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Something I've been stumbling on for a while now. I have a table called gears which contains rows with the names: id, mid, cid and installed. I want to search this table and return in csv format a list of mids for some unique cid. For example if cid = $cid I can use:

$query = $database -> query("SELECT COUNT(mid), GROUP_CONCAT(mid) FROM gears WHERE cid=$cid", __LINE__, __FILE__);
$gears_installed = $database -> get_result($query);
$gears = $database -> get_result($query, 0, 1);

Don't worry about the function names, they do exactly as one would expect. So if there were 3 rows for that specific $cid, with mids: bank, lottery and post then $gears_installed would be equal to 3 and $gears would be equal to bank,lottery,post. This works as intended.

Now on to the question I have. Each unique mid has its own table, named settings_mid_here. I.e, for the above three, I have the tables settings_bank, settings_lottery and finally settings_post. Each of these tables will also have a column called cid (this is how the two can be related). How do I go about running one query to return the entire row from each table where cid=$cid? I do not want to run a separate query for SELECT * FROM settings_bank WHERE cid=$cid and SELECT * FROM settings_post WHERE cid=$cid and finally SELECT * FROM settings_post WHERE cid=$cid, as this could result in around 10 extra queries on one page load (there are, at the moment, 10 different mids).

As you can see, the problem is dynamic. It must be able to adapt to a different number of mids, somehow differentiate the settings within each table (for example settings_bank may have a column with name name, and so might settings_post). Finally, it must also be able to return a default row (not null values) if there does not exist a row corresponding to the given $cid.

A complicated task but I hope someone can help me with this as I have not been able to get anywhere.

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I have some ideas, but I could only help if I'd have a dump of some of the scheme and some demo data to test the queries. Otherwise it would simply by a smart guess. –  Fleshgrinder Oct 12 '13 at 18:47
    
You mean that you would create a new table every time a new mid appeared in the gears table? –  geomagas Oct 12 '13 at 18:50
    
sqlfiddle.com/#!2/cc5ce/1 Use cid=3 –  Keir Simmons Oct 12 '13 at 18:53
    
@geomagas The gears table can include a specific mid multiple times. The gears table will have one row for each mid installed on one cid account, so to speak. Each mid is a widget, for example. –  Keir Simmons Oct 12 '13 at 18:54
    
Yes, but that's not what I asked. Suppose I add a line in gears that contains a mid='somewidget' that wasn't there before. Do I have to create a settings_somewidget table too? –  geomagas Oct 12 '13 at 18:58

2 Answers 2

$queries = array();
foreach(explode(',', $gears) as $gear) {
    $queries[] = "SELECT '$gear' AS gearname, settings_$gear.* FROM settings_$gear WHERE cid=$cid";
}
$sql = implode(' UNION ', $queries);
$query2 = $database->query($sql);

This query will return one row for each table, with an extra gearname column to indicate which table that row came from.

Or you can create a JOIN dynamically:

$gears_array = explode(',', $gears);
$joins = implode(' JOIN ', $gears_array);
$wheres = implode(' AND ',
                  array_map(function($g) use ($cid) {
                    return "$g.cid = $cid";
                  }, $gears_array));
$sql = "SELECT * FROM $joins WHERE $wheres";
$query2 = $database->query($sql);
share|improve this answer
    
I have run this for a test case: SELECT 'currency' AS gearname, * FROM settings_currency WHERE cid=3 but this gives an error (due to the 'currency' AS gearname part). –  Keir Simmons Oct 12 '13 at 19:07
    
Fixed it. MySQL requires an explicit tablename before * when doing this. –  Barmar Oct 12 '13 at 19:15
    
This works great until the two tables have a different number of columns (which is the case for me) - at which point it falls apart and throws an error. –  Keir Simmons Oct 12 '13 at 19:21
    
I have thought of doing something similar to SELECT a.*, b.* FROM settings_currency a LEFT JOIN settings_post b ON b.cid=a.cid WHERE a.cid=$cid, except I do not know how to make this work for multiple tables and this now has the problem of not being able to differentiate columns from its original table. For example, there will be two columns named name, one from settings_currency and one from settings_post. –  Keir Simmons Oct 12 '13 at 19:31
    
I've added a JOIN solution. Although I wonder how the application will deal with all this dynamic data -- if the tables have different schemas, how will the application know what's in the result? –  Barmar Oct 12 '13 at 19:31

This is not really an answer to your specific question, simply because there's no way to accomplish what you are trying with one query.

The reason is simple: RDBMSs are not designed to work this way. Tables are supposed to store data that represent entities and relations. In your case, for each distinct value of mid, a table named settings_{mid} must exist, thus forcing the mid column implicitly store (a part of) a table name. But that's not data, that's metadata.

That would not really be a problem if SQL syntax could accept variable, parametrized, column-related or arbitary table names. But it doesn't. And that's by design. Instead, an RDBMS provides you with all the tools you could ever need to relate your data to each other. By using it the intended way, you'll never have to resort to such 'dynamic' tricks.

In your case, there should be one config table with a mid column to distinguish the rows that refer to the specific mid value. Then, the query would be simple:

select * from `config` where mid='$mid' and cid='$cid'

This is the relational way. Thus the R in RDBMS. There's absolutely no reason at all to mix data with metadata. If you do, you move the relation resolution problem in higher levels of the application model.

And one last thing: One might argue that the config_{mid} tables might have similar but not identical structure. There's a solution for that too: IS-A relations.

Having said that, for your specific problem, a solution along the lines of Barmar's answer would do the trick.

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I initially thought along the lines of using a config table, but as there are an arbitrary number of 'settings' for each mid this isn't really possible. –  Keir Simmons Oct 14 '13 at 5:58
1  
Apart from the IS-A approach I mentioned, if the structure cannot be classified in any useful way, you could still implement this using a key/value pair table: CONFIG(mid,cid,setting_name,setting_value). But avoid an arbitary number of tables; you're only making it worse. –  geomagas Oct 14 '13 at 6:21
    
Actually, I really like this idea, thanks. Would you recommend creating two tables, i.e setting_ids which have 3 columns: sid, mid, setting_name (so each setting can be defined here) and another table which houses each instance of a setting for each cid, having columns: id, sid, cid, setting_val. So in the first table I could have a row: sid=1, mid=bank, setting_name=sign and then in the other table have the rows with vals: cid=345, setting_val=£; cid=24, setting_val=$ -> both rows have sid=1. –  Keir Simmons Oct 14 '13 at 9:16
    
In fact, I'd recommend a somewhat more complex schema, with the necessary (even the not-that-necessary) constraints and structure. But that's not a subject to be discussed in comments. I recommend opening a fresh topic addressing these concerns, so that others may contribute as well. I'd be happy to participate. –  geomagas Oct 14 '13 at 9:40

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