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I have a database like this:

+----+---------------------+
| id | tags                |
+----+---------------------+
| 1  | test1, test2, test3 |
| 2  | test1, test2, test3 |
| 3  | test1, test2, test3 |
| 4  | test1, test2, test3 |
| 5  | buh1, buh2, buh3    |
+----+---------------------+

Now i want to display the most popular tags from this database. I have a function, and it works with a array like this:

$tag_array = array( 'test1, test2 test, test3', 'test2, test4, test2', 'buh, buh2, buh3' );

The function:

function popularTags($tag_array) {
    $p = array();
    foreach($tag_array as $tags) {
        $tags_arr = array_map('trim', explode(',', $tags));
        foreach($tags_arr as $tag) {
            $p[$tag] = array_key_exists($tag, $p) ? $p[$tag]+1 : 1;
        }
    }
    arsort($p);
    return $p;
}

This is how to display the most popular tags:

foreach(popularTags($tag_array) as $tag=>$num)
{
    echo $tag, " (", $num, ")<br />";
}

This works so far, with a normal array.

Now, i want to get the tags from the Database, so i extract the values from the database and run the function like this:

$result = mysql_query("select * from DB ORDER BY date DESC");

while($row = mysql_fetch_array($result)){

   $tag_array = $row["$tags"];

foreach(popularTags($tag_array) as $tag=>$num)
{
    echo $tag, " (", $num, ")<br />";
}

}

This give me an error though:

Warning: Invalid argument supplied for foreach()

So my question is how to show the most popular tags from the database with this function?

Thanks

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3 Answers 3

My suggestion is that you normalize your database. Then a query like this becomes trivial, as well as much better performing.

select TagID, count(*)
from EntityTag
group by TagID
order by count(*) descending
limit 5
share|improve this answer
    
Thank you, but this is too complicated right now –  2by Sep 15 '11 at 18:49

mysql_fetch_array returns all the rows. So do this:

$rows = mysql_fetch_array($result);
foreach($rows as $row) {
    $tag_array = $row["tags"]; // note removing the $
    foreach(...) {
    }
}
share|improve this answer
    
It somehow work, but it does not display any tags, instead it display something like this: (1) (2) (3) (4) (5) (6) (7) (8) (9) (10) –  2by Sep 15 '11 at 18:48
    
sorry I am replying hastily. I will figure this out in a minute. –  Kinjal Dixit Sep 15 '11 at 18:49
    
Thank you, your new reply gives error :-) Warning: preg_split() [function.preg-split]: No ending delimiter ',' found in –  2by Sep 15 '11 at 18:51
    
I still cant it to work, i try like this: $rows = mysql_fetch_array($result); foreach($rows as $row) { $tag_array = $row["tags"]; // note removing the $ foreach(popularTags($tag_array) as $tag=>$num) { echo $tag, " (", $num, ")<br />"; } } –  2by Sep 15 '11 at 19:23
    
It gives me this error: Warning: Invalid argument supplied for foreach() –  2by Sep 15 '11 at 19:26
up vote 0 down vote accepted

This one works for me:

$result = mysql_query("select tags from DATABASE LIMIT 20");

$tags = array();

while ($row = mysql_fetch_array($result)) {
    $row_tag_array = split(",", $row[0]);
    foreach ($row_tag_array as $newtag) {
    asort($row_tag_array);
        if (array_key_exists($newtag, $tags)) {
            if ($tags[$newtag] < 200) {
                $tags[$newtag] = $tags[$newtag] + 20;

            }
        }
        else {
            $tags[$newtag] = 100;
        }
    }
}

foreach ($tags as $tag => $size) {
    echo "<a style=\"font-size: $size%;\" href=\"?t=$tag\">$tag</a> ";

}

Thank you for your help though

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