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In linux I could find the mysql installation directory with the command which mysql. But I could not find any in windows. I tried echo %path% and it resulted many paths along with path to mysql bin.

I wanted to find the mysql data directory from command line in windows for use in batch program. I would also like to find mysql data directory from linux command line. Is it possible? or how can we do that?

In my case, the mysql data directory is on the installation folder i.e. ..MYSQL\mysql server 5\data It might be installed on any drive however. I want to get it returned from the command line.

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4 Answers 4

up vote 74 down vote accepted

You can issue the following query from the command line:

mysql -uUSER -p -e 'SHOW VARIABLES WHERE Variable_Name LIKE "%dir"'

Output (on Linux):

+---------------------------+----------------------------+
| Variable_name             | Value                      |
+---------------------------+----------------------------+
| basedir                   | /usr                       |
| character_sets_dir        | /usr/share/mysql/charsets/ |
| datadir                   | /var/lib/mysql/            |
| innodb_data_home_dir      |                            |
| innodb_log_group_home_dir | ./                         |
| lc_messages_dir           | /usr/share/mysql/          |
| plugin_dir                | /usr/lib/mysql/plugin/     |
| slave_load_tmpdir         | /tmp                       |
| tmpdir                    | /tmp                       |
+---------------------------+----------------------------+

Or if you want only the data dir use:

mysql -uUSER -p -e 'SHOW VARIABLES WHERE Variable_Name = "datadir"'

This will work on Windows as well.

Btw, when executing which mysql in Linux as you told, you'll not get the installation directory on Linux. You'll only get the binary path, which is /usr/bin on Linux, but you see the mysql installation is using multiple folders to store files.


If you need the value of datadir as output, and only that, without column headers etc, but you don't have a GNU environment (awk|grep|sed ...) then use the following command line:

mysql -s -N -uUSER -p information_schema -e 'SELECT Variable_Value FROM GLOBAL_VARIABLES WHERE Variable_Name = "datadir"'

The command will select the value only from mysql's internal information_schema database and disables the tabular output and column headers.

Output on Linux:

/var/lib/mysql
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I used mysql -uroot -p -e 'SHOW VARIABLES WHERE Variable_Name = "datadir" | grep "datadir" | awk "{print $2}"' for finding actual datadir path in linux. How can find only that path in windows? –  Prabhu Jul 31 '13 at 14:21
1  
@Prabhu You can do it just with the mysql command. No other tools are required. Check my update –  hek2mgl Jul 31 '13 at 15:43
    
The command executes ok in linux. It does not execute well in windows xp. the first command gives error - you have error in your sql syntax near where Variable_Name = 'dirname'. The second command gives error - unknown database information_schema –  Prabhu Aug 1 '13 at 1:57
    
Excellent. This is exactly what I wanted. Thanks. –  Amal Murali Mar 14 '14 at 18:13
    
When I try any of these commands in Win7 (AMPPS), I always get a long helpfile displayed, nothing useful. ??? –  Ralf Mar 13 at 14:29

You can try this-

mysql> select @@datadir;

PS- It works on every platform.

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2  
Works fine on OS X –  Gilles De Mey Jul 17 '14 at 5:34
1  
Works fine on Ubuntu. –  jm_____ Sep 8 '14 at 17:11
    
Works fine on Win7 –  Ralf Mar 13 at 14:36
    
Short and concise –  Carlos Quijano Apr 4 at 15:43

if you want to find datadir in linux or windows you can do following command

mysql -uUSER -p -e 'SHOW VARIABLES WHERE Variable_Name = "datadir"

if you are interested to find datadir you can use grep & awk command

mysql -uUSER -p -e 'SHOW VARIABLES WHERE Variable_Name = "datadir"' | grep 'datadir' | awk '{print $2}'
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public function variables($variable="")
{
  return empty($variable) ? mysql_query("SHOW VARIABLES") : mysql_query("SELECT @@$variable");
}

/*get datadir*/
$res = variables("datadir");

/*or get all variables*/
$res = variables();
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