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0

Hibernate does not support union. A feature request for that is open for a decade.


1

You can't use a subquery after From clause in HQL. My suggestion is that you can use native query. For more detail you should look at following link :- Hibernate Query Limitation


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Why not searching on the mail property of your Email Object like this SELECT DISTINCT um FROM Details um INNER JOIN um.admin ad WHERE ad.mailproperty like :search and ad.status =:status


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You can not do this with HQL or Criteria, but you should be able to do this with native sql. session.CreateSQLQuery(@"INSERT INTO UsersToVehicles (VehicleId, UserId) SELECT VehicleId, :userId FROM Vehicles WHERE CategoryId = :categoryId") .SetInt32("userId", userId) .SetInt32("categoryId", ...


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Found similar kind of post in archive here says "That's not the real error" and here's how to find it: Go to the hadoop jobtracker web-dashboard, find the hive mapreduce jobs that failed and look at the logs of the failed tasks. That will show you the real error.


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I tried @VladMihalcea answers but sadly dint work. After digging more into the issue I dont think its possible to do access subclasses elements in HQL. So here's what I did as workaround and worked for me. getHibernateTemplate().find("select subCont from " +SubContainer.class.getName()+" subCont, " + SubField.class.getName() +" subField " where ...


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Using a createAlias for company as criteria.createAlias("company","company") i.e. Criteria criteria = session.createCriteria(CompanyOnCampus.class); criteria.add(Restrictions.eq("institute.instituteId", pUser.getInstituteInfo().getInstituteId())) .createAlias("company", "company") .add(Restrictions.ilike("company.name", pSearchString+"%")); did the ...


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Creating alias of company will resolve the issue. Criteria criteria = session.createCriteria(CompanyOnCampus.class); criteria.createAlias("company","company");


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This query should do fine select t from Translation t join t.translations tv where tv.language = :language and size(t.translations) = 1


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I am not fully sure about the content of the query (in MySQL).. hope you know how to do rank, if not check an example here: Get current rank using mysql To use the proper (working MySQL) with NHibernate we have to adjust that like this: NHibernate.ISQLQuery q = session .CreateSQLQuery("SELECT student_id, student_name...") .SetMaxResults(1) ; ...


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Well I found the answer and have implemented it using detached criteria. Here I am using detached criteria to store my sub-query and if later on if I want to use this sub-query I can use it again using its name. Let these numbers be present in a list called testTypeList having('111','222'). final Criteria criteria = ...


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There is no impact on your data, you just have to make sure you update both sides of the association whenever you associate/remove a Child entity. From a performance perspective, the one-to-many side association should only be used when there is a relatively small amount of Child entities. If you have tens of thousand of Child records, Hibernate would have ...


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try this query select a.test_type_nmbr from test_table a join test_table b on a.Test_type_name=b.Test_type_name where b.test_type_nmbr in('111','222' )


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You should not use fetch="join" because EAGER fetching can lead to Cartesian Products and it's not very efficient. You need to set those associations to lazy="true" and only fetch themon a query basis: from user as u left join fetch u.settings where u.id=25 This way, you will only fetch Users along with their settings and without join fetching the other ...


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The filtering is applied to the root entity being fetched (e.g. Worker) and collections won't be filtered out. You are better off defining a filter on both entities as well as one one-to-many associations.


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Use NHibernateUtil.GuessType method. NHibernate.Type.IType type = NHibernateUtil.GuessType(typeof(T));


1

HQL doesn't support such a syntax, so you'll have to use a native query for this: List<Comment> comments = (List<Comment>) session.createSQLQuery( "select * " + "from Comment " + "where id in ( " + " select comment_id " + " from ( " + " select " + " c.id ...


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Take a look to this sql example: FROM Employee E WHERE E.id > 10 " + "ORDER BY E.firstName DESC, E.salary DESC Its an example of a hql sentence. Are you sure that your sentence works fine?


4

You need to use a theta-style join: select b, a from TableB b, TableA a where not exists ( select 1 from TableB b1, TableA a1 where b1.partNumber = a1.partNumber and b1.id = b.id and a1.id = a.id ) order by b.id or you can use an SQL query to fetch entities as well: List result = session.createSQLQuery("SELECT ...


1

it sounds like you want an inner join instead of a right join SQL SELECT distinct c.* from Course c inner join Student p on (c.id=p.course_id and p.age=20) or with hql select distinct c from Course c inner join c.student p with p.age=20 in order to get the information you are requesting, you will either have to limit the Set in Course using @Where ...


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SELECT c.name, s.id FROM course c INNER JOIN student s ON c.id = s.course_id WHERE s.age = 20


1

The typeOfSub property is in the SubField class and the Container has a many-to-one association to a FieldParent instead. You either move the property into FieldParent You filter the association to the subclass type: select subContainer from SubContainer subContainer where subContainer.parent.class = my.package.SubField subContainer.extid = ? and ...


1

Hibernate documentation states that sub-queries are allowed only in the SELECT or WHERE clause. Note that HQL subqueries can occur only in the select or where clauses. But in the example above you have a subquery in the FROM clause of the first subquery. Have you tried consolidating the 2 sub-queries into one? FROM com.mysite.ActeurInterne act ...


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You need to give the SourceCondition a variable name: delete from SourceCondition sc where sc.workflowID = :wid


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From postgres you can get the result using this query. SELECT * FROM generate_series(12,24) AS s(hourdigit) LEFT JOIN ( SELECT hour(la.dateLastUpdated) AS hour, coalesce(count(la), 0) FROM LoginActivity la WHERE la.dateLastUpdated > '2014-05-05' GROUP BY hour(la.dateLastUpdated) ORDER BY hour(la.dateLastUpdated) ) AS ...


2

If the record you want (for example Hour = 14) does not exist in your LoginActivity table, how can you expect it to show up in your resultset? I assume that you want to list every hour of the day and get record counts based on that; if this is the case then You need a dictionary-like structure that includes every hour of the day to begin with, You need ...


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Try this one ::: "Select hour(la.dateLastUpdated) as hour, count(coalesce(la, 0)) from LoginActivity la where la.dateLastUpdated > :date group by hour(la.dateLastUpdated) order by hour(la.dateLastUpdated);"


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So, i found not the best solution, but... Firstly, need to get list of entities User: List<User> list = getCurrentSession() .createQuery("from USer as u where u.login LIKE :login") .setString("login", login) .list(); Next, we declare in entity User method like this one, which convert List<Photo> ...


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I think with the above code all you have to do it is to assign the resultant directly to List and it should work like a breeze. something like this. List<User> userList = yourCriteria.list();


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You won't be able to use RegisterFunction for this. That's for registering scalar functions. However, you can create a named query and execute that instead. That involves a few steps though: Create the named query XML file. This must end in *.hbm.xml. I find it useful to keep the name of the named query, the function, and the XML file all the same, but ...


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Without introducing the association select uid, branchName from fi, branchMst bm where fi.branch_code = bm.branch_code; select uid from fi where branch_code not in (select branch_code from branchMst); and then combine the results programmatically. More details here. With the association 1) You don't need one-to-many association, you need one-to-one. ...


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You probably want something like this. You need to left join the association to user also. Note that you should use the Hibernate mapping between Parameter and Group as below. But you will probably need to use grouping to remove duplicate results. String hql = "from Parameters s " + "join s.group g " + "left join fetch s.userValues uv " + "left ...


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I solved this problem by joining the collection to the query, then operating on the joined column: SELECT a FROM Anything a JOIN a.thisIsACollection coll WHERE coll IN :param


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I is very simple to add parameter to an HQL Query query = session.createQuery("select u from UserLog u where u.userLogSerialno = " + "(select max(uu.userLogSerialno) from UserLog uu where uu.userId = :userId)").setParameter("userId", 15); here i have hard coded 15 you can simply use variable instead of it


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Simple example: Integer id = 1; Query query = session.createQuery("from Employee e where e.idEmployee=:id"); query.setParameter("id", id);


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(select * from calendar_table WHERE calDate BETWEEN CURDATE() - INTERVAL 30 DAY AND CURDATE() ) r left outer join fitness_parameter s on (r.calDate=s.RecordDate) ORDER BY r.calDate DESC;


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The following HQL can help you accomplish this: SELECT s from Scenario s JOIN s.tags t WHERE t.name = :tag GROUP BY s HAVING count(t) = 1 Credits are from the following site: http://www.sergiy.ca/how-to-write-many-to-many-search-queries-in-mysql-and-hibernate/


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Since it is an inner join and you do not use p2 in the select clause, you can move the subquery to the where clause. SELECT c.carId, s.color as currentColor FROM Car c, Paint p WHERE p.PaintId In ( Select max(p2.PaintId) From Paint p2 where p2.carId = c.carId) (by the way, s doesn't exist in your query.) Edit: after reading your ...


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I found solution to my problem. I just deleted Pass p = (Pass) query.uniqueResult(); if (p == null) { return "fail"; } return "success"; And now it works fine.. But I still don't know the reason Anyways thank you everyone for their help.


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try UPDATE Pass set newpwd = :password WHERE empid= :id


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Honestly I didn't understand your SQL query but if all you want to do is get the scenarios that have a given flag then the following HQL query should be enough : SELECT s.id FROM Scenario s JOIN tags t WHERE t.tagName = :tagName


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Ok I figured it out. This worked from School s order by size(s.students) As per the Hibernate documentation You can test the size of a collection with the special property size or the special size() function.


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for me th3morg's solution caused the following exception: Class org.hibernate.hql.internal.ast.QuerySyntaxException Message unexpected token: : near line 1, column 89 [FROM receiptbucketserver.Receipt where project.customer.id = :customerId ORDER BY :sort :order] my syntax looked like this (which might be wrong, i am not an expert) ...


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This should work (expecting that there is relation between school and student like student.School): //from School s order by count(s.students) FROM School s ORDER BY ( SELECT count(st) FROM Student st WHERE s.ID = st.School.ID )


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I found a way to do the same using subquery. Although, I'm not sure out of this and the left join, which one is the more efficient one. vehicleQuery = session.getCurrentSession().createQuery("FROM VehicleBean v WHERE (v.type =:vehicleType) AND (v.vehicleID NOT IN (SELECT r.vehicleID FROM ReservationBean r))"); ...


1

Your current query translates to inner join between Jcelulasmin and jconcorrentes (because of jconcorrentes.users.username), thus nulls are excluded. You have to explicitly left join them: select j from Jcelulasmin j left join j.jconcorrentes jcon ...


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The querySt object can support only executeUpdate() given the nature of operation. Remove querySt.list(). Make another query, namely query = session.createQuery("from WgRoster"); and then call query.list();


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You want a left outer join where the ReservationBean is null. vehicleQuery = session.getCurrentSession() .createQuery("from VehicleBean vbean " + " left join vbean.reservation rbean " + " where rbean is null");


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Maybe instead of jconcorrentes is null, you should try something like jconcorrentes.id <> 1.


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It will update the existing record if exist in DB else It will create new record with ADDRESS_TYPE of BI. Refer hibernate documentation link.



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