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i have a table


  • id
  • name
  • desc

what i am doing right now is to make a query that returns a permission object then put the values in the map programmatically

1- But i was wondering if it's possible to make an HQL (or native sql if not possible) to select the permission_id, permission_name and return them in a map.

2- is it possible to return map in one to many relationship instead of following list or set

@OneToMany(cascade = CascadeType.ALL, fetch = FetchType.LAZY)
    @JoinTable(name = "perm_cat_map", joinColumns = { @JoinColumn(name = "perm_cat_id") }, inverseJoinColumns = { @JoinColumn(name = "permission_id") })
    private List<Permission> permissions = new ArrayList<Permission>(0);

is it possible to have something like:

@OneToMany(cascade = CascadeType.ALL, fetch = FetchType.LAZY)
        @JoinTable(name = "perm_cat_map", joinColumns = { @JoinColumn(name = "perm_cat_id") }, inverseJoinColumns = { @JoinColumn(name = "permission_id") })
        private Map<String,String> permissions = new ArrayList<String,String>(0);

where the two strings are permission_id, permission_name.

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5 Answers 5

up vote 15 down vote accepted
  1. Use the select new map syntax in HQL to fetch the results of each row in a Map. Take a look at the following question, that addresses the issue: How to fetch hibernate query result as associative array of list or hashmap. For instance, the following HQL: select new map( as pid, as pname) from Permission perm will return a List of Maps, each one with keys "pid" and "pname".

  2. It is not possible to map an association to a Map<String, String>. It is possible to map the key of the Map to a column with the @MapKeyColumn annotation in the association. See this question, that also addresses the issue, for an example: JPA 2.0 Hibernate @OneToMany + @MapKeyJoinColumn. Here is another example.

@OneToMany(cascade = CascadeType.ALL, fetch = FetchType.LAZY)
@JoinTable(name = "perm_cat_map", 
    joinColumns = { @JoinColumn(name = "perm_cat_id") }, 
    inverseJoinColumns = { @JoinColumn(name = "permission_id") })
private Map<String, Permission> permissions = new HashMap<String,Permission>(0);

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what will be the return type of the method ? and what do you think about question 2 ? – fresh_dev Oct 24 '11 at 14:33
Take into account that the return of a select new map HQL statement is a list of maps, one for each result, in which the keys are the aliases and the values the column values. If you want to get a map<permissionId, permissionName>, @DonRoby 's suggestion about ResultTransformer might be more aligned with what you're trying to achieve. – Xavi López Oct 24 '11 at 14:52
i edited the second question, can you please update. – fresh_dev Oct 24 '11 at 16:36
Question, in your above sample, what will be the value of the string in the map ? – fresh_dev Oct 24 '11 at 16:52
@fresh_dev It is not possible to map an association to a Map<String, String>. You can use the type of one of the columns as the key. If it is a non-mapped entity, you can use @MapKeyColumn. If it is a mapped entity, you must use @MapKeyJoinColumn. The value of the String would be the permission_id field in the Permission entity. – Xavi López Oct 24 '11 at 18:37

In JPA 2.0 (which recent versions of Hibernate support), you can map collections of primitives using an @ElementCollection annotation.

For some samples of such mappings see the hibernate collections docs.

If you're not actually mapping it in this way but want to create a map using either HQL or a Criteria query, you can create a ResultTransformer to create a map from the returned result set.

Judging from Xavi's answer, I guess there is also support in HQL for creating a map without using a transformer.

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i updated my second question, can you please give me some advise. – fresh_dev Oct 24 '11 at 16:37

1- But i was wondering if it's possible to make an HQL (or native sql if not possible) to select the permission_id, permission_name and return them in a map.

its posible with Resulttransformer

String queryString="select id, name from Permission ";
List<List<Object>> permission= session.createQuery(queryString)
//now you just expect two columns 
HashMap<Integer,String> map= new HashMap<Integer,String>();
for(List<Object> x: permission){ 
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try like this,

Session session = sessionFactory.getCurrentSession();
String HQL_QUERY = "select new map( as id, user.firstName as fullName) from User user";        
List<Map<String,String>> usersList = session.createQuery(HQL_QUERY).list(); 
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String sqlQuery="select userId,name,dob from user"

Pass the query to following method.

public List<Map<String,Object>> getDataListBySQL(final String sql, final Long adId){

    List<Map<String,Object>> list=(List<Map<String,Object>>)getHibernateTemplate().executeFind(new HibernateCallback() {
        public Object doInHibernate(Session session) throws HibernateException,SQLException {
            Query query=session.createSQLQuery(sql);
            query.setParameter("adId", adId);               
            return query.setResultTransformer(Transformers.ALIAS_TO_ENTITY_MAP).list();
    return list;

Iterate this list in this way-
for(int i=0;i<list.size();i++){

        Map<String,Object> map=list.get(i);

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