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Problem:

The following shell script code does not produce the expected result:

# MYSQL, MyUSER MyHost etc ... all defined above as normal

TARG_DB="zztest";
DB_CREATE="$($MYSQL -u $MyUSER -h $MyHOST -p$MyPASS -Bse 'create database $TARG_DB')";

Expected outcome:

A new database created with the name zztest

Actual outcome:

A new database created with the name $TARG_DB

Question:

How can this example code be changed such that $TARG_DB is interpolated or expanded, giving the expected outcome?

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4 Answers 4

up vote 5 down vote accepted

Because $TARG_DB is within single quotes within the subshell, it's taken literally. Use double quotes there, they won't mess up the subshell. e.g.

$ tmp="a b c"
$ echo $tmp
a b c
$ echo $(echo $tmp)
a b c
$ echo $(echo "$tmp")
a b c
$ echo $(echo '$tmp')
$tmp
$ echo "$(echo '$tmp')"
$tmp
$ echo "$(echo "$tmp")"
a b c
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Great answer, direct: with examples. Thanks. –  dreftymac Feb 2 '12 at 16:18

Don't wrap it in single-quotes.

There is no need to quote the command substitution $() so you can remove those and use double-quotes inside it.

DB_CREATE=$($MYSQL -u $MyUSER -h $MyHOST -p$MyPASS -Bse "create database $TARG_DB");
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TARG_DB="zztest";
DB_CREATE="$(${MYSQL} -u ${MyUSER} -h ${MyHOST} -p${MyPASS} -Bse \"create database ${TARG_DB}\")";
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1  
Because it's within a subshell, you don't even need to escape the quotes. –  Kevin Feb 1 '12 at 15:53
    
@Kevin thanks you are right. –  sgibb Feb 1 '12 at 15:55

The 'create database $TARG_DB' part is wrong! Single quotes supress variable substitution in bash. MySQL "sees" the literal text "$TARG_DB" and creates a database with that name. Put your sql statement in double quotes.

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