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I am using smarty php template and sql server

I have the following tables :

table 1 (anime_pages) : contains data

table 2 (anime_genres) : contains categories

table 3 (genres_pages) : contains relationship between data and category

I am trying to show 3 random categories with 10 data results from that category.

I have the following php code right now :

$randomcsql = $db->query("SELECT * FROM anime_genres ORDER BY RAND() LIMIT 3");
while($ft5 = $db->fetch_array($randomcsql))
{
    $randomcats[] = $ft5; 
}
$smarty->assign('randomcats' , $randomcats);
$db->free_result($randomcsql);

$animecatssql = $db->query("SELECT * FROM anime_pages JOIN genres_pages ON anime_pages.id = genres_pages.genre_id  WHERE genres_pages.genre_id = (".$ft5['id'].") LIMIT 10 ");
while($ft6 = $db->fetch_array($animecatssql))
{
    $animecats[] = $ft6; 
}
$smarty->assign('animecats' , $animecats);
$db->free_result($animecatssql);

the problem is with (".$ft5['id'].") it is not giving me any result and If I replaced it with a number ... I will get a duplicated result (every data is duplicated twice)

How can I solve the problem ?

Is there a better code to use ?

I am trying to something like this : http://img37.imageshack.us/img37/5024/unled1qk.png

share|improve this question
    
I am trying to something like this : img37.imageshack.us/img37/5024/unled1qk.png –  shnisaka Oct 12 '11 at 3:03
1  
Why don't you use the table names in the question as well as in the example code? It makes it harder for us if we have to guess whether table 1 is anime_genres or genres_pages or anime_pages, etc. It also helps if you give us at least the most important columns in each of the tables (a relevant subset of the columns is fine). –  Jonathan Leffler Oct 12 '11 at 3:36
    
Is $ft5 going to be available outside of the while loop at all? –  Jared Farrish Oct 12 '11 at 3:39
    
there is no ft5 outside the while loop –  shnisaka Oct 12 '11 at 3:42
    
There isn't? Maybe look at your code again. codepad.org/m6T5L3WH –  Jared Farrish Oct 12 '11 at 3:43

2 Answers 2

In your code

$animecatssql = $db->query("SELECT * FROM anime_pages JOIN genres_pages ON anime_pages.id = (".$ft5['id'].") LIMIT 10 ");

you are using $ft5 variable which dont exists here as its outside your while condition of fethcing data.

and you also said that you want 3 random categories and 10 data sets from them. so you basically want 30 data sets in total (10 for each). you should be using this query inside a loop which will run three times for the array $randomcats. and also your this array will be having arrays as values for each three keys. so you have to go to the values of the array (which will be a array again) and then on there value you can get your value you are searching for.

Hope i am clear. if not please mention.

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up vote 0 down vote accepted

I solved it by showing on random result instead of three

$randomcsql = $db->query("SELECT * FROM anime_genres ORDER BY RAND() LIMIT 1");
   while($ft5 = $db->fetch_array($randomcsql))
   {
   $randomcats[] = $ft5; 
   $animecatssql = $db->query("SELECT * FROM anime_pages JOIN genres_pages ON anime_pages.id = genres_pages.genre_id  WHERE genres_pages.genre_id = (".$ft5['id'].") LIMIT 10 ");
   while($ft6 = $db->fetch_array($animecatssql))
   {
   $animecats[] = $ft6; 
   }
   }
   $smarty->assign('randomcats' , $randomcats);
   $db->free_result($randomcsql);
   $smarty->assign('animecats' , $animecats);
   $db->free_result($animecatssql);
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