47

I'm using Hibernate for ORM of my Java app to an Oracle database (not that the database vendor matters, we may switch to another database one day), and I want to retrieve objects from the database according to user-provided strings. For example, when searching for people, if the user is looking for people who live in 'fran', I want to be able to give her people in San Francisco.

SQL is not my strong suit, and I prefer Hibernate's Criteria building code to hard-coded strings as it is. Can anyone point me in the right direction about how to do this in code, and if impossible, how the hard-coded SQL should look like?

Thanks,

Yuval =8-)

70

For the simple case you describe, look at Restrictions.ilike(), which does a case-insensitive search.

Criteria crit = session.createCriteria(Person.class);
crit.add(Restrictions.ilike('town', '%fran%');
List results = crit.list();
  • Thanks... wasn't aware ilike existed in Hibernate =8-) – Yuval Sep 23 '08 at 12:51
  • 9
    And for anyone looking for the NHibernate equivalent try 'InsensitiveLike()' – Kevin Pullin Jun 1 '09 at 22:43
  • 6
    I just tried this out. and it does not behave case-insensitively – mR_fr0g Jun 19 '09 at 12:58
  • 20
    Hm... Prefer MatchMode.ANYWHERE over '%' – Leonel Sep 10 '09 at 12:40
  • 2
    Just beware if you're switching from Eq to Like, you'll also get wildcards enabled, so things like underscores in oracle matching any character. – Richard Dingwall May 31 '11 at 16:47
37
Criteria crit = session.createCriteria(Person.class);
crit.add(Restrictions.ilike('town', 'fran', MatchMode.ANYWHERE);
List results = crit.list();
9

If you use Spring's HibernateTemplate to interact with Hibernate, here is how you would do a case insensitive search on a user's email address:

getHibernateTemplate().find("from User where upper(email)=?", emailAddr.toUpperCase());
  • This comment really helped, In my application I have code as follows: User u = new User(); u.setUsername(username); List<User> list = HibernateTemplate.findByExample(<u>) to find the user from the database. But this is taking the username in the case i am giving it. But i wanted to write a query that perform case insensitive search so i used the find as shown by SamS as follows:List<User> list = HibernateTemplate.find("from User where upper(username)=?", u.getUsername().toUpperCase()); – amit Jun 17 '16 at 6:55
4

You also do not have to put in the '%' wildcards. You can pass MatchMode (docs for previous releases here) in to tell the search how to behave. START, ANYWHERE, EXACT, and END matches are the options.

4

The usual approach to ignoring case is to convert both the database values and the input value to upper or lower case - the resultant sql would have something like

select f.name from f where TO_UPPER(f.name) like '%FRAN%'

In hibernate criteria restrictions.like(...).ignoreCase()

I'm more familiar with Nhibernate so the syntax might not be 100% accurate

for some more info see pro hibernate 3 extract and hibernate docs 15.2. Narrowing the result set

  • For hibernate version 3.6.1 the section for narrowing the result set is 17.2. Link – zmf Feb 16 '11 at 22:53
  • Sir, both links are not valid. – Aniket Kulkarni Oct 11 '13 at 9:05
0

Most default database collations are not case-sensitive, but in the SQL Server world it can be set at the instance, the database, and the column level.

0

You could look at using Compass a wrapper above lucene.

http://www.compass-project.org/

By adding a few annotations to your domain objects you get achieve this kind of thing.

Compass provides a simple API for working with Lucene. If you know how to use an ORM, then you will feel right at home with Compass with simple operations for save, and delete & query.

From the site itself. "Building on top of Lucene, Compass simplifies common usage patterns of Lucene such as google-style search, index updates as well as more advanced concepts such as caching and index sharding (sub indexes). Compass also uses built in optimizations for concurrent commits and merges."

I have used this in the past and I find it great.

0

This can also be done using the criterion Example, in the org.hibernate.criterion package.

public List findLike(Object entity, MatchMode matchMode) {
    Example example = Example.create(entity);
    example.enableLike(matchMode);
    example.ignoreCase();
    return getSession().createCriteria(entity.getClass()).add(
            example).list();
}

Just another way that I find useful to accomplish the above.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.