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 have a table loan_repayed with following data

l_id   i_no  dif     interval   amt
===================================  
32     33   735      3        27774
32     34   707      3        27774
32     35   676      3        27774

i have other table interval with following data

id  min max
============
1   30   60
2   60   90
3   90   9999

when i execute the below query

 select 
    lpt.l_Id, 
    d.id, 
    ifnull(sum(lpt.amt),0) 
 from 
     loan_repayed lpt 
 left join 
     interval d on lpt.interval = d.id 
 where 
     lpt.loan_id = 32
 group by 
     lpt.l_id, d.id;

iam expecting to get

   l_id      interval   amt
   =========================
    32       1           0
    32       2           0
    32       3           83322

but iam getting oly 1 row

 l_id      interval     amt
 ===========================
   32        3         333298

where am i going wrong could anybody suggest .... thank u

share|improve this question

2 Answers 2

Try this:

SELECT
  IFNULL(lpt.l_id, 32) AS L_ID, 
  d.id, 
  IFNULL(SUM(lpt.amt),0) 
FROM `interval` AS d 
LEFT JOIN loan_repayed AS lpt ON lpt.interval = d.id 
GROUP BY lpt.l_id, d.id;

SQL Fiddle Demo.


UPDATE 1

For multiple values you can do this:

SELECT DISTINCT
  d.l_id,
  d.id,
  IFNULL(l.totalamt, 0) AS totalamt
FROM
(
  SELECT l.l_id, d.id
  from 
  (             -- <---------- here you list the values you want
    SELECT 32 AS L_ID
    UNION ALL 
    SELECT 32
    UNION ALL
    SELECT 33
    UNION ALL
    SELECT 34
  ) AS l CROSS JOIN(SELECT id from `interval`) as d
) AS d
LEFT JOIN
(
select 
    lpt.L_ID, 
    d.id, 
    ifnull(sum(lpt.amt),0) AS totalamt
 from `interval` AS d
 INNER JOIN loan_repayed lpt on lpt.interval = d.id 
group by lpt.l_id, d.id
) AS l ON l.l_id = d.l_id AND d.id = l.id ;

Updated SQL Fiddle Demo

This will give you:

| L_ID | ID | TOTALAMT |
------------------------
|   32 |  1 |        0 |
|   32 |  2 |        0 |
|   32 |  3 |    83322 |
|   33 |  1 |        0 |
|   33 |  2 |        0 |
|   33 |  3 |        0 |
|   34 |  1 |        0 |
|   34 |  2 |        0 |
|   34 |  3 |        0 |
share|improve this answer
    
how about for different l_id's.. if i have 32 ,33,34....40 id's ? –  Santosh Feb 14 '13 at 9:33
    
@Santosh What do you mean? Where does these different l_id's coming from? The problem is that, you have to LEFT JOIN the interval values so that you can get all the id from that column, but there is no corresponding l_id from the other table, that why I put 32 or IFNULL(lpt.l_id, 32) AS L_ID. In case there are different l_id where are these ids coming from? –  Mahmoud Gamal Feb 14 '13 at 9:38
    
basically loan_repayed is temporory table in stored procedure.... wen i insert data into it, iam comparing diff column with min and max of interval table and appropriate id is inserted along.....i have different l_id's in it. –  Santosh Feb 14 '13 at 9:46
    
@Santosh - Ok, See my edit. –  Mahmoud Gamal Feb 14 '13 at 9:52
 select lpt.l_Id, d.id, ifnull(sum(lpt.amt),0) from 
 loan_repayed lpt left join interval d on lpt.interval = d.id 
 where lpt.loan_id = 32
 group by d.id,lpt.l_id;

or.. use having instead of where

select lpt.l_Id, d.id, ifnull(sum(lpt.amt),0) from
loan_repayed lpt left join interval d on lpt.interval = d.id
group by d.id,lpt.l_id having lpt.loan_id = 32;
share|improve this answer
    
if i have multiple l_id's like 32,33,34... etc –  Santosh Feb 14 '13 at 9:38
    
then remove having clause from 2nd query... –  Suhel Meman Feb 14 '13 at 10:01

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.