18

I have the following entity:

package com.server.models;
@Entity
@Table(name="users")
@NamedQueries({
    @NamedQuery(name=User.QUERY_FIND_USER,query="SELECT c FROM user c WHERE c.username = :username")
})
public class User {

    public static final String QUERY_FIND_USER = "LoginFindUser";
    //  ...
}

And then using the Entity Manager (em) i'm doing the following:

package com.server.controllers;
@Service
@Transactional
@RestController
@RequestMapping("/user")
public class LoginController {
    @PersistenceContext
    private EntityManager em;
 // my code
    TypedQuery<User> queries = em.createNamedQuery(User.QUERY_FIND_USER,User.class).setParameter("username", username);
    List<User> users = queries.getResultList();
}

However I am getting the following error:

java.lang.IllegalArgumentException: No query defined for that name [LoginFindUser]

Here's my spring-boot Configuration. This should include the scanning of the entity.

package com.server.boot;

@Configuration
@ComponentScan({"com.server"})
@EnableAutoConfiguration
public class Starter {
    public static void main(String[] args){
        SpringApplication.run(Starter.class,args);
        System.out.println("started application");
    }

    @Bean
    public LoginController loginController(){
        return new LoginController();
    }

    @Bean
    public HibernateJpaSessionFactoryBean sessionFactory(EntityManagerFactory emf) {
         HibernateJpaSessionFactoryBean factory = new HibernateJpaSessionFactoryBean();
         factory.setEntityManagerFactory(emf);
         return factory;
    }

}
7
  • Does it work when you put a simple String as name? If yes, it's probably some evaluation time difference Nov 25, 2014 at 11:00
  • 1
    Then check if User entity is defined in your persistence unit. Nov 25, 2014 at 11:11
  • I'm using spring-boot so the persistence is autodefined. The Context Scan should be including it Nov 25, 2014 at 11:12
  • added the configuration to the question Nov 25, 2014 at 11:16
  • 2
    And BTW, if the entity was mapped, you would get an exception because the query is invalid. user != User.
    – JB Nizet
    Nov 25, 2014 at 11:20

5 Answers 5

21

Found it. Thanks to the guys in the comments

Add

@EntityScan("com.server.models")

to your configuration class

and I had an error in the query cause user needed to be User

2
  • what is the version of persistence has this annotation ?
    – Jess
    Aug 21, 2017 at 21:54
  • or to <property name="packagesToScan" value="com.servers.model" /> if you are using old dispatcher-servlet.xml
    – Shilan
    Feb 15, 2019 at 11:59
8

Okay, this might be an issue with you persistence configuration. If your models definitions are all in a separate ejb, make sure to add them in the persistence.xml in the persistence-unit

1

You can do by below configuration.

private static final String[] ENTITYMANAGER_PACKAGES_TO_SCAN = { "a.b.c.entity" };

@Bean
public LocalContainerEntityManagerFactoryBean entityManagerFactoryBean() {

    LocalContainerEntityManagerFactoryBean entityManagerFactoryBean = new LocalContainerEntityManagerFactoryBean();
    entityManagerFactoryBean.setJpaVendorAdapter(vendorAdaptor());
    entityManagerFactoryBean.setDataSource(dataSource());
    entityManagerFactoryBean.setPersistenceProviderClass(HibernatePersistenceProvider.class);
    entityManagerFactoryBean.setPackagesToScan(ENTITYMANAGER_PACKAGES_TO_SCAN);
    entityManagerFactoryBean.setJpaProperties(jpaHibernateProperties());

    return entityManagerFactoryBean;
}
0

You can use this code snippet shown below.

<property name="packagesToScan" value="com.servers.model" />
0

Add

entitymanager.packagesToScan:com.server.models

to your application.properties file.

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