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I am having a really difficult time figuring out how to get the results of a mysql query into a bash shell script variable.

testDBName="some_database_name"
mysqlUser="root"
mysqlPassword="password"
mysqlCmd="/Applications/MAMP/Library/bin/mysql -u $mysqlUser -p $mysqlPassword -B -N"
cmdRes=$($mysqlCmd -e 'SHOW DATABASES LIKE "$testDBName"') #THIS IS THE TROUBLESOME LINE
if [ "$cmdRes" = "" ]; then
    echo "Table does not exist"
else
    echo "Table already exists"
fi

The line that is giving me the trouble is "cmdRes=...". If I just hard-code a table name into that it works fine, like this:

cmdRes=$($mysqlCmd -e 'SHOW DATABASES LIKE "some_database_name"')

But I cannot wrap my head around how/why/what is going on when I have a $variable inside that thing. Based on answers to a lot of other similar-but-different questions, I've tried putting different portions of the string into different variables to cut down on quoting, I've tried single quotes, double quotes, backslashes, double-single-double quotes, curly braces, running eval, etc. -- but nothing is working.

Thanks for any help you can provide.

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1 Answer

up vote 4 down vote accepted

The problem is that the shell won't expand anything inside the single quotes (').

One possible solution:

cmdRes=$($mysqlCmd -e "SHOW DATABASES LIKE '$testDBName'")
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Nope, I get: ERROR at line 1: Unknown command '\''. –  Jordan Lev Sep 4 '11 at 20:28
1  
Wait, I just tried that without the backslashes and it works! If you edit your answer I'll mark it correct (I don't have edit priveleges). Thanks! –  Jordan Lev Sep 4 '11 at 20:30
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