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.

I've searched in SO for some of the following queries, but I can't find something that match my search, and I'm a little bit lost between IN, INNER JOIN and LEFT JOIN to write them.

The current database relationships enter image description here

1. Get the items by tags

TAG.url are strings got from a $_GET, so not INT ids.

For example, with the url mydomain/items/tag1+tag2/, we'll have the following requests.

For one tag that was easy but for two or more, the following doesn't seems to work in mySQL :

SELECT 
    ITEM.id AS 'item_id',
    ITEM.title AS 'item_title',
    ITEM.content AS 'item_content'
  FROM ITEM, ITEM_TAG, TAG
WHERE
  (ITEM.id=ITEM_TAG.id_item AND TAG.id=ITEM_TAG.id_dtag AND TAG.url='tag1')
AND
  (ITEM.id=ITEM_TAG.id_item AND TAG.id=ITEM_TAG.id_dtag AND TAG.url='tag2')
...
AND
  (ITEM.id=ITEM_TAG.id_item AND TAG.id=ITEM_TAG.id_dtag AND TAG.url='tagn')

This one works :

SELECT 
  ITEM.id AS 'item_id',
  ITEM.title AS 'item_title',
  ITEM.content AS 'item_content'
FROM ITEM
  INNER JOIN TAG TAG1
   ON TAG1.url='tag1'
  INNER JOIN ITEM_TAG ITEM_TAG1
   ON ITEM_TAG1.id_item=ITEM.id AND ITEM_TAG1.id_tag=TAG1.id
  INNER JOIN TAG TAG2
   ON TAG2.url='tag2'
  INNER JOIN ITEM_TAG ITEM_TAG2
   ON ITEM_TAG2.id_item=ITEM.id AND ITEM_TAG2.id_tag=TAG2.id
  ...
  INNER JOIN TAG TAGn
   ON TAG2.url='tagn'
  INNER JOIN ITEM_TAG ITEM_TAGn
   ON ITEM_TAGn.id_item=ITEM.id AND ITEM_TAGn.id_tag=TAGn.id 

At this point, is there a better way to do that, than those INNER JOIN and ON ?

2. Get the related tags for other tags

Here I would like to get the list of tags and the number of items that match other tags.

For example, let's imagine the following fixtures :

    ITEM_TAG             TAG
id_item | id_tag       id | url
1       | 1            1  | tag1
1       | 2            2  | tag2
1       | 3            3  | tag3
1       | 4            4  | tag4
2       | 1
2       | 2
2       | 3
3       | 1
3       | 2

Always with the following search mydomain/items/tag1+tag2/.

I wish to display the other tags with a relation with some items (if those relations exist).

I'm sorry to say that I have no idea on how to make a request that will output the following :

    TAG
url    count(id_item)
tag3 | 2
tag4 | 1

How to get this result ?

Edit

I tried the following wich seems to work :

SELECT 
  COUNT(id_item) AS 'nb_item', 
  TAG.url AS 'tag_url'
FROM ITEM_TAG, TAG
WHERE 
 url NOT IN ('tag1','tag2')
 AND id_item IN 
 (
   SELECT id_item FROM ITEM_TAG, TAG 
   WHERE url IN ('tag1','tag2') AND id_tag=id
 )
 AND id_tag=id
GROUP BY TAG.id ORDER BY nb_item DESC

Any idea or advise to optimize this will be greatly appriciated.

share|improve this question
    
The first one can be done with the subquery ....... Select id,title,content from Item where id in(select id_item from Item_tag where id_tag in(select id from Tag where url in('tag1','tag2'))) –  Jatin Khurana Apr 2 '13 at 18:32
    
Is this a better way than Andomar answer ? –  Valky Apr 2 '13 at 18:37
    
I think joining will take a lot of time and space than this..... that's why I have given the solution with subquery –  Jatin Khurana Apr 2 '13 at 18:42
    
@Jatin Khurana Ok, thanks, have you got a solution for the second one ? Then, please, post it as an answer. –  Valky Apr 2 '13 at 21:51
add comment

1 Answer

1. Get the items by tags

select  i.id
,       i.title
,       i.content
from    item i
join    item_tag it
on      i.id = it.id_item
join    tag t
on      t.id = it.id_tag
where   t.url in ('tag1', 'tag2')

2. Get the related tags for other tags

select  t2.url
,       count(it2.id_item)
from    tag t1 -- this tag
join    item_tag it1
on      t1.id = it.id_tag
join    item_tag it2 -- other tag for same item
on      it2.item_id = it1.item_id
join    tag t2
on      t2.id = it2.id_tag
where   t1.url in ('tag1', 'tag2')
        and t2.url not in ('tag1', 'tag2')
group by
        t2.url
share|improve this answer
    
Thanks for your answer. But after testing the 2nd solution, it outputs only one other tag (by my example, it may output : "tag3" and "tag4"). –  Valky Apr 2 '13 at 22:06
    
See my edit, it works, based on your NOT IN, if you see a better solution le me know. +1 anyway –  Valky Apr 2 '13 at 23:05
add comment

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.