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Basically, I want to do this:

update vehicles_vehicle v 
    join shipments_shipment s on v.shipment_id=s.id 
set v.price=s.price_per_vehicle;

I'm pretty sure that would work in MySQL (my background), but it doesn't seem to work in postgres. The error I get is:

ERROR:  syntax error at or near "join"
LINE 1: update vehicles_vehicle v join shipments_shipment s on v.shi...
                                  ^

Surely there's an easy way to do this, but I can't find the proper syntax. So, how would I write this In PostgreSQL?

share|improve this question
3  
Postgres syntax is different: postgresql.org/docs/8.1/static/sql-update.html – Marc B Oct 23 '11 at 22:12
up vote 276 down vote accepted

The UPDATE syntax is:

[ WITH [ RECURSIVE ] with_query [, ...] ]
UPDATE [ ONLY ] table [ [ AS ] alias ]
    SET { column = { expression | DEFAULT } |
          ( column [, ...] ) = ( { expression | DEFAULT } [, ...] ) } [, ...]
    [ FROM from_list ]
    [ WHERE condition | WHERE CURRENT OF cursor_name ]
    [ RETURNING * | output_expression [ [ AS ] output_name ] [, ...] ]

In your case I think you want this:

UPDATE vehicles_vehicle AS v 
SET price = s.price_per_vehicle
FROM shipments_shipment AS s
WHERE v.shipment_id = s.id 
share|improve this answer
2  
You've got some syntax errors in there yet. I don't think you're allowed to use v in the SET portion. Thanks though. – mpen Oct 23 '11 at 22:18
    
If the update relies on a whole list of table joins, should those be in the UPDATE section or the FROM section? – ted.strauss Apr 11 '12 at 19:01
2  
@ted.strauss: The FROM can contain a list of tables. – Mark Byers Apr 12 '12 at 8:52
    
@DaveCollins: Completely unfounded, simply wrong. Who upvotes this? You can use either JOIN method. The fine manual has more.. – Erwin Brandstetter May 14 '15 at 1:08
1  
it throws error: ERROR: 42601: syntax error at or near "AS" – logan Nov 23 '15 at 18:01

Let me explain a little more by my example.

Task: correct info, where abiturients (students about to leave secondary school) have submitted applications to university earlier, than they got school certificates (yes, they got certificates earlier, than they were issued (by certificate date specified). So, we will increase application submit date to fit certificate issue date.

Thus. next MySQL-like statement:

UPDATE applications a
JOIN (
    SELECT ap.id, ab.certificate_issued_at
    FROM abiturients ab
    JOIN applications ap 
    ON ab.id = ap.abiturient_id 
    WHERE ap.documents_taken_at::date < ab.certificate_issued_at
) b
ON a.id = b.id
SET a.documents_taken_at = b.certificate_issued_at;

Becomes PostgreSQL-like in such a way

UPDATE applications a
SET documents_taken_at = b.certificate_issued_at         -- we can reference joined table here
FROM abiturients b                                       -- joined table
WHERE 
    a.abiturient_id = b.id AND                           -- JOIN ON clause
    a.documents_taken_at::date < b.certificate_issued_at -- Subquery WHERE

As you can see, original subquery JOIN's ON clause have become one of WHERE conditions, which is conjucted by AND with others, which have been moved from subquery with no changes. And there is no more need to JOIN table with itself (as it was in subquery).

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The answer of Mark Byers is the optimal in this situation. Though in more complex situations you can take the select query that returns rowids and calculated values and attach it to the update query like this:

with t as (
  -- Any generic query which returns rowid and corresponding calculated values
  select t1.id as rowid, f(t2, t2) as calculatedvalue
  from table1 as t1
  join table2 as t2 on t2.referenceid = t1.id
)
update t1
set value = t.calculatedvalue
from t
where id = t.rowid

This approach lets you develop and test your select query and in two steps convert it to the update query.

So in your case the result query will be:

with t as (
    select v.id as rowid, s.price_per_vehicle as calculatedvalue
    from vehicles_vehicle v 
    join shipments_shipment s on v.shipment_id = s.id 
)
update vehicles_vehicle
set price = t.calculatedvalue
from t
where id = t.rowid

Note that column aliases are mandatory otherwise PostgreSQL will complain about the ambiguity of the column names.

share|improve this answer
    
I really like this one because I'm always a tad nervous with taking my "select" off the top and replacing it with an "update," especially with multiple joins. This reduces the number of SQL dumps I should have to do before mass updates. :) – dannysauer Oct 7 '15 at 19:52
    
Not sure why, but the CTE version of this query is way way faster than the "plain join" solutions above – paul.ago Apr 7 at 9:12
    
The other advantage of this solution is the ability join from more than two tables to get to your final calculated value by using multiple joins in the with / select statement. – Alex Muro Apr 20 at 16:24

For those actually wanting to do a join you can also use:

UPDATE a
SET price = b_alias.unit_price
FROM a as a_alias
LEFT JOIN b as b_alias ON a_alias.b_fk = b_alias.id
WHERE a_alias.unit_name LIKE 'some_value';

You can use the a_alias in the SET section on the right of the equals sign if needed. The fields on the left of the equals sign don't require a table reference as they are deemed to be from the original "a" table.

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5  
For this to work I had to add: AND a.pk_id = a_alias.pk_id – Daniel Reis May 14 '15 at 17:05

Here we go:

update vehicles_vehicle v
set price=s.price_per_vehicle
from shipments_shipment s
where v.shipment_id=s.id;

Simple as I could make it. Thanks guys!

Can also do this:

update vehicles_vehicle 
set price=s.price_per_vehicle
from vehicles_vehicle v
join shipments_shipment s on v.shipment_id=s.id;

But then you've got the vehicle table in there twice, and you're only allowed to alias it once, and you can't use the alias in the "set" portion.

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The second version updates ALL the records in the table, thus corrupting it... – littlegreen Dec 9 '15 at 21:11
    
@littlegreen You sure about that? Doesn't the join constrain it? – mpen Dec 9 '15 at 21:13
    
@mpen I can confirm that it updates all records to one value. it does not do what you would expect. – Adam Mar 7 at 21:36

Here's a simple SQL that updates Mid_Name on the Name3 table using the Middle_Name field from Name:

update name3
set mid_name = name.middle_name
from name
where name3.person_id = name.person_id;
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