I need a variable to hold results retrieved from the database. So far this is basically what I'm trying with no success.

myvariable=$(mysql database -u $user -p $password | SELECT A, B, C FROM table_a)

My understanding of bash commands is not very good as you can see.

up vote 39 down vote accepted

I don't know much about the MySQL command line interface, but assuming you only need help with the bashing, you should try to either swap the commands around like so:

myvariable=$(echo "SELECT A, B, C FROM table_a" | mysql database -u $user -p$password)

which echos the string into MySQL. Or, you can be more fancy and use some new bash-features (the here string)

myvariable=$(mysql database -u $user -p$password<<<"SELECT A, B, C FROM table_a")

resulting in the same thing (assuming you're using a recent enough bash version), without involving echo.

Please note that the -p$password is not a typo, but is the way MySQL expects passwords to be entered through the command line (with no space between the option and value).

Note that myvariable will contain everything that MySQL outputs on standard out (usually everything but error messages), including any and all column headers, ASCII-art frames and so on, which may or may not be what you want.

EDIT:
As has been noted, there appears to be a -e parameter to MySQL, I'd go for that one, definitely.

  • Thanks, the mysql command also did not like the -p.. I needed to use --password=$password. – imnotneo Oct 28 '09 at 13:29
  • 1
    You can also add a configuration file (called .my.cnf) to your home folder which would plug in your options automatically. That would save some confusion in your script – Yitzchak Sep 14 '11 at 20:34
  • +1 of .my.cnf -especially to get passwords out of scripts. The -N option is useful to trim field names. – ErichBSchulz Jan 19 '14 at 2:49

A more direct way would be:

myvar=$(mysql mydatabase -u $user -p$password -se "SELECT a, b, c FROM table_a")
  • 5
    I was searching the s param, though you need to supply it twice to suppress the column names to be printed – Dominic Bartl Apr 20 '14 at 10:08
  • This shoud be the best answer, it does not return column name! – user3479125 Jun 5 '15 at 9:51
  • 1
    I think the white space between -p and the password must be removed. – frb Oct 2 '15 at 11:04
  • As frb said, you need remove the whitespace between -p and password. – fred Jul 17 '17 at 22:58

To read the data line-by-line into a Bash array you can do this:

while read -a row
do
    echo "..${row[0]}..${row[1]}..${row[2]}.."
done < <(echo "SELECT A, B, C FROM table_a" | mysql database -u $user -p $password)

Or into individual variables:

while read a b c
do
    echo "..${a}..${b}..${c}.."
done < <(echo "SELECT A, B, C FROM table_a" | mysql database -u $user -p $password)
  • syntax error near unexpected token <' cut.sh: line 26: done < < – thevoipman Jul 20 '15 at 9:28
  • @thevoipman: It's likely your script isn't using Bash. What does your shebang say? Also, since I can't see your script, I can't see where the error might be. – Dennis Williamson Jul 20 '15 at 11:42
  • @thevoipman The process substitution seems to be your issue (yes, I know, a year ago, just if anyone comes looking), but it might be possible to do the reverse using a pipeline instead in whatever shell you're using, i.e. echo ... | mysql ... | while read -a row; do ...; done. Keep in mind the while body is in a subshell and will not affect the shell around it. – falstro Oct 10 '16 at 18:19

You have the pipe the other way around and you need to echo the query, like this:

myvariable=$(echo "SELECT A, B, C FROM table_a" | mysql db -u $user -p $password)

Another alternative is to use only the mysql client, like this

myvariable=$(mysql db -u $user -p $password -se "SELECT A, B, C FROM table_a")

(-s is required to avoid the ASCII-art)

Now, BASH isn't the most appropriate language to handle this type of scenarios, especially handling strings and splitting SQL results and the like. You have to work a lot to get things that would be very, very simple in Perl, Python or PHP.

For example, how will you get each of A, B and C on their own variable? It's certainly doable, but if you do not understand pipes and echo (very basic shell stuff), it will not be an easy task for you to do, so if at all possible I'd use a better suited language.

If you want to use a single value in bash use:

  companyid=$(mysql --user=$Username --password=$Password --database=$Database -s --execute="select CompanyID from mytable limit 1;"|cut -f1)

  echo "$companyid"
  • this really reads the single value into the variable – bebbo Feb 8 '16 at 14:54
myvariable=$(mysql database -u $user -p$password | SELECT A, B, C FROM table_a)

without the blank space after -p. Its trivial, but without don't work.

myvariable=$(mysql -u user -p'password' -s -N <<QUERY_INPUT
    use databaseName;
    SELECT fieldName FROM tablename WHERE filedName='fieldValue';
QUERY_INPUT
)
echo "myvariable=$myvariable"
  • When providing code that solves the problem, it is best to also give at least a short explanation of how it works so that folks reading won't have to mentally parse it line by line to understand the differences. – Fluffeh Sep 28 '12 at 9:11

Another example when the table name or database contains unsupported characters such as a space, or '-'

db='data-base'

db_d=''
db_d+='`'
db_d+=$db
db_d+='`'

myvariable=`mysql --user=$user --password=$password -e "SELECT A, B, C FROM $db_d.table_a;"`

If you have particular database name and a host on which you want the query to be executed then follow below query:

outputofquery=$(mysql -u"$dbusername" -p"$dbpassword" -h"$dbhostname" -e "SELECT A, B, C FROM table_a;" $dbname)

So to run the mysql queries you need to install mysql client on linux

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