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I have two table one is 'tb_student' and other is 'tb_fees'

create query for 'tb_student'

CREATE TABLE `tb_student` (
  `id` int(11) NOT NULL auto_increment,
  `name` varchar(255) NOT NULL,
  `email` varchar(255) NOT NULL,
  `class` varchar(255) NOT NULL,
  `created_on` datetime NOT NULL default '0000-00-00 00:00:00',
  PRIMARY KEY  (`id`)
)

create query for 'tb_fees'

CREATE TABLE `tb_fees` (
  `id` int(11) NOT NULL auto_increment,
  `email` varchar(255) NOT NULL,
  `amount` varchar(255) NOT NULL,
  `created_on` datetime NOT NULL default '0000-00-00 00:00:00',
  PRIMARY KEY  (`id`)
)

In first table i am storing the student details and in other table storing the fees details

I want to select student details from 'tb_student' and last add fee from 'tb_fees' only for those student which are in class 6

so i tried this

SELECT * 
  FROM tb_student s INNER JOIN
       tb_fees f on 
       s.email =f.email
 WHERE s.class = 6 GROUP BY s.email ORDER BY f.created_on DESC

This will give result only the first created how to get last created values

fees table

insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (5,'ram@gmail.com','5000','2013-05-01 14:20:15');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (6,'Sam@gmail.com','5000','2013-05-02 14:20:23');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (7,'jak@gmail.com','5000','2013-05-03 14:20:30');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (8,'Sam@gmail.com','5000','2013-05-29 14:20:35');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (9,'ram@gmail.com','5000','2013-05-30 14:20:39');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (10,'jak@gmail.com','5000','2013-05-30 14:36:13');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (11,'rose@gmail.com','5000','2013-05-30 14:36:15');
insert into `tb_fees`(`id`,`email`,`amount`,`created_on`) values (12,'nim@gmail.com','5000','2013-05-30 14:36:15');

Student table values

insert into `tb_student`(`id`,`name`,`email`,`class`,`created_on`) values (5,'Ram','ram@gmail.com','6','2013-04-30 14:00:56');
insert into `tb_student`(`id`,`name`,`email`,`class`,`created_on`) values (6,'Sam','Sam@gmail.com','6','2013-03-30 14:01:30');
insert into `tb_student`(`id`,`name`,`email`,`class`,`created_on`) values (7,'Nimmy','nim@gmail.com','7','2013-04-30 13:59:59');
insert into `tb_student`(`id`,`name`,`email`,`class`,`created_on`) values (8,'jak','jak@gmail.com','6','2013-03-30 14:07:32');
insert into `tb_student`(`id`,`name`,`email`,`class`,`created_on`) values (9,'rose','rose@gmail.com','5','2013-04-30 14:07:51');

Thank you

share|improve this question
1  
give you give sample records with your desired result? –  John Woo May 30 '13 at 9:02
    
Got any error in this? –  Kangkan May 30 '13 at 9:02
    
It won't always give you the first created, although probably will. Which one it gives you is undefined. –  Kickstart May 30 '13 at 9:06

2 Answers 2

up vote 3 down vote accepted

To get the latest fees something like this:-

SELECT s.* , f.*
FROM tb_student s 
INNER JOIN
    (SELECT email, MAX(created_on) AS created_on
    FROM tb_fees
    GROUP BY email) Sub1
ON s.email = sub1.email
INNER JOIN tb_fees f 
ON s.email = f.email AND Sub1.created_on = f.created_on
WHERE s.class = 6

By the way, you probably want indexes on the email fields (or better, use the tb_student id field on the tb_fees table instead of the email field and index it)

share|improve this answer
    
two inner join it will take time to execute –  Athi May 30 '13 at 10:03
    
Joins take virtually no time to execute if indexed properly (hence the index suggestion). But doing this or equivalent is pretty much the only way to get the results you require in a single SQL call (and multiple calls would be FAR slower). –  Kickstart May 30 '13 at 10:10

Use MAX group function

SELECT s.*, f.amount,MAX(f.created_on)
FROM tb_student s 
  INNER JOIN
     tb_fees f 
  ON 
     s.email =f.email
WHERE s.class = 6  
GROUP BY s.email 
share|improve this answer
    
the first itself is working –  Athi May 30 '13 at 9:23
    
why u edited the old –  Athi May 30 '13 at 9:24
    
it will show all the remaining fields also from tb_fees table –  chetan May 30 '13 at 9:25
    
but its not working –  Athi May 30 '13 at 9:26
1  
Please read this rpbouman.blogspot.de/2007/05/debunking-group-by-myths.html to understand why your usage of the group by clause is wrong and will be rejected by every other DBMS. –  a_horse_with_no_name May 30 '13 at 9:37

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