15 at 8:07
  • Well the PagingAndSortingRepository abstraction over CrudRepository should make pagination over any entity i think. Assuming you called the method with Pageble argument correctly (say new PageRequest(1, 20) ). There have been reported bugs around this issue( forum.spring.io/forum/spring-projects/data/… ) . – Laurentiu L. Aug 6 '15 at 8:28
  • @membersound however, i don't think it's a bug. I updated the answer with a possible explanation. – Laurentiu L. Aug 6 '15 at 8:31
  • OK, anyways the @NamedQuery is only found without Pagable argument. As soon as I add it, the error exception above is raised. – membersound Aug 6 '15 at 9:13
  • Have you added an alias to the query? You mean it can't be called without an argument and without an annotation like in my answer? – Laurentiu L. Aug 6 '15 at 9:19

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