49

I'm trying to implement a custom Spring repository. I have the interface:

public interface FilterRepositoryCustom {
    List<User> filterBy(String role);
}

the implementation:

public class FilterRepositoryImpl implements FilterRepositoryCustom {
...
}

and the "main" repository, extending my custom repository:

public interface UserRepository extends JpaRepository<User, String>, FilterRepositoryCustom {
...
}

I'm using Spring Boot and, according to the docs:

By default, Spring Boot will enable JPA repository support and look in the package (and its subpackages) where @SpringBootApplication is located.

When I run my application, I get this error:

org.springframework.data.mapping.PropertyReferenceException: No property filterBy found for type User!

77

The problem here is that you are creating FilterRepositoryImpl but you are using it in UserRepository. You need to create UserRepositoryImpl to make this work.

Read this doc for more detail

Basically

public interface UserRepositoryCustom {
    List<User> filterBy(String role);
}

public class UserRepositoryImpl implements UserRepositoryCustom {
...
}

public interface UserRepository extends JpaRepository<User, String>, UserRepositoryCustom {
...
}

Spring Data 2.x update
This answer was written for Spring 1.x. As Matt Forsythe pointed out, the naming expectations changed with Spring Data 2.0. The implementation changed from the-final-repository-interface-name-with-an-additional-Impl-suffix to the-custom-interface-name-with-an-additional-Impl-suffix.

So in this case, the name of the implementation would be: UserRepositoryCustomImpl.

| improve this answer | |
  • 12
    While I agree that this works (and have seen it in action), I am having a hard time reconciling this behavior with the linked documentation, which explicitly uses a CustomizedUserRepositoryImpl on a repository named UserRepository. The docs then go further (example 29) to use HumanRepositoryImpl AND ContactRepositoryImpl together on UserRepository. They seem to indicate that the important thing is for the fragment implementation name to match the fragment interface name, rather than the base repository name, but that is clearly not the case from what I have seen. I am confused... – matt forsythe Nov 28 '17 at 18:59
  • 25
    Did some more digging and answered my own question: the requirement that the implementation name be based on the base repository name is only true for older (1.x) versions of spring-data. In version 2.x of spring-data, this requirement changes. In 2.x, the impl name must follow the custom interface name. – matt forsythe Nov 28 '17 at 20:12
  • You saved my time and made me happy! Thanks, naming with Spring Data really maters, event for tests. – Alex Efimov Dec 31 '17 at 0:40
  • 1
    And also packages for xxxRepository & xxxRepositoryImpl matters. if xxxRepository is in com.test package then xxxRepositoryImpl sholuld be in com.test.impl – Bala Apr 19 '18 at 8:14
  • 1
    Same issue in Spring's docs: docs.spring.io/spring-data/jpa/docs/current/reference/html/… CustomizedUserRepository, CustomizedUserRepositoryImpl and UserRepository, but it doesn't work, because CustomizedUserRepositoryImpl should be UserRepositoryImpl Thanks for solution. – Guram Savinov Jun 22 '18 at 12:19
3

Another way this error can happen if the impl class for FilterRepositoryCustom isn't picked up in your spring configuration:

@EnableJpaRepositories(basePackageClasses = {RepoPackageMarker.class, FilterRepositoryCustomImpl.class})
| improve this answer | |
1

Is it a must that the customMethod() in the CustomRepository can only have parameters defined that are either

1.Entity class name - customMethod(User user),

2.Entity class attributes - customMethod(String firstName), here firstName is an attribute of User Entity class.

Can I not have something like customMethod(CustomCriteria criteria), the criteria class contain the various attributes that are used to construct a dynamic query.

e.g. getStatusByCriteria(CustomCriteria criteria), CustomCriteria is a simple pojo annotated with @Component so that spring identifies it.

When I tried this I get an error:

org.springframework.data.mapping.PropertyReferenceException: No property criteria found for type UserRepository!

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0

I had the same problem. Please check if your packages structure looks like this

custom
   impl
      - FilterRepositoryCustomImpl.class
- FilterRepositoryCustom.class      

Because when I try to use my custom repo it doesn't see the implementation. (implementation should be in the same package or in sub-packages for Spring to see it)

Maybe it helps somebody (ノ^∇^)

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-1

I had the same problem in a project of mine. I solved the problem by adding a line in my pom.xml

<plugin>
    <groupId>org.apache.maven.plugins</groupId>
    <artifactId>maven-compiler-plugin</artifactId>
    <configuration>
        <includes>
            <include>com/my/package/entities/*.java</include>
            <include>com/my/package/repositories/*.java</include>
            <include>com/my/package/repositories/impl/*.java</include> <!-- add this -->
        </includes>
    </configuration>
</plugin>
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-5

Old way:

Entity aThing = repository.findOne(1L);

New way:

Optional<Entity> aThing = repository.findById(1L);
| improve this answer | |
  • 4
    Welcome to Stack Overflow. While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value.How to Answer – Elletlar Nov 7 '18 at 21:23

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