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I host at hostgator and have about 30 mysql databases (all different websites that sit on the same server). For the last year.. no problems and suddenly, the last 2 days, I've seen 5 - 10 of these databases marked as 'crashed' and they return no results... so my websites display no info. I have to run a "repair table mytable" to fix these and then they work great again.

Instead of logging in to go through the databases 1 by 1 every morning, is there a way I could setup a php page to connect to all 30 databases and run a simple select statement.. and if it works, return "database db1 is working" "database db2 is working" and then when not working, return "no reply from db3"

....or something similar?

Thanks!

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2 Answers 2

up vote 4 down vote accepted

There's no reason you couldn't have a script that lists all of your databasenames and login credentials, and try to connect in turn to each:

$logins = array(
    array('dbname' => 'blah', 'user' => 'username1', 'password' => 'password1'),
    array('dbname' => 'yuck', ....)
    ...
);

$failures = array();

foreach ($logins as $login) {
    $con = mysql_connect('servername', $login['user'], $login['password']);
    if (!$con) {
       $failures[] = $login['dbname'] . " failed with " . mysql_error();
       continue;
    }
    $result = mysql_select_db($login['dbname']);
    if (!$result) {
       $failures[] = "Failed to select " . $login['dbname'] . ": " . mysql_error();
       continue;
    }
    $result = mysql_query("SELECT something FROM sometable");
    if (!$result) {
       $failures[] = "Faile to select from " . $login['dbname'] . ": " . mysql_error();
       continue;
    }
    if (mysql_num_rows($result) != $some_expected_value) {
       $failures[] = "Got incorrect rowcount " . mysql_num_rows($result) . " on " . $login['dbname'];
    }
     etc....
    mysql_close();
}

if (count($failures) > 0) { 
    echo "Failures found: "
    print_r($failures);
}
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perfect. thank you soooo much! –  Andi Oct 22 '11 at 4:28
    
I just added the domain name in the alert and after updating servername to localhost and supplying a value for $some_expected_value, this could not work any better. Such a great solution so fast! And much easier to only write the errors, as you did here. What was I thinking ? :) Thanks again. This is perfect! –  Andi Oct 22 '11 at 5:03

You should be able to do something like the following:

<?php
//connect to database
mysql_connect('database','user','password');

//get all database names
$result = mysql_query("show databases;");

//iterate over all databases returned from 'show databases' query
while($row = mysql_fetch_array($result)) {
    //DB name is returned in the result set's first element. select that DB
    mysql_selectdb($row[0]);
    //get all tables in the database
    $query = "show tables;";
    $result2 = mysql_query($query);
    echo "Query: (".$row[0].")$query\n";
    echo mysql_error();
    //iterate over all tables in the current database
    while($row2 = mysql_fetch_array($result2)) {
            //the first element of the returned array will always be the table name, so:
            $query = "select * from ".$row2[0]." where 1=1;";
            $result3 = mysql_query($query);
            echo "Query:\t(".$row[0].'/'.$row2[0].")$query\n";
            //If mysql_query returns false (i.e., $result3 is false), that means that
            // the table is damaged
            if(!$result3) {
                    echo "***Error on table '".$row2[0]."' *** ... Fixing...";
                    //So, we repair the table
                    mysql_query("repair table ".$row2[0].";");
            }
        }
    }
?>
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