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I want to run query:

SELECT DISTINCT ON (address_id) purchases.address_id, purchases.*
FROM "purchases"
WHERE "purchases"."product_id" = 1
ORDER BY purchases.purchased_at DESC

And i'm getting error:

PG::Error: ERROR: SELECT DISTINCT ON expressions must match initial ORDER BY expressions

Adding sorting over address_id fixes issue, but I really don't want to add sorting over address_id. Is it possible to do without ordering over address_id?

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Your order clause has purchased_at not address_id.Can you make your question clear. –  SOaddict Mar 20 '12 at 22:01
    
my order has purchase because i want it, but postgres also asks for address(see error message). –  sl_bug Mar 20 '12 at 22:03
    
Fully answered here - stackoverflow.com/questions/9796078/… Thanks to stackoverflow.com/users/268273/mosty-mostacho –  sl_bug Dec 21 '12 at 23:40
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4 Answers

up vote 16 down vote accepted

Documentation says:

DISTINCT ON ( expression [, ...] ) keeps only the first row of each set of rows where the given expressions evaluate to equal. [...] Note that the "first row" of each set is unpredictable unless ORDER BY is used to ensure that the desired row appears first. [...] The DISTINCT ON expression(s) must match the leftmost ORDER BY expression(s).

Official documentation

So you'll have to add the address_id to the order by.

Probably this query will do:

SELECT DISTINCT ON (address_id) purchases.address_id, purchases.*
FROM "purchases"
WHERE "purchases"."product_id" = 1
ORDER BY address_id, purchases.purchased_at DESC
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2  
It works, but gives wrong ordering. That's why i want to get rid of address_id in order clause –  sl_bug Mar 20 '12 at 22:12
    
Documentation is clear: You can't because the selected row will be unpredictable –  Mosty Mostacho Mar 20 '12 at 22:12
1  
But may be there is another way to select latest purchases for disticnt addresses? –  sl_bug Mar 20 '12 at 22:19
4  
Sure thing. But your question was Is it possible to do without ordering over address_id?. And the answer is No. Ask another question with sample data and your expected result both in tabular forms and you'll get the query you're looking for –  Mosty Mostacho Mar 20 '12 at 22:23
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You can order by address_id in an subquery, then order by what you want in an outer query.

SELECT * FROM (SELECT DISTINCT ON (address_id) purchases.address_id, purchases.* FROM "purchases" WHERE "purchases"."product_id" = 1 ORDER BY address_id DESC ) ORDER BY purchased_at DESC
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2  
But this will be slower than just one query, no? –  sl_bug Mar 20 '12 at 22:05
1  
Very marginally yes. Although since you have a purchases.* in your original select, I don't think this is production code? –  hkf Mar 20 '12 at 22:06
    
I'd add that for newer versions of postgres you need to alias the subquery. For example: SELECT * FROM (SELECT DISTINCT ON (address_id) purchases.address_id, purchases.* FROM "purchases" WHERE "purchases"."product_id" = 1 ORDER BY address_id DESC ) AS tmp ORDER BY tmp.purchased_at DESC –  aembke Jun 17 at 20:38
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Window function may solve that in one pass:

SELECT DISTINCT ON (address_id) 
   LAST_VALUE(purchases.address_id) OVER wnd AS address_id
FROM "purchases"
WHERE "purchases"."product_id" = 1
WINDOW wnd AS (
   PARTITION BY address_id ORDER BY purchases.purchased_at DESC
   ROWS BETWEEN UNBOUNDED PRECEDING AND UNBOUNDED FOLLOWING)
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My first take was no good, address_id obviously is not the primary key of the table purchases.

A subquery would solve it.

SELECT *
FROM  (
    SELECT DISTINCT ON (address_id) *
    FROM   purchases
    WHERE  product_id = 1
    ) p
ORDER BY purchased_at DESC;

Only use an additional ORDER BY in the subquery, if you want to pick a particular row from each set:

SELECT *
FROM  (
    SELECT DISTINCT ON (address_id) *
    FROM   purchases
    WHERE  product_id = 1
    ORDER  BY address_id, purchased_at DESC -- to get the "latest" row per address
    ) p
ORDER BY purchased_at DESC;
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