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Hibernate Keeps detecting

org.hibernate.QueryParameterException: could not locate named parameter [name]

even though it exist. here's my hql

Query query = sess().createQuery("from UserProfile where firstName LIKE '%:name%'").setParameter("name", name);

Why does hibernate keeps throwing that exception? even though the parameter exist?

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  • 1
    I guess you don't need those quotas around parameter, this could case your problem. Commented Jan 24, 2013 at 12:14

2 Answers 2

36

Should be like this:

Query query = sess().createQuery("from UserProfile where firstName LIKE :name")
                    .setParameter("name", "%"+name+"%");

In your case ':name' is actual string Hibernate will search for. If you need to have a real named parameter, you need to have just :name.

Thus % should be passed as a value of :name and Hibernate will substitute :name with actual value.

Note, that if your value contains % and you want it to be an actual letter instead of wildcard, you'll have to escape it, here is an example of escaper-class.

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    What is the diffference between String someName = "%"+name+"%"; and setParameter("name", "%"+name+"%"); and setParameter("name", someName ); ??
    – user962206
    Commented Jan 24, 2013 at 12:27
  • Hibernate just doesn't recognize that there is a named parameter, it doesn't know %:blah syntax. Same in SQL if you try to write LIKE '%?', it won't recognize it correctly. In case you have :name - this is a clear named parameter and you specify %blah as a string that database should look for. In case you have % as a value, you'll have to escape it. Commented Jan 24, 2013 at 12:31
  • it finally worked i just wanted to have an understand what's their difference, any link for more information regarding this issue?
    – user962206
    Commented Jan 24, 2013 at 12:37
  • I tried to describe this in more details in actual answer. I don't have any particular link to share, sorry. Commented Jan 24, 2013 at 12:41
5

try to concatenate it using hql

"from UserProfile where firstName LIKE '%' || :name || '%'"

or using CONCAT

"from UserProfile where firstName LIKE CONCAT('%', :name ,'%')"

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