【发布时间】:2014-02-09 15:30:56
【问题描述】:
通过这个查询,我成功地在数据库中检索到一个电话号码:
import java.util.List;
import org.springframework.data.jpa.repository.JpaReposit ory;
import org.springframework.data.jpa.repository.Query;
import org.springframework.data.repository.query.Param;
import com.mc.appcontacts.domain.hibernate.Contact;
public interface ContactRepository extends JpaRepository<Contact, Integer> {
@Query("SELECT c.phoneNumber from Contact c WHERE LOWER(c.name) = LOWER(:name)")
String find(@Param("name") String name);
但是是否可以在参数中动态指定我要检索的属性的名称?
在我在网上阅读的所有教程中,我了解到我们可以在参数中传递属性的值(在我的示例中:@Param("name") String name) 但我要传入的参数是属性的名称而不是值!
我知道下面的例子是不正确的,但它给出了一般的想法:
@Query("SELECT c.(property) from Contact c WHERE LOWER(c.name) = LOWER(:name)") String find(@Param("name") String name, @Param("property") String property);
属性 = phoneNumber(或我的表的其他属性)。
感谢您的帮助!!
我不明白该怎么做(对我来说一切都是新的):
我已经阅读(并尝试)jpql 是这样定义的:
import com.mysema.query.jpa.impl.JPAQuery;
import com.mc.appcontacts.repository.ContactRepository; // managed by spring data
//jpa repository
public class ServicesC {
@Autowired
private ContactRepository repository;
@PersistenceContext // try
private EntityManager em; // try
JPAQuery query = new JPAQuery(em); // try
public Contact getOne(Integer id) {
return repository.findOne(id);
}
public String findAtt(String att, String key){
String jpql = "SELECT c." + att + " from Contact c WHERE LOWER(c.name) = LOWER(:key)"; // try
List<Contact> l = (List<Contact>) em.createQuery(jpql); // try
return "test";
}
}
但它不起作用(我并不感到惊讶......):
2014-02-24 18:18:34.567:WARN::Nested in org.springframework.beans.factory.BeanCreationException: Error creating bean with name 'appMapping': Injection of autowired dependencies failed; nested exception is org.springframework.beans.factory.BeanCreationException: Could not autowire field: private com.mc.appcontacts.service.ServiceC com.mc.appcontacts.mvc.MappingService.service; nested exception is org.springframework.beans.factory.BeanCreationException: Error creating bean with name 'Service' defined in file [C:\Professional\Workspaces\Eclipse\ContactMain\ContactCore\target\classes\com\mc\appcontacts\service\ServiceC.class]: Instantiation of bean failed; nested exception is org.springframework.beans.BeanInstantiationException: Could not instantiate bean class [com.mc.appcontacts.service.ServiceC]: Constructor threw exception; nested exception is java.lang.NullPointerException:
java.lang.NullPointerException
at com.mysema.query.jpa.impl.JPAProvider.get(JPAProvider.java:72)
at com.mysema.query.jpa.impl.JPAProvider.getTemplates(JPAProvider.java:80)
at com.mysema.query.jpa.impl.JPAQuery.<init>(JPAQuery.java:46)
我必须只为 jpql 定义第二个 EntityManager 吗? (有可能吗?这是正确的方法吗?我不这么认为......) 我已经在 xml 文件中定义了 Spring-data 的 EntityManager :
<tx:annotation-driven transaction-manager="transactionManager" />
<!-- Activate Spring Data JPA repository support -->
<jpa:repositories base-package="com.mc.appcontacts.repository" />
<!-- Declare a JPA entityManagerFactory -->
<bean id="entityManagerFactory" class="org.springframework.orm.jpa.LocalContainerEntityManagerFactoryBean">
<property name="persistenceXmlLocation" value="classpath:META-INF/contacts/hibernate/persistence.xml" />
<property name="persistenceUnitName" value="hibernatePersistenceUnit" />
<!-- <property name="dataSource" ref="dataSource" /> -->
<property name="jpaVendorAdapter" ref="hibernateVendor" />
</bean>
<!-- Specify our ORM vendor -->
<bean id="hibernateVendor" class="org.springframework.orm.jpa.vendor.HibernateJpaVendorAdapter">
<property name="showSql" value="${hibernate.showSql}" />
</bean>
<!-- Declare a transaction manager-->
<bean id="transactionManager" class="org.springframework.orm.jpa.JpaTransactionManager">
<property name="entityManagerFactory" ref="entityManagerFactory" />
</bean>
请帮助我...它是如何工作的?
【问题讨论】:
-
编辑选项不起作用,所以我补充说:大家好! ;-)
标签: jpa annotations spring-data