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(Sorry for my bad English)

I want to select all Table Names in my MySQL Database, but exclude 2 Tables, and then work with these data in bash...

BUT when I try these Code, there is a Sort of Escaping Problem i think, is there any other possibilty to execute the Query and Catch its Output in the DBS Variable?

#/bin/bash
MYSQL_USER=root
MYSQL_PASS=toor

DBS="$(mysql -u$MYSQL_USER -p$MYSQL_PASS -Bse 'SELECT SCHEMA_NAME AS Database FROM INFORMATION_SCHEMA.SCHEMATA WHERE SCHEMA_NAME NOT IN('mysql', 'information_schema');')"
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2 Answers

up vote 2 down vote accepted

Try storing the SQL string into its own variable, and echoing that into the mysql client:

#/bin/bash
MYSQL_USER=root
MYSQL_PASS=toor

SQL_STRING="SELECT SCHEMA_NAME AS db FROM information_schema.SCHEMATA WHERE SCHEMA_NAME NOT IN ('mysql', 'information_schema');"
# Pipe the SQL into mysql
DBS=$(echo $SQL_STRING | mysql -u$MYSQL_USER -p$MYSQL_PASS -Bs)

# Display your result
echo $DBS

Note, I also changed the AS Database to AS db since DATABASE is a MySQL reserved keyword which would have to be enclosed in backquotes. I didn't want to mess around with getting those escaped properly in Bash.... Easier just to use a different alias.

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Thanks, helped a lot. The alias wasn't important in this place –  ohartl Feb 10 '12 at 17:36
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You cannot embed single quotes in a single quoted string. Try:

DBS="$(mysql -u$MYSQL_USER -p$MYSQL_PASS -Bse "SELECT SCHEMA_NAME AS Database FROM INFORMATION_SCHEMA.SCHEMATA WHERE SCHEMA_NAME NOT IN('mysql', 'information_schema');")"

The "inner" double quotes are OK because the parentheses indicate a new subshell.

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Tried that one too, but got some Error's –  ohartl Feb 10 '12 at 17:41
    
@zirrka, such as ... ?? Details are important. –  glenn jackman Feb 10 '12 at 19:26
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