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I have a client that wants to manage his SEO titles/descriptions for any page in the website, so I thought about making a module where he can enter the URL/TITLE/DESCRIPTION and the website will check if there is an entry for that page, and if there is, show it.

I have tried this:

$url = 'http://'.$_SERVER['SERVER_NAME'].$_SERVER['REQUEST_URI'];

$q_seo = $conexio->query('SELECT modulseo.titol, modulseo.descripcio, MATCH(modulseo.url) AGAINST("'.$url.'") AS score FROM modulseo WHERE MATCH(modulseo.url) AGAINST("'.$url.'") ORDER BY score DESC LIMIT 0,1');

if(mysql_num_rows($q_seo)>0)
{
    $d_seo = mysql_fetch_array($q_seo);

    $titol = $d_seo['titol'];
    $descripcio = $d_seo['descripcio'];

}
else
{
    $titol = 'default title';
    $descripcio = 'default description';
}

This obviously doesn't work, as I believe fulltext search only works with matching different words, not the similarity between 1 word and another, as the client can enter in the backend urls like:

  • http://www.domain.com/index.php
  • or http://domain.com/index.php
  • or http://www.domain.com/index.php?language=fr
  • or http://domain.com/index.php?language=fr
  • etc..

and then the user of the website can access any of those urls, so there must be a way to match any of the urls with the any of the ones the client entenred in the backend.

Any clue about how to do this?

share|improve this question
    
why don't you use like to make the search?? –  jcho360 Jul 10 '12 at 12:30

1 Answer 1

Make the search with LIKE %varible% It's a slower query but it will work.

Your table engine had to be MyISAM or if you MySQL -v 5.6+ you can use InnoDB with a full text index

mysql> select * from test;
+------+------+------------------------------+
| ids  | name | last_name                    |
+------+------+------------------------------+
|    0 | 0    | http://domain.com/index.php  |
|    1 | 0    | http://domain2.com/index.php |
|    2 | 0    | http://domain3.com/index.php |
+------+------+------------------------------+
3 rows in set (0.00 sec)

mysql> select * from test where last_name like '%http://domain.com/index.php%';
+------+------+-----------------------------+
| ids  | name | last_name                   |
+------+------+-----------------------------+
|    0 | 0    | http://domain.com/index.php |
+------+------+-----------------------------+
1 row in set (0.00 sec)
share|improve this answer
    
Because if the administrator adds "http://domain.com/index.php" and the user is browsing "http://www.domain.com/index.php" it won't work, no? –  Aleix Jul 10 '12 at 12:35
    
I think it will work even if you make a search "%main%" it will find it –  jcho360 Jul 10 '12 at 12:40
    
I edited my post, I even did search with like '%//%'; and the result was display right –  jcho360 Jul 10 '12 at 12:43
    
mysql> select * from test where last_name like '%http://www.domain.com/index.php%'; Does not work, if you add the three 'www', that's why I wanted something that can match the closest similar string –  Aleix Jul 10 '12 at 14:19
    
show me the query and the result –  jcho360 Jul 10 '12 at 14:55

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