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Is it possible from within a bash script to check if a mysql database exists. Depending on the result then perform another action or terminate the script?

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9 Answers 9

up vote 7 down vote accepted

Example script (Thanks to Bill Karwin for the --user and --password comment!):

#!/bin/bash
## --user=XXXXXX --password=XXXXXX *may* not be necessary if run as root or you have unsecured DBs but
##   using them makes this script a lot more portable.  Thanks @billkarwin
RESULT=`mysqlshow --user=XXXXXX --password=XXXXXX myDatabase| grep -v Wildcard | grep -o myDatabase`
if [ "$RESULT" == "myDatabase" ]; then
    echo YES
fi

These are what the commands look like when run at a prompt:

[root@host ~]# mysqlshow myDatabase
Wildcard: myDatabase
+------------------+
|    Databases     |
+------------------+
| myDatabase       |
+------------------+

If no DB exists, the output will look like this:

[root@host ~]# mysqlshow myDatabase
Wildcard: myDatabase
+-----------+
| Databases |
+-----------+
+-----------+

Then, parse the output and do what you need to based on if it exists or not!

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+1 but fwiw you need to connect as a user with privileges to that database, or else the database will be missing from the results. –  Bill Karwin Sep 9 '11 at 16:39
1  
@billk Tested and you are correct, I guess for this to work you would need to run the script with sudo. –  chown Sep 9 '11 at 16:42
    
No, you don't need sudo, you just need to run mysqlshow --user=XXX --password=YYY options to specify MySQL credentials for a user with enough privileges to see the database in question. –  Bill Karwin Sep 9 '11 at 17:08
1  
Maybe my version of mysqlshow is different, but it doesn't work this way. If I specify a database name as the last parameter, it either lists it by itself under the database heading or gives an unknown database error (if it doesn't exist). If I don't specify a database, it gives me the database list. The version info for my mysqlshow says "mysqlshow Ver 9.10 Distrib 5.1.58, for debian-linux-gnu (i686)" –  Matthew Dec 21 '11 at 14:42

I give +1 to answer by @chown, but here's another alternative: If the bash script is running locally with the MySQL instance, and you know the path to the datadir, you can test:

if [ -d /var/lib/mysql/databasename ] ; then ...

This also assumes your shell user running the script has filesystem-level privileges to read the contents of the MySQL datadir. This is often the case, but it is not certain.

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1  
This is actually a cleaner way because folders are registered in the information_schema as a database. Additionally, user authentication is not required (in other words, no logging in). +1 !!! –  RolandoMySQLDBA Sep 9 '11 at 16:47
1  
This is a more elegant and reliable solution.. I LIKE IT :D –  Zander Rootman Oct 10 '14 at 10:30
mysqlshow "test" > /dev/null 2>&1 && echo "Database exists."

Depending on the exit status of the mysqlshow command, it will execute the following echo.

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1  
I think this answer wins –  guy mograbi Mar 26 '14 at 23:44

I couldn't get the accepted answer work for me (the grep in the quotes didn't work), so here is my version:

RESULT=`mysql -u $USER -p$PASSWORD --skip-column-names -e "SHOW DATABASES LIKE 'myDatabase'"`
if [ "$RESULT" == "myDatabase" ]; then
    echo "Database exist"
else
    echo "Database does not exist"
fi

I used the option --skip-column-names to remove the column names from the result.

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YES

for db in $(mysql -u -p -N <<<"show databases like '%something%'")
do
  case $db in 
    "something")
      // do something
    ;;
    "something else")
      // do something else
    ;;
  esac
done
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use the -e option to the mysql command. It will let you execute any query (assuming the right credentials). I don't know of a query that return just the name of the database so you'd probably need to parse the results of show databases or show tables from dbname

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Running on bash

$ mysqlshow "DB_NAME" &> /dev/null && echo "YES" || echo "NO"

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Here is an alternate version:

 RESULT=`mysql -u$USER -p$PASSWORD -e "SHOW DATABASES" | grep -Fo $DATABASE`
 if [ "$RESULT" == "$DATABASE" ]; then
    echo "Database exist"
 else
    echo "Database does not exist"
 fi
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if [ $(mysqlshow DB 1>/dev/null 2>/dev/null) -eq 0 ]; then
    echo "DB found"
fi
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