159

I'm developing a Spring Boot application with Spring Data JPA. I'm using a custom JPQL query to group by some field and get the count. Following is my repository method.

@Query(value = "select count(v) as cnt, v.answer from Survey v group by v.answer")
public List<?> findSurveyCount();

It's working and result is obtained as follows:

[
  [1, "a1"],
  [2, "a2"]
]

I would like to get something like this:

[
  { "cnt":1, "answer":"a1" },
  { "cnt":2, "answer":"a2" }
]

How can I achieve this?

0

10 Answers 10

339

Solution for JPQL queries

This is supported for JPQL queries within the JPA specification.

Step 1: Declare a simple bean class

package com.path.to;

public class SurveyAnswerStatistics {
  private String answer;
  private Long   cnt;

  public SurveyAnswerStatistics(String answer, Long cnt) {
    this.answer = answer;
    this.count  = cnt;
  }
}

Step 2: Return bean instances from the repository method

public interface SurveyRepository extends CrudRepository<Survey, Long> {
    @Query("SELECT " +
           "    new com.path.to.SurveyAnswerStatistics(v.answer, COUNT(v)) " +
           "FROM " +
           "    Survey v " +
           "GROUP BY " +
           "    v.answer")
    List<SurveyAnswerStatistics> findSurveyCount();
}

Important notes

  1. Make sure to provide the fully-qualified path to the bean class, including the package name. For example, if the bean class is called MyBean and it is in package com.path.to, the fully-qualified path to the bean will be com.path.to.MyBean. Simply providing MyBean will not work (unless the bean class is in the default package).
  2. Make sure to call the bean class constructor using the new keyword. SELECT new com.path.to.MyBean(...) will work, whereas SELECT com.path.to.MyBean(...) will not.
  3. Make sure to pass attributes in exactly the same order as that expected in the bean constructor. Attempting to pass attributes in a different order will lead to an exception.
  4. Make sure the query is a valid JPA query, that is, it is not a native query. @Query("SELECT ..."), or @Query(value = "SELECT ..."), or @Query(value = "SELECT ...", nativeQuery = false) will work, whereas @Query(value = "SELECT ...", nativeQuery = true) will not work. This is because native queries are passed without modifications to the JPA provider, and are executed against the underlying RDBMS as such. Since new and com.path.to.MyBean are not valid SQL keywords, the RDBMS then throws an exception.

Solution for native queries

As noted above, the new ... syntax is a JPA-supported mechanism and works with all JPA providers. However, if the query itself is not a JPA query, that is, it is a native query, the new ... syntax will not work as the query is passed on directly to the underlying RDBMS, which does not understand the new keyword since it is not part of the SQL standard.

In situations like these, bean classes need to be replaced with Spring Data Projection interfaces.

Step 1: Declare a projection interface

package com.path.to;

public interface SurveyAnswerStatistics {
  String getAnswer();

  int getCnt();
}

Step 2: Return projected properties from the query

public interface SurveyRepository extends CrudRepository<Survey, Long> {
    @Query(nativeQuery = true, value =
           "SELECT " +
           "    v.answer AS answer, COUNT(v) AS cnt " +
           "FROM " +
           "    Survey v " +
           "GROUP BY " +
           "    v.answer")
    List<SurveyAnswerStatistics> findSurveyCount();
}

Use the SQL AS keyword to map result fields to projection properties for unambiguous mapping.

20
  • 1
    It's not working, firing error : Caused by: java.lang.IllegalArgumentException: org.hibernate.hql.internal.ast.QuerySyntaxException: Unable to locate class [SurveyAnswerReport] [select new SurveyAnswerReport(v.answer,count(v.id)) from com.furniturepool.domain.Survey v group by v.answer] at org.hibernate.jpa.spi.AbstractEntityManagerImpl.convert(AbstractEntityManagerImpl.java:1750) at org.hibernate.jpa.spi.AbstractEntityManagerImpl.convert(AbstractEntityManagerImpl.java:1677) at org.hibernate.jpa.spi.AbstractEnti.......... Mar 31, 2016 at 9:45
  • What is this SurveyAnswerReport in your output. I assume you replaced SurveyAnswerStatistics with your own class SurveyAnswerReport. You need to specify the fully qualified class name.
    – Bunti
    Mar 31, 2016 at 9:49
  • 10
    The bean class must be fully qualified, that is, include the full package name. Something like com.domain.dto.SurveyAnswerReport.
    – manish
    Mar 31, 2016 at 9:50
  • 3
    I got 'java.lang.IllegalArgumentException: PersistentEntity must not be null!` when i try return custom type from my JpaRepository ? Is some configuration i missed ?
    – marioosh
    Oct 16, 2017 at 9:12
  • 1
    While using native query exception says: nested exception is java.lang.IllegalArgumentException: Not a managed type: class ... Why this should be happed ? Apr 29, 2020 at 10:33
25

This SQL query return List< Object[] > would.

You can do it this way:

 @RestController
 @RequestMapping("/survey")
 public class SurveyController {

   @Autowired
   private SurveyRepository surveyRepository;

     @RequestMapping(value = "/find", method =  RequestMethod.GET)
     public Map<Long,String> findSurvey(){
       List<Object[]> result = surveyRepository.findSurveyCount();
       Map<Long,String> map = null;
       if(result != null && !result.isEmpty()){
          map = new HashMap<Long,String>();
          for (Object[] object : result) {
            map.put(((Long)object[0]),object[1]);
          }
       }
     return map;
     }
 }
3
  • 1
    thanks for your response to this question. It was crisp and clear
    – Dheeraj R
    Jul 11, 2017 at 0:44
  • @manish Thanks you saved my night's sleep, your method worked like a charm!!!!!!!
    – Vineel
    Feb 1, 2019 at 1:01
  • Thank you... I prefer this solution over the accepted answers native-query solution to avoid a long list of projection interfaces.
    – sarath
    Feb 23, 2021 at 15:24
20

I know this is an old question and it has already been answered, but here's another approach:

@Query("select new map(count(v) as cnt, v.answer) from Survey v group by v.answer")
public List<?> findSurveyCount();
2
  • 1
    I like your answer because it doesn't force me to create a new class or interface. It worked for me. Aug 12, 2019 at 14:41
  • Works fine but i prefer the usage of Map in the generics instead of ?, as Map will let us access them as key (0) and value (1)
    – sam
    Oct 8, 2019 at 19:36
6

define a custom pojo class say sureveyQueryAnalytics and store the query returned value in your custom pojo class

@Query(value = "select new com.xxx.xxx.class.SureveyQueryAnalytics(s.answer, count(sv)) from Survey s group by s.answer")
List<SureveyQueryAnalytics> calculateSurveyCount();
1
4

I do not like java type names in query strings and handle it with a specific constructor. Spring JPA implicitly calls constructor with query result in HashMap parameter:

@Getter
public class SurveyAnswerStatistics {
  public static final String PROP_ANSWER = "answer";
  public static final String PROP_CNT = "cnt";

  private String answer;
  private Long   cnt;

  public SurveyAnswerStatistics(HashMap<String, Object> values) {
    this.answer = (String) values.get(PROP_ANSWER);
    this.count  = (Long) values.get(PROP_CNT);
  }
}

@Query("SELECT v.answer as "+PROP_ANSWER+", count(v) as "+PROP_CNT+" FROM  Survey v GROUP BY v.answer")
List<SurveyAnswerStatistics> findSurveyCount();

Code needs Lombok for resolving @Getter

4
  • @Getter is showing an error before running the code as its not for the object type
    – user666
    Dec 6, 2018 at 8:00
  • Lombok is needed. Just added a footnote to the code.
    – dwe
    Dec 7, 2018 at 9:15
  • It doesn't work for me. Constructor is not called. For me works only interface-based projection or class-based projection with new in @Query. It would be great if class-based without new (with this constructor HashMap<String, Object>) worked. But I get org.springframework.core.convert.ConverterNotFoundException: No converter found capable of converting from type [org.springframework.data.jpa.repository.query.AbstractJpaQuery$TupleConverter$TupleBackedMap] to type [package.MyClass].
    – mkczyk
    Oct 20, 2020 at 12:20
  • seems that spring can't inject the Map object into the constructor because they're of different types. The repository return type is not Map<String, Object> so it cant invoke the apropriated converter. Found the post below which might help bytestree.com/spring/… May 13 at 21:15
3
@Repository
public interface ExpenseRepo extends JpaRepository<Expense,Long> {
    List<Expense> findByCategoryId(Long categoryId);

    @Query(value = "select category.name,SUM(expense.amount) from expense JOIN category ON expense.category_id=category.id GROUP BY expense.category_id",nativeQuery = true)
    List<?> getAmountByCategory();

}

The above code worked for me.

2

I used custom DTO (interface) to map a native query to - the most flexible approach and refactoring-safe.

The problem I had with this - that surprisingly, the order of fields in the interface and the columns in the query matters. I got it working by ordering interface getters alphabetically and then ordering the columns in the query the same way.

1

Get data with column name and its values (in key-value pair) using JDBC:

/*Template class with a basic set of JDBC operations, allowing the use
  of named parameters rather than traditional '?' placeholders.
 
  This class delegates to a wrapped {@link #getJdbcOperations() JdbcTemplate}
  once the substitution from named parameters to JDBC style '?' placeholders is
  done at execution time. It also allows for expanding a {@link java.util.List}
  of values to the appropriate number of placeholders.
 
  The underlying {@link org.springframework.jdbc.core.JdbcTemplate} is
  exposed to allow for convenient access to the traditional
  {@link org.springframework.jdbc.core.JdbcTemplate} methods.*/


@Autowired
protected  NamedParameterJdbcTemplate jdbc;


@GetMapping("/showDataUsingQuery/{Query}")
    public List<Map<String,Object>> ShowColumNameAndValue(@PathVariable("Query")String Query) throws SQLException {

      /* MapSqlParameterSource class is intended for passing in a simple Map of parameter values
        to the methods of the {@link NamedParameterJdbcTemplate} class*/

       MapSqlParameterSource msp = new MapSqlParameterSource();

       // this query used for show column name and columnvalues....
        List<Map<String,Object>> css = jdbc.queryForList(Query,msp);

        return css;
    }

0

I just solved this problem :

  • Class-based Projections doesn't work with query native(@Query(value = "SELECT ...", nativeQuery = true)) so I recommend to define custom DTO using interface .
  • Before using DTO should verify the query syntatically correct or not
0
    //in Service      
      `
                public List<DevicesPerCustomer> findDevicesPerCustomer() {
                    LOGGER.info(TAG_NAME + " :: inside findDevicesPerCustomer : ");
                    List<Object[]> list = iDeviceRegistrationRepo.findDevicesPerCustomer();
                    List<DevicesPerCustomer> out = new ArrayList<>();
                    if (list != null && !list.isEmpty()) {
                        DevicesPerCustomer mDevicesPerCustomer = null;
                        for (Object[] object : list) {
                            mDevicesPerCustomer = new DevicesPerCustomer();
mDevicesPerCustomer.setCustomerId(object[0].toString());
                            mDevicesPerCustomer.setCount(Integer.parseInt(object[1].toString()));
                            
                            out.add(mDevicesPerCustomer);
                        }
                    }
            
                    return out;
                }`
        
    //In Repo
        `   @Query(value = "SELECT d.customerId,count(*) FROM senseer.DEVICE_REGISTRATION d  where d.customerId is not null group by d.customerId", nativeQuery=true)
            List<Object[]> findDevicesPerCustomer();`
1
  • While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. Feb 23, 2021 at 5:22

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.