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I'm going to get data from database using LIKE expression. My purpose is getting limited data according to my prefix('Sam%'). I tried to execute a query like below. But I got an Exception,

java.lang.IllegalArgumentException: You have attempted to set a parameter value using a name of def that does not exist in the query string select o from Item o WHERE o.itemName like ':def%'.

My method is,

public List<Item> getSuggestedData(String def) {
    EntityManager em = getEntityManager();
    try {
        Query q = em.createQuery("select o from Item o WHERE o.itemName like ':def%'");
        q.setParameter("def", def);
        return q.getResultList();
    } finally {
        em.close();
    }
}

How can fix this error.

Thanks in Advance

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If you want to use Like operation in jpql than better use criteria api. –  Nikson Kanti Paul Dec 12 '13 at 7:28

2 Answers 2

up vote 1 down vote accepted

update

Query q = em.createQuery("select o from Item o WHERE o.itemName like ':def%'");

to

Query q = em.createQuery("select o from Item o WHERE o.itemName like :def");
share|improve this answer

use % in setParameter like following

Query q = em.createQuery("select o from Item o WHERE o.itemName like ':def'");
q.setParameter("def", "" + def + "%");

where :def is behaving like variable. so you need to set % in value string

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