Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to return the last row of each device in my table location

My table name is: Location

+------------+----------+--------------+--------------+----------+  
| locationId | deviceId | dataRegistro | horaRegistro | location |  
+------------+----------+--------------+--------------+----------+  
|         50 |        1 |   2012-11-07 |     15:35:00 |      A12 |  
+------------+----------+--------------+--------------+----------+  
|         51 |        1 |   2012-11-07 |     15:37:40 |       B2 |  
+------------+----------+--------------+--------------+----------+  
|         52 |        2 |   2012-11-07 |     15:35:12 |       B8 |  
+------------+----------+--------------+--------------+----------+  
|         53 |        2 |   2012-11-07 |     15:35:40 |      50C |  
+------------+----------+--------------+--------------+----------+  
|         54 |        2 |   2012-11-07 |     15:40:00 |      94A |  
+------------+----------+--------------+--------------+----------+  

From select last row from a one device I do

select L from Location L where deviceId = :deviceId order by "dataRegistro" DESC, "horaRegistro" DESC limit 1

Now how do I select all the latest location of every device? :( I use Java JPA.

thanks,

Evandro

share|improve this question

6 Answers 6

If the IDs are ordered, so a record recorded later corresponds to a later date, you can use this query (I wouldn't bother converting the strings to dates, that would make it slower than acceptable.):

select L from Location L where deviceId = :deviceId order by L.locationId DESC 

and restrict the amount of rows to be returned in the Java code:

//EntityManager em; defined earlier
Query q = em.createQuery("select L from Location L where deviceId = :deviceId order by L.locationId DESC ");
q.setParameter("deviceId", "theDeviceIdIWantToQuery");
q.setMaxResults(1);
List<Location> results=query.getResultList();

This will be an empty list, if there are no rows for the given deviceId, or a List containing 1 Location item - the last.

If you want to select the latest locations for all devices in one go, you can use an IN clause and a subquery:

select L2 FROM Location L2 WHERE L2.locationId IN
    (select L.locationId from Location L 
    where L.deviceId = :deviceId 
    order by L.locationId DESC 
    group by L.deviceId)

Sadly, JPQL doesn't permit using subqueries in the FROM clause, so while that would be my choice of doing this, it is only possible by using the native query function, which is a lot more inconvenient to use.

By the way, in my opinion storing timestamps like you do is a bad practice. It is not properly indexable, gives troubles when querying and ordering, just a plain nightmare. I'd seriously rethink this part of your schema.

share|improve this answer

How about something like this:

SELECT locationId
  FROM location
 WHERE dateregistro + horaregistro = (SELECT MAX(datergistro + horaregistro)
                                        FROM location
                                       WHERE deviceid = :deviceid)
   AND deviceid = :deviceid

I'm not sure about the correctness of the date calculation, but maybe you can create a new column, where date and time are combined.

share|improve this answer
    
This is not JPQL... –  ppeterka Nov 8 '12 at 13:24

try this

select top (1) location from location where deviceid=:deviceid 
 order by dateregistro,horaregistro desc
share|improve this answer
    
Hi, thanks for replying, but I want to select the last location of all devices –  user690093 Nov 8 '12 at 13:20
    
@user690093 this gives you the last location of the device of which you give the deviceID –  SRIRAM Nov 8 '12 at 13:22
1  
This is not JPQL... (there is no TOP 1 in that...) –  ppeterka Nov 8 '12 at 13:24
    
@ppeterka: on the other hand, it's not very clear if the OP wants JPQL, since his current query is not a JPQL query either, and the question is tagged SQL. –  JB Nizet Nov 8 '12 at 13:27
    
@ ppeterka yes this is not jpql but the question is also tagged in sql –  SRIRAM Nov 8 '12 at 13:29

yes I use JPA, this example is just to demonstrate what I need

My JPA query to select one device is Query q = em.createQuery("select TL from TRKLocation TL where TL.device.deviceId = :deviceId and TL.msgError = '' order by TL.dataRegistro DESC, TL.horaRegistro DESC"); q.setParameter("deviceId", deviceId);
q.setMaxResults(1);

list = q.getResultList();

Now, i need query to select last location from all devices :)

share|improve this answer

I do not understand why you don't store a simple timestamp instead of having two columns for date and time. This makes it way more difficult to run the select you want. This is an example how it should work if a timestamp where available (From a look into the JPQL Spec section 4.6.16 this should work)

Select loc From Location loc where loc.ts_registered = 
(Select MAX(subloc.ts_registered) From Location subloc where subloc.deviceId = loc.deviceId)

I did not test it but I think this should work. But be aware that this query will run quite slowly on medium to large data sets. You should definitely add an index to column deviceId.

Besides I would recommend you to rethink your data model since this query requires building of cartesian product (which will slow down rather quickly with growing data)

share|improve this answer

In case the dateregistro and horaregistro are strings you could try this query:

select * from location l1
where dateregistro + horaregistro = (select max(dateregistro + horaregistro) from
location l2 where l2.deviceid = l1.deviceid)

Better, if the locationid field is a unique and sorted key you could apply the where condition on it:

select * from location l1
where locationid = (select max(locationid) from
location l2 where l2.deviceid = l1.deviceid)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.