This question already has an answer here:

I try to execute the following command :

mysql AMORE -u username -ppassword -h localhost -e "SELECT  host  FROM amoreconfig"

I store it in a string :

cmd="mysql AMORE -u username -ppassword -h localhost -e\"SELECT  host  FROM amoreconfig\""

Test it :

echo $cmd
mysql AMORE -u username -ppassword -h localhost -e"SELECT host FROM amoreconfig"

Try to execute by doing :

$cmd

And I get the help page of mysql :

mysql  Ver 14.14 Distrib 5.1.31, for pc-linux-gnu (i686) using readline 5.1
Copyright 2000-2008 MySQL AB, 2008 Sun Microsystems, Inc.
This software comes with ABSOLUTELY NO WARRANTY. This is free software,
and you are welcome to modify and redistribute it under the GPL license
Usage: mysql [OPTIONS] [database]
(...)

I guess I am doing something plain wrong with the quotes but can't find out what is the problem.

marked as duplicate by tripleee bash Apr 20 '16 at 11:17

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 7
    I recommend that you read this: mywiki.wooledge.org/BashFAQ/050 – Dennis Williamson Jan 5 '10 at 11:43
  • 4
    @DennisWilliamson - top link; I especially like this: "If your head is SO far up your ass that you still think you need to write out every command you're about to run before you run it" - I wonder, how the author of that, would solve a script where you construct a command dynamically, and explicitly want to echo it - in order to prompt the user "Do you want to run this command?" before it's ran?... – sdaau May 30 '13 at 20:26
  • @sdaau, depends on which of the approaches given in the FAQ is being used. For a function, one can print its text with declare -f; for an array (the typical "dynamically constructed" approach): printf '%q ' "${array[@]}"; echo. – Charles Duffy Aug 28 '15 at 21:25
  • 4
    The best-practices approach, by the way, is not to store your command as a string. If you want to dynamically construct it, do so with an array. Using eval, as the top answers here do, incurs substantial security risk (opening one up to shell injection attacks if any content is parameterized). – Charles Duffy Aug 28 '15 at 21:30
up vote 266 down vote accepted

Have you tried:

eval $cmd

For the follow-on question of how to escape * since it has special meaning when it's naked or in double quoted strings: use single quotes.

MYSQL='mysql AMORE -u username -ppassword -h localhost -e'
QUERY="SELECT "'*'" FROM amoreconfig" ;# <-- "double"'single'"double"
eval $MYSQL "'$QUERY'"

Bonus: It also reads nice: eval mysql query ;-)

  • Thanks, it works. How would I select all columns ? How can I escape '*' ? – Barth Jan 5 '10 at 10:33
  • You do not need to escape asterisk (*) in this case. – filiprem Jan 5 '10 at 12:26
  • Just use single quotes. – slebetman Jan 5 '10 at 13:41
  • first attempt with both failed. I had to use eval $MYSQL \"$QUERY\" But then the first one returns +---+ | * | +---+ | * | (...) And the second with the escaping fails with : ERROR at line 1: Unknown command '*'. Thanks for your help anyway :) – Barth Jan 5 '10 at 15:11
  • Fixed. Not sure exactly how it works, just followed a hunch. Maybe another shell guru can explain. – slebetman Jan 5 '10 at 15:28

Use an array, not a string, as given as guidance in BashFAQ #50.

Using a string is extremely bad security practice: Consider the case where password (or a where clause in the query, or any other component) is user-provided; you don't want to eval a password containing $(rm -rf .)!


Just Running A Local Command

cmd=( mysql AMORE -u username -ppassword -h localhost -e "SELECT  host  FROM amoreconfig" )
"${cmd[@]}"

Printing Your Command Unambiguously

cmd=( mysql AMORE -u username -ppassword -h localhost -e "SELECT  host  FROM amoreconfig" )
printf 'Proposing to run: '
printf '%q ' "${cmd[@]}"
printf '\n'

Running Your Command Over SSH (Method 1: Using Stdin)

cmd=( mysql AMORE -u username -ppassword -h localhost -e "SELECT  host  FROM amoreconfig" )
printf -v cmd_str '%q ' "${cmd[@]}"
ssh other_host 'bash -s' <<<"$cmd_str"

Running Your Command Over SSH (Method 2: Command Line)

cmd=( mysql AMORE -u username -ppassword -h localhost -e "SELECT  host  FROM amoreconfig" )
printf -v cmd_str '%q ' "${cmd[@]}"
ssh other_host "bash -c $cmd_str"
  • 3
    Consider the case where no passwords are in the query. Think how useful it would be. – David Beckwith Aug 30 '15 at 6:55
  • 3
    @DavidBeckwith, why is the approach with security vulnerabilities more useful than the one without? What benefit does it add? You can still dynamically construct your arrays; you just get the benefit of not risking their contents being parsed in a manner different from that intended. – Charles Duffy Aug 30 '15 at 15:24
  • 2
    ...that is to say: One can run cmd+=( -e "$query" ) to append those arguments to the existing array, and be assured that query will be added as a single argument to -e that's passed to mysql; no need to look into its contents to figure out if it spawns a subshell or escapes its quotes and launches a rootkit or whatever else. – Charles Duffy Aug 30 '15 at 15:31
  • 7
    It's more exciting if you have security vulnerabilities. – David Beckwith Aug 31 '15 at 8:59
  • 4
    I... really don't know what I can say in response to that. Other than "please don't apply to work with me". Or, maybe, "please don't apply to work anywhere making products I use". – Charles Duffy Mar 28 '17 at 16:09

try this

$ cmd='mysql AMORE -u root --password="password" -h localhost -e "select host from amoreconfig"'
$ eval $cmd
  • 1
    thanks, it works. I marked the other answer as the accepted one because it came before. – Barth Jan 5 '10 at 10:32
  • 3
    To the extent that it works, this works badly. Needs to be eval "$cmd", not eval $cmd, to handle cases where any word-split component could be glob-expanded to a file in the current directory -- or cases where characters in IFS can't be substituted for others harmlessly. – Charles Duffy Feb 3 '16 at 18:34
  • 3
    This solution risks a command injection security vulnerability if any of the input to the eval'ed string is user-supplied. The solution that @CharlesDuffy provides is much better. – jsears Feb 25 '16 at 16:23

You don't need the "eval" even. Just put a dollar sign in front of the string:

cmd="ls"
$cmd
  • 3
    Works only for extremely simple commands; doesn't work for the one the OP gave in their example. – Charles Duffy Aug 28 '15 at 21:26
  • 1
    Read mywiki.wooledge.org/BashFAQ/050 to grok why. – Charles Duffy Aug 28 '15 at 21:27
  • this worked for me for a nodejs tool instead of `$cmd` – Paulo Oliveira Mar 31 '17 at 9:09
  • @PauloOliveira, that's because what you were trying before was trying to capture the output of your command, break that output into words, and run those words as another command itself. – Charles Duffy Apr 29 '17 at 19:40
  • does not work in GitBash. – kyb Mar 23 at 9:52

To eliminate the need for the cmd variable, you can do this:

eval 'mysql AMORE -u root --password="password" -h localhost -e "select host from amoreconfig"'
  • 3
    If you're just going to have a hardcoded literal, why use eval at all, as opposed to just running mysql [...]? – Charles Duffy Aug 28 '15 at 21:26
  • eval with a constant literal makes no sense! – Sedat Kilinc Jan 1 '17 at 20:59

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