【发布时间】:2015-06-04 11:18:02
【问题描述】:
我正在尝试将 Hibernate Search 集成到一个已经在运行的 Play Framework 应用程序中。我在构建索引时遇到问题,或者这就是我认为的问题。
我有一个用户:
@Indexed
@Entity
public class User extends Model {
@Field
public String firstname;
@Field
public String lastname;
@Field
public String email;
}
这是我的 persistence.xml:
http://java.sun.com/xml/ns/persistence/persistence_2_0.xsd" 版本="2.0">
<persistence-unit name="default" transaction-type="RESOURCE_LOCAL">
<provider>org.hibernate.jpa.HibernatePersistenceProvider</provider>
<non-jta-data-source>DefaultDS</non-jta-data-source>
<class>models.User</class>
<properties>
<property name="hibernate.dialect" value="org.hibernate.dialect.MySQLDialect"/>
<property name="hibernate.hbm2ddl.auto" value="update"/>
<property name="hibernate.search.default.directory_provider"
value="filesystem"/>
<property name="hibernate.search.default.indexBase"
value="/Users/<user>/lucene/indexes"/>
</properties>
</persistence-unit>
所以对我来说,索引的构建(对于数据库中已有的数据)应该在 GlobalAdmin 对象的onStart 中进行,这很合乎逻辑。我使用JPA.withTransaction 来调用索引器:
JPA.withTransaction(new F.Callback0() {
@Override
public void invoke() throws Throwable {
FullTextEntityManager fullTextEntityManager = org.hibernate.search.jpa.Search.getFullTextEntityManager(JPA.em());
try {
fullTextEntityManager.createIndexer().startAndWait();
} catch (Exception e) {
Logger.error(e.getMessage());
}
}
});
问题是我得到了:
[error] o.h.e.j.s.SqlExceptionHelper - Timed out waiting for a free available connection.
[error] o.h.s.e.i.LogErrorHandler - HSEARCH000058: HSEARCH000211: An exception occurred while the MassIndexer was fetching the primary identifiers list
org.hibernate.exception.JDBCConnectionException: Could not open connection
at org.hibernate.exception.internal.SQLStateConversionDelegate.convert(SQLStateConversionDelegate.java:132) ~[hibernate-core-4.3.9.Final.jar:4.3.9.Final]
at org.hibernate.exception.internal.StandardSQLExceptionConverter.convert(StandardSQLExceptionConverter.java:49) ~[hibernate-core-4.3.9.Final.jar:4.3.9.Final]
at org.hibernate.engine.jdbc.spi.SqlExceptionHelper.convert(SqlExceptionHelper.java:126) ~[hibernate-core-4.3.9.Final.jar:4.3.9.Final]
at org.hibernate.engine.jdbc.spi.SqlExceptionHelper.convert(SqlExceptionHelper.java:112) ~[hibernate-core-4.3.9.Final.jar:4.3.9.Final]
at org.hibernate.engine.jdbc.internal.LogicalConnectionImpl.obtainConnection(LogicalConnectionImpl.java:235) ~[hibernate-core-4.3.9.Final.jar:4.3.9.Final]
Caused by: java.sql.SQLException: Timed out waiting for a free available connection.
at com.jolbox.bonecp.DefaultConnectionStrategy.getConnectionInternal(DefaultConnectionStrategy.java:88) ~[bonecp-0.8.0.RELEASE.jar:na]
at com.jolbox.bonecp.AbstractConnectionStrategy.getConnection(AbstractConnectionStrategy.java:90) ~[bonecp-0.8.0.RELEASE.jar:na]
at com.jolbox.bonecp.BoneCP.getConnection(BoneCP.java:553) ~[bonecp-0.8.0.RELEASE.jar:na]
at com.jolbox.bonecp.BoneCPDataSource.getConnection(BoneCPDataSource.java:131) ~[bonecp-0.8.0.RELEASE.jar:na]
at org.hibernate.engine.jdbc.connections.internal.DatasourceConnectionProviderImpl.getConnection(DatasourceConnectionProviderImpl.java:139) ~[hibernate-core-4.3.9.Final.jar:4.3.9.Final]
感谢您的帮助。
编辑:
我在控制器中的搜索方法:
按照 cmets 的建议,我在“onStart”中取消了索引器的注释。
@Transactional
public static Result list(int page, String filter, String sortby, String order) {
EntityManager em = JPA.em();
FullTextEntityManager fullTextEntityManager = org.hibernate.search.jpa.Search.getFullTextEntityManager(em);
QueryBuilder qb = fullTextEntityManager.getSearchFactory().buildQueryBuilder().forEntity(User.class).get();
Query luceneQuery = qb
.keyword()
.onFields("firstname", "lastname", "email")
.matching(filter)
.createQuery();
// wrap Lucene query in a javax.persistence.Query
javax.persistence.Query jpaQuery = fullTextEntityManager.createFullTextQuery(luceneQuery, User.class);
// execute search
List result = jpaQuery.getResultList();
Page<User> userPage = new Page<>(result,1,1,1);
//Page<User> userPage = User.page(page, 30, sortby, order, filter);
return ok(views.html.admin.customers.list.render(userPage, filter, sortby, order));
}
这是我第一次尝试使用 Hibernate Search 的方法。但是,这不会返回任何内容。
【问题讨论】:
-
当您使用 HibernateSearchEntityManager 时,hibernate 会自动为您创建和管理索引;)如果您已正确注释实体以进行索引。看看这里:hibernate.org/search/documentation/getting-started
-
我的注释有什么问题?你是说我不需要'fullTextEntityManager.createIndexer().startAndWait();'有吗?
-
不在 JPA 环境中。在持久化单元中使用正确的 EntityManager Factory 就足够了。我对Play不熟悉,抱歉。您的注释看起来很简单但没问题。
-
为什么我的代码不起作用?
-
我不知道是什么问题,如果您想知道您的索引中有什么,请使用Luke。
标签: java hibernate jpa playframework-2.0 hibernate-search