48

In a web project, using latest spring-data (1.10.2) with a MySQL 5.6 database, I'm trying to use a native query with pagination but I'm experiencing an org.springframework.data.jpa.repository.query.InvalidJpaQueryMethodException at startup.

UPDATE: 20180306 This issue is now fixed in Spring 2.0.4 For those still interested or stuck with older versions check the related answers and comments for workarounds.

According to Example 50 at Using @Query from spring-data documentation this is possible specifying the query itself and a countQuery, like this:

public interface UserRepository extends JpaRepository<User, Long> {
  @Query(value = "SELECT * FROM USERS WHERE LASTNAME = ?1",
    countQuery = "SELECT count(*) FROM USERS WHERE LASTNAME = ?1",
    nativeQuery = true)
  Page<User> findByLastname(String lastname, Pageable pageable);
}

Out of curiosity, In NativeJpaQuery class I can see that it contains the following code to check if it's a valid jpa query:

public NativeJpaQuery(JpaQueryMethod method, EntityManager em, String queryString, EvaluationContextProvider evaluationContextProvider, SpelExpressionParser parser) {
   super(method, em, queryString, evaluationContextProvider, parser);
   JpaParameters parameters = method.getParameters();
   boolean hasPagingOrSortingParameter = parameters.hasPageableParameter() || parameters.hasSortParameter();
   boolean containsPageableOrSortInQueryExpression = queryString.contains("#pageable") || queryString.contains("#sort");
   if(hasPagingOrSortingParameter && !containsPageableOrSortInQueryExpression) {
       throw new InvalidJpaQueryMethodException("Cannot use native queries with dynamic sorting and/or pagination in method " + method);
   }
}

My query contains a Pageable parameter, so hasPagingOrSortingParameter is true, but it's also looking for a #pageable or #sort sequence inside the queryString, which I do not provide.

I've tried adding #pageable (it's a comment) at the end of my query, which makes validation to pass but then, it fails at execution saying that the query expects one additional parameter: 3 instead of 2.

Funny thing is that, if I manually change containsPageableOrSortInQueryExpression from false to true while running, the query works fine so I don't know why it's checking for that string to be at my queryString and I don't know how to provide it.

Any help would be much appreciated.

Update 01/30/2018 It seems that developers at spring-data project are working on a fix for this issue with a PR by Jens Schauder

  • No, I haven't found a solution yet. I created a ticket in Spring JIRA but there's no response: jira.spring.io/browse/DATAJPA-928. In the end, I didn't need pagination so I haven't tried to investigate any further or push harder with that ticket. – Lasneyx Sep 19 '16 at 11:25
  • 3
    Okay, thanks. As a workaround you could have added "\n#pageable\n" instead of "#pageable", but I hope it will be fixed in the future. – Janar Sep 19 '16 at 11:35
  • that current fix made things worse for me. now my PageAble parameter is completely ignored and the query is executed unlimited. so if you inserted that \n#pageable\n workaround, make sure to remove it or you'll get into trouble. – Rüdiger Schulz Apr 10 '18 at 9:41

12 Answers 12

34

My apologies in advance, this is pretty much summing up the original question and the comment from Janar, however...

I run into the same problem: I found the Example 50 of Spring Data as the solution for my need of having a native query with pagination but Spring was complaining on startup that I could not use pagination with native queries.

I just wanted to report that I managed to run successfully the native query I needed, using pagination, with the following code:

    @Query(value="SELECT a.* "
            + "FROM author a left outer join mappable_natural_person p on a.id = p.provenance_id "
            + "WHERE p.update_time is null OR (p.provenance_name='biblio_db' and a.update_time>p.update_time)"
            + "ORDER BY a.id \n#pageable\n", 
        /*countQuery="SELECT count(a.*) "
            + "FROM author a left outer join mappable_natural_person p on a.id = p.provenance_id "
            + "WHERE p.update_time is null OR (p.provenance_name='biblio_db' and a.update_time>p.update_time) \n#pageable\n",*/
        nativeQuery=true)
public List<Author> findAuthorsUpdatedAndNew(Pageable pageable);

The countQuery (that is commented out in the code block) is needed to use Page<Author> as the return type of the query, the newlines around the "#pageable" comment are needed to avoid the runtime error on the number of expected parameters (workaround of the workaround). I hope this bug will be fixed soon...

  • In my case ?#{#pageable} is working instead \n#pageable\n. – Dmitry Stolbov Dec 22 '16 at 11:59
  • 6
    This works. For arguments you can still use named parameters. example :authorId . I changed your \n#pageable\n to --#pageable\n for postgresql. The countQuery is needed as you suggested since many examples use List<> instead of Page<> your answer was spot on for this. I went through the same docs and if it wasn't for your answer I would have just given up. – Abhishek Dujari Jan 4 '18 at 10:54
  • 1
    If you don't write the countQuery and letting the framework handles that, sometime doesn't write the count by query correctly for you and you might see an error as invalid field list. You can always analyze the SQL statements by adding below entries to the property file logging.level.org.hibernate.SQL=DEBUG logging.level.org.hibernate.type.descriptor.sql.BasicBinder=TRACE Adding the count by query separately will fix the issue. This might depend of the framework versions and the database you are using. – Nalaka Nov 6 '18 at 2:39
21

This code has working with PostgreSQL and MySQL:

public interface UserRepository extends JpaRepository<User, Long> {
  @Query(value = "SELECT * FROM USERS WHERE LASTNAME = ?1 ORDER BY ?#{#pageable}",
    countQuery = "SELECT count(*) FROM USERS WHERE LASTNAME = ?1",
    nativeQuery = true)
  Page<User> findByLastname(String lastname, Pageable pageable);
}

ORDER BY ?#{#pageable} is for Pageable. countQuery is for Page<>.

  • Would you what would work for SQL Server? Thanks – Don Aug 11 '17 at 0:39
  • I don't now. Try 1. enable logging of SQL statements - set spring.jpa.show-sql=false in application.properties; 2. set ?#{#pageable} in your nativeQuery and 3. analyse result SQL from log. @Lasneyx created issue DATAJPA-928 for this peculiarity of Spring Data JPA. – Dmitry Stolbov Aug 11 '17 at 7:52
10

Just for the record, using H2 as testing database, and MySQL at runtime, this approach works (example is newest object in group):

@Query(value = "SELECT t.* FROM t LEFT JOIN t AS t_newer " +
        "ON t.object_id = t_newer.object_id AND t.id < t_newer.id AND o_newer.user_id IN (:user_ids) " +
        "WHERE t_newer.id IS NULL AND t.user_id IN (:user_ids) " +
        "ORDER BY t.id DESC \n-- #pageable\n",
        countQuery = "SELECT COUNT(1) FROM t WHERE t.user_id IN (:user_ids) GROUP BY t.object_id, t.user_id",
        nativeQuery = true)
Page<T> findByUserIdInGroupByObjectId(@Param("user_ids") Set<Integer> userIds, Pageable pageable);

Spring Data JPA 1.10.5, H2 1.4.194, MySQL Community Server 5.7.11-log (innodb_version 5.7.11).

  • This one worked for me (with PostgreSQL), thanks! – vargen_ Apr 28 '17 at 14:37
  • Worked for PostgreSQL. Thank you! – Maksym Chernikov Nov 23 '17 at 10:19
  • what if we have to pass order by asc or desc dynamically to the query? – Kulbhushan Singh May 31 at 12:28
6

I have exact same symptom like @Lasneyx. My workaround for Postgres native query

@Query(value = "select * from users where user_type in (:userTypes) and user_context='abc'--#pageable\n", nativeQuery = true)
List<User> getUsersByTypes(@Param("userTypes") List<String> userTypes, Pageable pageable);
  • worked for me with postgresql and spring data – Maelig Apr 5 '17 at 10:17
  • Worked for me with DB2 as well. – Anders Metnik Sep 26 '17 at 12:07
  • @Query(nativeQuery = true, value= "select a.* from rqst a LEFT OUTER JOIN table_b b ON a.id= b.id where a.code='abc' ORDER BY --#pageable\n") is not working : Couldn't determine the data type of parameter $2 – Developer Feb 20 at 9:36
5

Try this:

public interface UserRepository extends JpaRepository<User, Long> {
  @Query(value = "SELECT * FROM USERS WHERE LASTNAME = ?1 ORDER BY /*#pageable*/",
    countQuery = "SELECT count(*) FROM USERS WHERE LASTNAME = ?1",
    nativeQuery = true)
  Page<User> findByLastname(String lastname, Pageable pageable);
}

("/* */" for Oracle notation)

  • some reason genreated query having comma after pageable some thing like this "ORDER BY /*#pageable*/," causing syntax error – d-man Aug 25 '17 at 15:54
  • 2
    it worked after i had to take order by clause out – d-man Aug 25 '17 at 16:11
  • i remove order by but generated exception unexpected char: '#' – hicham abdedaime Jul 3 '18 at 13:30
4

I use oracle database and I did not get the result but an error with generated comma which d-man speak about above.

Then my solution was:

Pageable pageable = new PageRequest(current, rowCount);

As you can see without order by when create Pagable.

And the method in the DAO:

public interface UserRepository extends JpaRepository<User, Long> {
  @Query(value = "SELECT * FROM USERS WHERE LASTNAME = ?1 /*#pageable*/ ORDER BY LASTNAME",
    countQuery = "SELECT count(*) FROM USERS WHERE LASTNAME = ?1",
    nativeQuery = true)
  Page<User> findByLastname(String lastname, Pageable pageable);
 }
1

Both the following approaches work fine with MySQL for paginating native query. They doesn't work with H2 though. It will complain the sql syntax error.

  • ORDER BY ?#{#pageable}
  • ORDER BY a.id \n#pageable\n
1

Using "ORDER BY id DESC \n-- #pageable\n " instead of "ORDER BY id \n#pageable\n" worked for me with MS SQL SERVER

0

It does work as below:

public interface UserRepository extends JpaRepository<User, Long> {
    @Query(value = "select * from (select (@rowid\\:=@rowid+1) as RN, u.* from USERS u, (SELECT @rowid\\:=0) as init where  LASTNAME = ?1) as total"+
        "where RN between ?#{#pageable.offset-1} and ?#{#pageable.offset + #pageable.pageSize}",
    countQuery = "SELECT count(*) FROM USERS WHERE LASTNAME = ?1",
    nativeQuery = true)
    Page<User> findByLastname(String lastname, Pageable pageable);
}
0

For me below worked in MS SQL

 @Query(value="SELECT * FROM ABC r where r.type in :type  ORDER BY RAND() \n-- #pageable\n ",nativeQuery = true)
List<ABC> findByBinUseFAndRgtnType(@Param("type") List<Byte>type,Pageable pageable);
0

I'm using the code below. working

@Query(value = "select * from user usr" +
  "left join apl apl on usr.user_id = apl.id" +
  "left join lang on lang.role_id = usr.role_id" +
  "where apl.scr_name like %:scrname% and apl.uname like %:uname and usr.role_id in :roleIds ORDER BY ?#{#pageable}",
  countQuery = "select count(*) from user usr" +
      "left join apl apl on usr.user_id = apl.id" +
      "left join lang on lang.role_id = usr.role_id" +
      "where apl.scr_name like %:scrname% and apl.uname like %:uname and usr.role_id in :roleIds",
  nativeQuery = true)
Page<AplUserEntity> searchUser(@Param("scrname") String scrname,@Param("uname") String  uname,@Param("roleIds") List<Long> roleIds,Pageable pageable);
  • Please can you explain why this answer is better than any of the others that have been around for several years? – Dragonthoughts Oct 8 at 9:05
-1

Replacing /#pageable/ with ?#{#pageable} allow to do pagination. Adding PageableDefault allow you to set size of page Elements.

protected by cassiomolin Sep 5 at 12:01

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