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My current query looks like this:

SELECT * FROM piece p WHERE p.code LIKE '%1740%' OR p.code LIKE '%1938%'

I did some looking around and can't find anything similar to a LIKE IN():

SELECT * FROM piece p WHERE p.code LIKE IN('%1740 %', '%1938 %')

In MySQL, I can do :

SELECT * FROM piece p WHERE code REGEXP '1740|1938'

But I can't use it with @NamedQuery.

KO : select p from piece p where p.code REGEXP :code
incomplete : select p from piece p where p.code in :code

Anyone to help me ?

  • What's wrong with your current query? – JB Nizet Jul 10 '12 at 15:08
  • Can you try SELECT * FROM piece p WHERE code REGEXP '1740 $|^1938' ; Placing ^ in front of the value indicates start of the line. Placing $ after the value indicates end of line. Placing (.*) behaves much like the % wildcard. The . indicates any single character, except line breaks. Placing . inside () with * (.*) adds a repeating pattern indicating any number of characters till end of line. – roymustang86 Jul 10 '12 at 15:27
  • I can't use the key word REGEXP in @namedquery. – Virginie Jul 11 '12 at 6:58
  • I would like to use select p from piece p where p.code in :code but if i replace :code by a string list containing : "%1740%","%1938%", it doesn't work – Virginie Jul 11 '12 at 7:00
  • So I make it differently with TypedQuery. StringBuffer sql = new StringBuffer("SELECT p FROM Piece p where p.code LIKE '%1740%' OR p.code LIKE '%1938%' "); TypedQuery<Piece> query = entityManager.createQuery(sql.toString(), Piece.class); – Virginie Jul 11 '12 at 7:58
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JPA does not support REGEXP in JPQL. So you can use LIKE and OR, or use a native SQL query.

If you are using EclipseLink, REGEXP is supported in JPQL.

See, http://wiki.eclipse.org/EclipseLink/UserGuide/JPA/Basic_JPA_Development/Querying/JPQL#Functions

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