Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

The title sounds a little bit complicated but it's hard to explain what do I mean without an example.

So I have a SQL database with tree tables:

Photos:

+------------+------------------+------+-----+-------------------+-----------------------------+
| Field      | Type             | Null | Key | Default           | Extra                       |
+------------+------------------+------+-----+-------------------+-----------------------------+
| id         | int(10) unsigned | NO   | PRI | NULL              | auto_increment              |
| hash       | varchar(256)     | NO   | MUL | NULL              |                             |
| path       | varchar(1024)    | NO   | MUL | NULL              |                             |
| store_date | timestamp        | NO   |     | CURRENT_TIMESTAMP | on update CURRENT_TIMESTAMP |
+------------+------------------+------+-----+-------------------+-----------------------------+

tags_names:

+-------+------------------+------+-----+---------+----------------+
| Field | Type             | Null | Key | Default | Extra          |
+-------+------------------+------+-----+---------+----------------+
| id    | int(10) unsigned | NO   | PRI | NULL    | auto_increment |
| name  | varchar(64)      | NO   | UNI | NULL    |                |
| type  | int(11)          | NO   |     | NULL    |                |
+-------+------------------+------+-----+---------+----------------+

tags:

+----------+------------------+------+-----+---------+----------------+
| Field    | Type             | Null | Key | Default | Extra          |
+----------+------------------+------+-----+---------+----------------+
| id       | int(10) unsigned | NO   | PRI | NULL    | auto_increment |
| value    | varchar(2048)    | YES  |     | NULL    |                |
| name_id  | int(10) unsigned | NO   | MUL | NULL    |                |
| photo_id | int(10) unsigned | NO   | MUL | NULL    |                |
+----------+------------------+------+-----+---------+----------------+

Photos is a table with data about photos (id, path to photo and sha hash).

Tag_names collects info about possible tags (id, name of tag and its type which I map in my program to proper type like string, number, date etc)

Tags contains information about which photo contains which tags with tag values: name_id is a reference to tag_names.id, photo_id is a reference to photos.id and value is value for tag.

The problem I have is that I want to visualize data from database in a tree form. An example: a root node would have sub nodes which names would be a dates. There will be a "Date" tag in tag_names table, and there will be entries in tags table referencing to this name (by tags.name_id) and different values.

So a visualization of:

select * from tag_names;
+----+------+------+
| id | name | type |
+----+------+------+
|  1 | Date |    1 |
+----+------+------+

select * from tags;
+----+------------+---------+----------+
| id | value      | name_id | photo_id |
+----+------------+---------+----------+
|  1 | 2011.05.19 |       1 |        1 |
|  3 | 2011.05.20 |       1 |        2 |
+----+------------+---------+----------+

Would be a tree like this:

root
|
+--- 2011.05.19
     |
     +---- photo 1
     |
     2011.05.20
     |
     +---- photo 2

I can achieve it very easily just with proper query on tags. However I'd like to be able to create two (or more) levels in tree.

Lets say I want date and time in my tree. I can still gather data from 1st level (finding all possible values for tag with name "Date") but then I'd like to find all possible values of "Time" tag but only for photos which have particular "Date" tag.

So I need to make an select on tags where tag name equals to "Time" and photo with related photo_id also contains tag "Date" with one particular value.

Is it possible with my tables layout? I can always do it by caching some data which is my last resort, however I'm curious if such a problem can be solved with SQL directly.

EDIT:

An example of query on photos (asked in comments) below:

'1', 'cda6bfe0fd7a588704e1ebc81f8ef4b3c884895afadf0d0c97892db8f6d9cc91', '/DSCF9529.JPG', '2014-03-23 16:19:26'
'2', 'cda6bfe0fd7a588704e1ebc81f8ef4b3c884895afadf0d0c97892db8f6d9cc91', '/DSCF9529.JPG', '2014-03-23 16:19:26'
'3', 'e213df3f22276173c2e07a8c4ec9e83aee73605196d4e2aa529fbb34ceb6f86d', '/DSCF9532.JPG', '2014-03-23 16:19:26'
'4', '681a7c723ce16908c0fc73ed819de9a1af7c19cbd6fbcb7bf1c238a9d0378c2f', '/DSCF9531.JPG', '2014-03-23 16:19:26'
'5', 'd586eaae7d0fd625ec6282a51d12625db341c72d9395efd9e142850e457272ca', '/DSCF9537.JPG', '2014-03-23 16:19:26'
'6', 'dc1c40ce690c42f9fa9edc0f5020e01ca8e0c59694108d49f942b79b0167ef10', '/DSCF9222.JPG', '2014-03-23 16:19:26'
'7', '518884037e9d67ccbee98f6805cf7bb5ccf4c6f2e7aa35efe3c834e7c7ad3c32', '/DSCF9534.JPG', '2014-03-23 16:19:26'
'8', '21d33a2c5a25515689d68885d7d485aa89b96b7e5929a86ef658e53b61c7266b', '/DSCF9221.JPG', '2014-03-23 16:19:26'
'9', 'ff7ea451ce772b9d18c706dc9b989a1a318491e5d0f095575bf5dd6cc6448ab0', '/DSCF9530.JPG', '2014-03-23 16:19:26'
share|improve this question
    
can you add the query you use to get your first level? -- basically you will have to do a select of that select and join a select where the time has your date tag –  John Ruddell Apr 1 '14 at 20:27
    
here is my select: SELECT photos.id, tag_names.name, tags.value FROM tags LEFT JOIN (photos, tag_names) ON (photos.id=tags.photo_id AND tag_names.id=tags.name_id) WHERE name='Date'; Could You give and example? Those are my first steps with SQL –  Michał Walenciak Apr 1 '14 at 20:45
    
does that query work? like does it pull out what you want? –  John Ruddell Apr 1 '14 at 21:01
    
also can you add a few sample rows from a select * from photos? i'm building a sql fiddle to query off of –  John Ruddell Apr 1 '14 at 21:12
    
that one collects for me all photos which have tag named "Date". And yes, it works I can collect all values. Actually this query is a little bit more complex than necessary for your question (data from photos table is not necessary) but in my program I gather more data –  Michał Walenciak Apr 1 '14 at 21:13

1 Answer 1

up vote 1 down vote accepted

this query selects all photos with the tag name "DATE" and then selects photos with the same ID that have the tag name "TIME" is this what you want? see FIDDLE for working example

SELECT 
    * 
FROM
(
    SELECT p.id AS p_id FROM photo p
    JOIN tag t ON t.photo_id = p.id
    JOIN tag_name tn ON tn.id = t.name_id
    WHERE tn.name = 'Date'
) AS ti
JOIN tag t1 ON t1.photo_id = p_id
JOIN tag_name tn1 ON tn1.id = t1.name_id
WHERE tn1.name = 'Time'
share|improve this answer
    
Yeah it works. I've added some more data, to make it more complex and looks like it works. Now I need to try to understand it ;) –  Michał Walenciak Apr 2 '14 at 18:36
    
ok let me help :)... first of all you run the inner query. that gets the photos with the tag name "DATE" only. along with those photos is their ID. so I then JOIN the other tables off of the ID related to the photos that only have "DATE" as their tag name. from there you just now say give me the tag name "time" –  John Ruddell Apr 2 '14 at 18:41
    
when i do JOIN tag t1 notice that its ON t1.photo_id = p_id --- p_id is the alias name I gave the photo_id in the subquery –  John Ruddell Apr 2 '14 at 18:42
    
so once its linked then you say filter those by "TIME" so now you're on the second level of the tree :) –  John Ruddell Apr 2 '14 at 18:43
    
Ok, thx, I get it. –  Michał Walenciak Apr 2 '14 at 19:14

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.