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Here's my query:

SELECT p.*,r.* 
FROM products p 
left join p_images r 
  on (p.id=r.product)

The result:

id | name | img    | nu
25 | shoe | a1.jpg | 1
25 | shoe | a2.jpg | 0
26 | elbs | r3.jpg | 1

I want this result

shoe a2.jpg 0
elbs r3.jpg 1

When i use group by p.id in query, it outputs a1.jpg.
I want to order with min("nu") columns value.

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Can you add your table structures? I think it's product(id, name), p_images(img, product), but what is nu from? –  Ilion Jan 18 '13 at 10:05
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3 Answers

up vote 1 down vote accepted

Try:

SELECT * 
FROM products p 
LEFT JOIN p_images r ON (r.product=p.id) 
WHERE r.nu = (SELECT MIN(nu) FROM p_images m WHERE m.product = p.id)
ORDER BY nu
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2  
You are missing the order by min value in this query. –  bluefeet Jan 18 '13 at 10:22
    
thats why MIN(nu) is added in sub query –  neeraj Jan 18 '13 at 10:23
    
But i liked your way of fetching the result in that way –  neeraj Jan 18 '13 at 10:23
    
I get that you are filtering in the where clause for the min value, I am saying that you are missing the order by in your answer. –  bluefeet Jan 18 '13 at 10:28
    
Oh Okay, i got that –  neeraj Jan 18 '13 at 10:29
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You can use a subquery to get the min(nu) value and then join that back to your p_image table to be sure you are returning the correct image:

select p.id,
  p.name,
  i.img,
  r.minnu
from products p 
left join
(
  select min(nu) MinNu, product
  from p_images
  group by product
) r 
  on p.id=r.product
left join p_images i
  on r.minnu = i.nu
  and r.product = i.product
order by i.nu;

See SQL Fiddle with Demo

Result:

| ID | NAME |    IMG | MINNU |
------------------------------
| 25 | shoe | a2.jpg |     0 |
| 26 | elbs | r3.jpg |     1 |

You can just add an ORDER BY that value. Since you are using an order by clause, then you can either use the alias or you can place the aggregate in it.

Order by alias:

SELECT p.id, p.name, r.img, min(r.nu) MinNu FROM products p left join p_images r on p.id=r.product group by p.id order by MinNu

Order by aggregate:

SELECT p.id, p.name, r.img, min(r.nu) MinNu FROM products p left join p_images r on p.id=r.product group by p.id order by min(r.nu);

See SQL Fiddle with Demo of both queries

The result is:

| ID | NAME | IMG | MINNU | ------------------------------ | 25 | shoe | a1.jpg | 0 | | 26 | elbs | r3.jpg | 1 |

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not very sure, but OP's expected results seem to show 25, a2.jpg, 0 even I missed that part in my earlier query. So I did another.. do you think it's a typo in OP's question :) –  bonCodigo Jan 18 '13 at 10:46
    
@bonCodigo I actually missed that. I have now updated my answer to return the correct result. –  bluefeet Jan 18 '13 at 10:53
    
thanks - awesome! –  Halis TOSUN Jan 18 '13 at 12:13
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This is what you need? Well wrong here, as I took your earlier produced results as the table.. :)

SQLFIDDLE DEMO

select id, name, img, 
min(nu)
from t1
group by id
;

So I might as well give the answer based on that then:

select x.id, x.name, x.img, min(x.nu)
from( 
SELECT p.,r. FROM products p 
left join p_images r 
on (p.id=r.product)) x
group by x.id
order by x.nu

| ID | NAME |    IMG | MIN(NU) |
--------------------------------
| 26 | elbs | r3.jpg |       1 |
| 25 | shoe | a1.jpg |       0 |

Well your expected results says r2.jpg and 0, so I think this is what you would need really.. This time around used the correct tables, thanks to @bluefeet for his sql fiddle.

SQLFIDDLE DEMO

select p.id, p.name, x.img, x.mn
from products p
left join (select i.product, i.img, 
           min(i.nu) mn
           from p_images i
           group by i.nu, i.product)
x on p.id = x.product
group by x.product
order by x.mn
;

| ID | NAME |    IMG | MN |
---------------------------
| 25 | shoe | a2.jpg |  0 |
| 26 | elbs | r3.jpg |  1 |
share|improve this answer
    
@Halis I just double noticed your expected results, it seems you need a2.jpg 0.. for 25, so check this out please :) –  bonCodigo Jan 18 '13 at 10:45
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