Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

table estate_common -> common data for estate as title name etc. estate could differ in kind for example kind 1 - flat kind 2 - house etc.

id  | kind | title     | name
596 | 1    | title 596 | name 596
597 | 1    | title 597 | some 597
598 | 1    | title 598 | some 598
599 | 1    | title 599 | some 599
600 | 1    | title 600 | some 600
601 | 5    | title 607 | some 601

table estate_kind_1 -> specific data for differnet kind each estate_kind_# has differnet structure columns etc.

id | estate_common_id | floor | flat | shell
1  | 596              | 250   | 9b   | pvc
2  | 597              | 156   | 10c  | abc
3  | 598              | 126   | 12a  | csd
4  | 599              | 226   | 2a   | add
5  | 600              | 198   | 15o  | fdd

id from estate_common is equal estate_common_id from estate_kind_# wherer # is number of kind from table estate_common

before preparing query i know that i must combine data from table estate_common and estate_kind_1

for simple detail of estate with data from both tables it´s easy

SELECT `common`.*, `kind`.* FROM `estate_common` AS `common` INNER JOIN `estate_kind_1` AS `kind` ON common.id = kind.estate_common_id WHERE (common.id = '597')

but now i start doing some xml export and need to select data from both table means estate_common and estate_kind_1 upon selection of estate_common id´s

so query like this

SELECT `common`.*, `kind`.* FROM `estate_common` AS `common`, `estate_kind_1` AS `kind` WHERE (common.id IN ('596,597'))

but it gives me strange result

id  | kind | title     | name     | id | estate_common_id | floor | flat | shell
596 | 1    | title 596 | name 596 | 1  | 596              | 250   | 9b   | pvc
596 | 1    | title 596 | name 596 | 2  | 597              | 156   | 10c  | abc

data from table estate_kind_1 means with id 1 a 2 on right side are ok but left from estate_common are for both lines same

should be

id   | kind | title     | name   | id | estate_common_id | floor | flat | shell
596  | 1    | title 596 | name 596 | 1  | 596              | 250   | 9b   | pvc
597  | 1    | title 597 | name 597 | 2  | 597              | 156   | 10c  | abc

i tried group by distinct etc. but probably in wrong way will be glad for any help

thanks

share|improve this question

3 Answers 3

Your latter query has no explicit JOIN so an INNER JOIN is being done. As there's also no ON clause, what's happening is a full cross product with a restriction on one table. The result you should be getting is that for every row of kind you will have two results - one for 596 of common and one for 597.

I assume you have cropped the result at 2 rows.

The query you want is:

SELECT `common`.*, `kind`.* 
  FROM `estate_common` AS `common`, `estate_kind_1` AS `kind` 
  ON common.id = kind.estate_common_id
  WHERE (common.id IN ('596,597'));
share|improve this answer

I must be missing something about your question. Is this what you want?

SELECT `common`.*, `kind`.*
FROM `estate_common` AS `common`
     INNER JOIN `estate_kind_1` AS `kind` ON common.id = kind.estate_common_id
WHERE common.id IN ('596,597')
share|improve this answer
    
SELECT common.*, kind.*FROM estate_common AS common INNER JOIN estate_kind_5 AS kind ON common.id = kind.estate_common_id WHERE (common.id IN ('596,597')) as could be seen in last blokc of my question gives just one row - with common.id 596 that was mi first idea. i neadd to select 596 and 597 data from both table –  Horák Jan Jun 20 '09 at 21:25
    
in query shoud be estate_kind_1 instead estate_kind_5 as i posted few moments ago i just have different tables on my localhost –  Horák Jan Jun 20 '09 at 21:27

solution is realy simple

SELECT common.*, kind.* FROM estate_common common, estate_kind_1 kind WHERE common.id = kind.estate_common_id AND (common.id IN (596,597))
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.