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I do not understand why my query is not working:

INSERT INTO `jos_acymailing_subscriber`(`sleep_breathe`)
  VALUE (`1`)

SELECT `subid` 
  FROM `jos_acymailing_listsub` 
  WHERE `listid` = `8`
   LEFT JOIN `jos_acymailing_subscriber`
  ON `jos_acymailing_listsub`.`subid` = `jos_acymailing_subscriber`.`sleep_breathe`

thx

I have a table of users that are subscribed to a mailing lists (the id of the list I am interested in is 8) . The subscription table is a simple intermediary table in a "many to many" relation

In the user table I want to add in a field an integer with 1 for the users that are subscribed to the list 8

So I need to first select the users that are in the intermediary table where the listid is 8 then add 1 in the field sleep_breathe that is in the user table.

The user table structure: name: jos_acymailing_subscriber

Field Type Null Default Comments subid int(10) No
email varchar(200) No
userid int(10) Yes NULL
name varchar(250) No
created int(10) Yes NULL
confirmed tinyint(4) No 0
enabled tinyint(4) No 1
accept tinyint(4) No 1
ip varchar(100) Yes NULL
html tinyint(4) No 1
key varchar(250) Yes NULL
ersmembershipnumber varchar(250) Yes NULL
first varchar(250) Yes NULL
title varchar(250) Yes NULL
erj varchar(250) Yes NULL
err varchar(250) Yes NULL
monograph varchar(250) Yes NULL
breathe varchar(250) Yes NULL
membershipcategory varchar(250) Yes NULL
mship_status varchar(250) Yes NULL
copd varchar(250) Yes NULL
sleep_breathe varchar(250) Yes NULL
pro varchar(250) Yes NULL

The intermediary table structure is: name: jos_acymailing_listsub

Field Type Null Default Comments listid smallint(11) No
subid int(11) No
subdate int(11) Yes NULL
unsubdate int(11) Yes NULL
status tinyint(4) No

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1  
What exactly is not working? What error message do you get? –  Pekka 웃 May 3 '11 at 13:13
2  
Those are two queries. –  Thilo May 3 '11 at 13:14
    
There are two query... execute one by one –  diEcho May 3 '11 at 13:16
    
I think he's showing the insert and then his select query after he inserts –  mcgrailm May 3 '11 at 13:17
    
Here is the error message: #1064 - You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'SELECT subid FROM jos_acymailing_listsub WHERE listid = 8 LEFT JOIN' at line 3 –  Wiglaf May 3 '11 at 13:20

4 Answers 4

I think the problem is you have put VALUE instead of VALUES.

It remains VALUES even if there is only one value to insert.

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Thx but still not working –  Wiglaf May 3 '11 at 13:20

As others have said, that is two queries. Also, VALUES not VALUE. Thirdly, I'm not sure MySQL allows a WHERE before the JOIN. Your queries may have to be

INSERT INTO `jos_acymailing_subscriber`(`sleep_breathe`) VALUES (`1`);

SELECT `subid` 
FROM `jos_acymailing_listsub` 
LEFT JOIN `jos_acymailing_subscriber`
ON `jos_acymailing_listsub`.`subid` = `jos_acymailing_subscriber`.`sleep_breathe`
WHERE `listid` = `8;
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(1) It should be VALUES not VALUE in the insert. (2) The left join is part of the from clause. Move the where clause to the end.

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There are several errors in that statement.

  • If you want to insert values retrieved from a SELECT statement, the VALUES clause is not needed (in fact it's an error).
  • Numbers may not be put into quotes or even backticks.
  • The order of the FROM and LEFT JOIN keywords mixed up.

The query to insert values retrieved from a SELECT would be:

INSERT INTO jos_acymailing_subscriber (sleep_breathe)
SELECT 1
FROM jos_acymailing_listsub
  LEFT JOIN jos_acymailing_subscriber
     ON jos_acymailing_listsub.subid = jos_acymailing_subscriber.sleep_breathe
WHERE listid = 8

One tip: forget the dreaded backticks alltogether so you won't get confused where and for what you need them.

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ok so I am thinking quite wrong. I'd like to insert 1 in the field sleep_breathe but for the subscriber that are subscribed to the listid 8. I wanted to do a Insert like a select with a left join... –  Wiglaf May 3 '11 at 13:26
    
@Wiglaf: see my edit –  a_horse_with_no_name May 3 '11 at 13:36
    
I am not sure I understand.. Where do you put the value to insert? –  Wiglaf May 3 '11 at 13:41
    
@Wiglaf: that's the 1 in the SELECT 1 part –  a_horse_with_no_name May 3 '11 at 13:43
    
@a_horse_with_no_name SELECT will do the VALUES ? ok I ll try. –  Wiglaf May 3 '11 at 13:46

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