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i need to show stories details and tags' names in my php/mysql project .

for every story row, there is a filed named : tags that save tags id as an array

Table name: stories

table filed : tags

example of tags filed :

1 5 6 space between them

and i have a tag table that looks like this

Table name : bt_tags

Table fileds : tid,tag

now problem :

when using while loop to fetch all fields in story table , the page uses 1 query to show every stories' detail but for showing tag's names , i should query another table to find names , we have ids stored in story table

now i used for loop between while loop to show tag names but im sure there is a better way to decrease page queries

llowed to change anything in database table

how can i improve this script and show tag's names without using *for loop ?*

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If you're not allowed to change the database tables, I'm not sure how much we can really do here. –  Powerlord May 26 '10 at 14:28

2 Answers 2

up vote 4 down vote accepted
SELECT stories.storyid,
       stories.storyname, 
       group_concat( tags.tagname ) 
  FROM stories, tags
 WHERE CONCAT( ' ', stories.tags, ' ' ) LIKE CONCAT( '%', tags.tagid, '%' ) 
 GROUP BY stories.storyid, stories.storyname
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nice one but i was not successful to make it work , how can i show the array of tag names after query that –  Mac Taylor May 26 '10 at 15:12
1  
Change group_concat( tags.tagname ) to group_concat( tags.tagname ) as mytags, replacing mytags with whatever you want, and you should be able to reference it like $row['mytags'] –  catsby May 26 '10 at 16:43
    
wow thanks man , you are my hero –  Mac Taylor May 26 '10 at 17:42

Sounds like a join may help you

select s.*,
  b.tag,
  b.slug
from story_table s
  left join bt_tags b on b.tid in s.tags

Join Syntax at dev.mysql.com

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this seams to be great bro! ;-) –  aSeptik May 26 '10 at 14:38
    
I dont know why i cant set this to work , actually , tag ids stored in stories table seprated by space not comma –  Mac Taylor May 26 '10 at 14:51
    
and how to show array of tag names ? just $row['tag'] ? plz help to complete this script –  Mac Taylor May 26 '10 at 14:57
    
The example query is in short hand; you'll need to swap out somethings. In place of s.tags you could probably use your $tags_id variable –  catsby May 26 '10 at 14:59
    
would you mind updating your answer , i think with example , i can understand it better . –  Mac Taylor May 26 '10 at 15:01

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