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I have two tables: Products and Items. I want to select distinct items that belong to a product based on the condition column, sorted by price ASC.

+-------------------+
| id | name         |
+-------------------+
| 1 | Mickey Mouse  |
+-------------------+

+-------------------------------------+
| id | product_id | condition | price |
+-------------------------------------+
| 1  | 1           | New       | 90   |
| 2  | 1           | New       | 80   |
| 3  | 1           | Excellent | 60   |
| 4  | 1           | Excellent | 50   |
| 5  | 1           | Used      | 30   |
| 6  | 1           | Used      | 20   |
+-------------------------------------+

Desired output:

+----------------------------------------+
| id | name          | condition | price |
+----------------------------------------+
| 2  | Mickey Mouse  | New       | 80    |
| 4  | Mickey Mouse  | Excellent | 50    |
| 6  | Mickey Mouse  | Used      | 20    |
+----------------------------------------+

Here's the query. It returns six records instead of the desired three:

SELECT DISTINCT(items.condition), items.price, products.name
FROM products
INNER JOIN items ON products.id = items.product_id
WHERE products.id = 1
ORDER BY items."price" ASC, products.name;
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4 Answers 4

up vote 2 down vote accepted

Correct PostgreSQL query:

SELECT DISTINCT ON (items.condition) items.id, items.condition, items.price, products.name
FROM products
INNER JOIN items ON products.id = items.product_id
WHERE products.id = 1
ORDER BY items.condition, items.price, products.name;

SELECT DISTINCT ON ( expression [, ...] ) keeps only the first row of each set of rows where the given expressions evaluate to equal.

Details here

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There is no distinct() function in SQL. Your query is being parsed as

SELECT DISTINCT (items.condition), ...

which is equivalent to

SELECT DISTINCT items.condition, ...

DISTINCT applies to the whole row - if two or more rows all have the same field values, THEN the "duplicate" row is dropped from the result set.

You probably want something more like

SELECT items.condition, MIN(items.price), products.name
FROM ...
...
GROUP BY products.id
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There is a DISTINCT ON (...) "function" in Postgres. –  Igor Romanchenko Jul 8 '13 at 14:59
1  
That's most likely not what he wants. Postgres offers DISTINCT ON. Your query also fails to return items.id. A simple aggregate function (min()) like you propose fails to return additional columns of the chosen row - as opposed to DISTINCT ON. –  Erwin Brandstetter Jul 8 '13 at 15:25

I want to select distinct items that belong to a product based on the condition column, sorted by price ASC.

You most probably want DISTINCT ON:

SELECT *
FROM  (
   SELECT DISTINCT ON (i.condition)
          i.id AS item_id, p.name, i.condition, i.price
   FROM   products p
   JOIN   items    i ON i.products.id = p.id
   WHERE  p.id = 1
   ORDER  BY i.condition, i.price ASC
   )   sub
ORDER  BY item_id;

Since the leading columns of ORDER BY have to match the columns used in DISTINCT ON , you need a subquery to get the sort order you display.

Better yet:

SELECT i.item_id, p.name, i.condition, i.price
FROM  (
   SELECT DISTINCT ON (condition)
          id AS item_id, product_id, condition, price
   FROM   items
   WHERE  product_id = 1
   ORDER  BY condition, price
   )   i
JOIN   products p ON p.id = i.product_id
ORDER  BY item_id;

Should be a bit faster.

Aside: You shouldn't be using the non-descriptive name id as identifier. Use item_id and product_id instead.

More details, links and a benchmark test in this related answer:
Select first row in each GROUP BY group?

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Use a SELECT GROUP BY, extracting only the MIN(price) for every PRODUCT/CONDITION.

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