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Re: show tables WHERE ?

Posted by J.O. Aho on 02/28/06 02:49

malcolm wrote:
> On Mon, 27 Feb 2006 17:29:51 -0500, J.O. Aho <user@example.net> wrote:
>
>> malcolm wrote:
>>> Hello All,
>>> On my rented space I have only one database. I have a few users
>>> at my site
>>> and any mysql tables I made for them have their initials as a
>>> prefix i.e.
>>> aa_phonelist, aa_addresses, aa_otherjunk
>>> bb_phonelist, bb_addresses, bb_otherjunk
>>> I want to make a drop down selection for the tables so that each can
>>> see his/her tables
>>> but ONLY theirs. What I really want is a query like 'Show tables
>>> where prefix like aa_'
>>> and send the results to the drop down. Obviously that won't work
>>> but I have wracked my
>>> small brain for quite some time now and can't seem to find something
>>> that will work.
>>> I have tried to use the show table results with things like in_array
>>> but I just can't
>>> make it work. This is on a logged-in page so I know the prefix but I
>>> can't seem to limit
>>> show tables at all and I can't find a way to strip out the other
>>> prefixes from the resulting
>>> array. Not zillions but quite a few tables and new ones all the time,
>>> so this needs to be
>>> dynamic.
>>
>> Look at the mysql_list_tables() function, if you aren't using mysql on
>> the host, then it will be more tricky. If you use the function, then
>> you will need to filter the result when you got it to PHP, while the
>> alternative options could work with WHERE statements.
>>
>> http://www.php.net/manual/en/function.mysql-list-tables.php
>>
>>
>> //Aho
>
>
> Thanks Aho but I'm able to list the tables ok and do the drop down but
> I can't figure how to filter the array returned by the 'show tables' query.
> That function does the same but I don't see any way there to filter the
> result. I'm looking at array_clean now, thanks for reply.

If you save the results from the "query" into an array, you can use array_filter()

http://www.php.net/manual/en/function.array-filter.php

and a function that returns true if the initials of a string is the same as
for the user, something like this may work:

//we assume that $initials contains the initials of the user

function is_user($var) {
global $initials;
if(substr($var, 0, 2)==$initials) {
return true;
}
return false;
}

//$table_array is a array with all the tables
$user_tables=array_filter($table_array, "is_user"));

//$user_tables should only contain tables with the same initials as the users


or you can do a loop where you check which tables are okey to list and at the
same time type out the options.

for($i=0;$i<count($table_array);$i++) {
if(substr($table_array[$i], 0, 2)==$initials) {
echo "<option>".$table_array[$i]."</option>\n";
}
}



//Aho

 

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