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I would like to execute two or more commands back to back . But these commands are stored in a variable in my script. For example,

var="/usr/bin/ls ; pwd ; pooladm -d; pooladm -e"

The problem arises when I execute this variable via my script. Suppose I go:

#!/bin/ksh -p
var="/usr/bin/ls ; pwd;pooladm -d; pooladm -e"

It doesn't work .. But the moment I use eval :

eval $var

It works brilliantly.

I was just wondering if there is any other way to execute a bunch of commands stored in a variable without using eval.

Also , Is eval usage considered a bad programming practice because my coding standards appear to shun its usage than embrace it . Please do let me know.

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3 Answers 3

up vote 2 down vote accepted

Remember that the shell only parses the line once. So when you expand your $var, it becomes one string containing blanks. Since you have no executable named '/usr/bin/ls ; pwd;pooladm -d; pooladm -e', it can't run it.

On the other hand, eval takes its arguments are re-scans them, now you get '/usr/bin/ls', 'pwd', and so on. It works.

eval is a little chancy because it leaves a possible security hole -- consider if someone managed to get 'rm -rf /' into the string. But it's a useful tool.

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Use backticks and echo. In your case

`echo $var`
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This isn't ideal. Backquotes are intended for capturing the output of a command for further processing. If the commands in $var write anything to standard output, this solution would capture that output and then throw it away. – Kenster Jul 13 '11 at 20:12

You could invoke another copy of the shell to run the command:

sh -c "$var"

This isn't necessarily better than using eval. The main practical difference is that eval will run the commands in the context of the current shell, while "sh -c" runs the commands in a separate shell instance. If var contains commands to set environment variables or change the current directory, you or may not want those commands to affect the current shell.

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