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Well I'm trying to get all the times that a String are repeated in two tables using a comun column and getting all the results with a While, like that:

    $result = mysql_query("SELECT * FROM hits") or die(mysql_error());

while($row = mysql_fetch_assoc( $result )) 
{
    $result=mysql_query("SELECT COUNT(app) FROM info WHERE app='$row[page]'");
while ($row = mysql_fetch_array($result, MYSQL_NUM)) 

{

$toip = $row[0] ;  
}

echo '<td bgcolor="#75D169">'; 
    echo "$toip";
    echo '</td>';

    }

But it doesn't show it very well as you can see it here: http://ikillcraft.a0001.net/counter/view.php?pass=test

The output would be:

Instalaciones de                    4       0 
Instalaciones de IkillLauncher      3       3
Instalaciones de gogogoa            3       0 
Instalaciones de MasterShell        0       0

But I don't know how to do it. :(

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You should be able to do this in a single piece of SQL. However assigning the results of both pieces of SQL to $result will cause a major problem with how your current SQL works. –  Kickstart Jul 1 '13 at 9:53
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2 Answers

up vote 2 down vote accepted

Using a single piece of SQL, something like this would do it:-

$result = mysql_query("SELECT a.page, COUNT(b.app) AS AppCount
                        FROM hits a
                        LEFT OUTER JOIN info b
                        ON a.page = b.app
                        GROUP BY a.page";

while($row = mysql_fetch_assoc( $result )) 
{
    echo '<td bgcolor="#75D169">'; 
    echo $row['AppCount'];
    echo '</td>';

}

Note I do not know your column names, and you should have all the non aggregate column names in the GROUP BY clause (ie, anything except the ones in the COUNT in this case)

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I have the same error that yesterday: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given –  Ikillnukes Jul 1 '13 at 10:11
    
That suggests an error in the SQL. Quick double check and it looks OK, but to be more certain I would need to check it against your table definitions. Could you post those please? –  Kickstart Jul 1 '13 at 10:19
    
You mean table definitions to its names? If it that's here are: gyazo.com/5473c30c7b897848c2e26dedf167206a gyazo.com/6f4078a4b779b226b1c56b5f4804dea9 I'm Spanish (I have only 14 years, and I don't know what you mean nicely) :/ Sorry. ;) –  Ikillnukes Jul 1 '13 at 11:37
    
Ah, you have no id column. I have updated the answer to just use a.page –  Kickstart Jul 1 '13 at 11:54
    
Oh lol, I have edited a thing that you have correct it before, (1 min ago) XD –  Ikillnukes Jul 1 '13 at 11:57
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I don't know your table structure, so I am doing guesswork here, but this should work:

SELECT hits.page, appgrouped.apphit
FROM (hits)
LEFT JOIN (SELECT COUNT(app) as apphit, app
           FROM info 
           GROUP BY app) AS appgrouped ON appgrouped.app = hits.page

This would be quite slow - depending on how big:

SELECT COUNT(app) as apphit, app
FROM info 
GROUP BY app

This is, if it is big, then the above join will be very slow, and in that case, PHP code would be a better solution (yes it would be faster).

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