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I have an apartment table with many columns. Some apartments share price and idlayout column values. However, they still have different values for area (shoddy workmanship).

I need to:

1) Group the apartments with same idlayout and price, get their min and max area and count the number of apartments in each group.

2) List individual apartments for each group.

Can this be done with one query and should I even be trying to do so?

What I tried:

I got the query for the first part, but I can't come up with a way to list the apartments in the result set.

SELECT COUNT( * ), price, rooms, MAX( area ) AS areaMax, MIN( area ) AS areaMin
FROM apartment
GROUP BY price, layout_idlayout
ORDER BY rooms ASC, price ASC 
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Could you please give an example of your desired output? –  Juampi May 4 '13 at 12:28

2 Answers 2

up vote 1 down vote accepted

You need to use a JOIN:

SELECT apartment.*, areaMax, areaMin, cnt
FROM
  apartment INNER JOIN (
    SELECT
      idlayout, price, MAX(area) AS areaMax, MIN(area) AS areaMin, COUNT(*) cnt
    FROM
      apartment
    GROUP BY
      price, layout_idlayout) ap_grp
  ON apartment.idlayout=ap_grp.idlayout AND apartment.price=ap_grp.price

This will show all apartment data, along with the MAX, MIN and COUNT for other apartments that have the same price and idlayout.

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This works (after fixing field names) and perfectly answers the question asked. –  exizt May 4 '13 at 12:39

You can use group_concat to list all values in a group:

SELECT  layout_idlayout
,       price
,       group_concat(name) as ListOfNames
,       MAX(area) as MaxArea
FROM    apartment
GROUP BY 
        price
,       layout_idlayout
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This is great: gives a list of comma-separated values which can be easily parsed through. And this is what I actually need, even though I didn't mention it in the question (I need only numbers of the apartments, not the whole row, as I now realize!). –  exizt May 4 '13 at 12:35
    
I am accepting @fthiella's answer because it achieved exactly what I asked for, even though it turned out to be less useful for me personally than yours. –  exizt May 4 '13 at 12:42

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