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I have 2 tables:

categories (id, categoryName), menu (id, menuname, category_id)

I would like to display all categories, which have one or more records in the menu. And after every categoryName to show 5 menuname.

Is it possibe, to do this in the one recordset?

Thank you!

These are my 2 recordsets:

$query = "select a.id, a.name from categories as a where a.id in (select count(*) from menu as b on b.category_id = a.id)";
$result = mysql_query($query);
while ($row = mysql_fetch_array($result)) {
    echo $row['name'];
    $category_id = intval($row['id']);
    $query = "select menuname from menu where category_id = $category_id limit 0, 5";
    $resultmenu = mysql_query($query);
    while ($rowmenu = mysql_fetch_array($resultmenu)) {
        echo $rowmenu['menuname'];
    }
}
share|improve this question
    
What do you mean by "And after every categoryName to show 5 menuname."? – mattytommo May 1 '12 at 7:57
    
are these two questions ? – Moyed Ansari May 1 '12 at 8:04

As mentioned above, i'm not sure what is meant by "And after every categoryName to show 5 menuname".

But to show a list of all category/menu names in alphabetical order you could use the following:

SELECT      C.categoryName,
            M.menuname
FROM        categories C
INNER JOIN  menu M ON M.category_id = C.id
ORDER BY    C.categoryName,
            M.menuname

Update:

At the moment your first query will only be returning at best one row. The subquery is currently counting the number of menu rows and then this figure is being used to pull a row from the category table, which isn't what you want.

The following query joins onto the menu table to ensure that at least one item exists, and then groups by the category fields to ensure that each item is only returned once:

$query = "select a.id, a.name from categories as a inner join menu as b on b.category_id = a.id group by a.id, a.name"

Update 2

Ah sorry, I understand now. No I don't think it's possible to achieve what you want in a single query. Even if it were possible I wouldn't recommend it. Looking at your code, you only want to print the categoryName once for each set of menu items. If you were able to pull back the categoryName and menuname items in one result set like so:

| categoryName | menuname |
---------------------------
| category1    | menu1    |
| category1    | menu2    |
| category1    | menu3    |
| category2    | menu4    |

When iterating through the results you would need to manually check when the categoryName had changed in order to print it out once for that set of menuname items.

share|improve this answer
3  
I think the OP meant that for each category there should be no more than 5 menu. – eggyal May 1 '12 at 8:28
    
Thank you! But I meant another. I edited my question. – Сергей Студеникин May 1 '12 at 8:35
1  
Please see my update. – weenoid May 1 '12 at 12:27

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