76

What is the correct way to call some command stored in variable?
Is there any differences between 1 and 2?

#!/bin/sh
cmd="ls -la $APPROOTDIR | grep exception"
#1
$cmd
#2
eval "$cmd"
86

Unix shells operate a series of transformations on each line of input before executing them. For most shells it looks something like this (taken from the bash manpage):

  • initial word splitting
  • brace expansion
  • tilde expansion
  • parameter, variable and arithmetic expansion
  • command substitution
  • secondary word splitting
  • path expansion (aka globbing)
  • quote removal

Using $cmd directly gets it replaced by your command during the parameter expansion phase, and it then undergoes all following transformations.

Using eval "$cmd" does nothing until the quote removal phase, where $cmd is returned as is, and passed as a parameter to eval, whose function is to run the whole chain again before executing.

So basically, they're the same in most cases, and differ when your command makes use of the transformation steps up to parameter expansion. For example, using brace expansion:

$ cmd="echo foo{bar,baz}"
$ $cmd
foo{bar,baz}
$ eval "$cmd"
foobar foobaz
  • 5
    How to do eval "$cmd" without writing eval? $($cmd)? ${$cmd}? – Steven Lu May 8 '13 at 21:01
  • 2
    @StevenLu, none of those are equivalent -- intentionally so: An eval operation parses data as syntax; it's thus very security-sensitive, and doing it implicitly would be very bad form. – Charles Duffy Jan 26 '17 at 19:19
5

If you just do eval $cmd when we do cmd="ls -l" (interactively and in a script) we get the desired result. In your case, you have a pipe with a grep without a pattern, so the grep part will fail with an error message. Just $cmd will generate a "command not found" (or some such) message. So try use eval and use a finished command, not one that generates an error message.

  • It was just misprint. Should be "grep exception". – Volodymyr Bezuglyy Jan 12 '11 at 12:59
  • then use eval, not $cmd by itself, as it will probably not work (it did not in my testing, under bash and zsh). This is what eval was meant to do... – Henno Brandsma Jan 12 '11 at 20:53
0

$cmd would just replace the variable with it's value to be executed on command line. eval "$cmd" does variable expansion & command substitution before executing the resulting value on command line

The 2nd method is helpful when you wanna run commands that aren't flexible eg.
for i in {$a..$b}
format loop won't work because it doesn't allow variables.
In this case, a pipe to bash or eval is a workaround.

Tested on Mac OSX 10.6.8, Bash 3.2.48

-3

I think you should put

`

(backtick) symbols around your variable.

  • 4
    This executes the output of the command, which e.g. in the case of ls -l will generate a message like "total" command not found" (because total ... is part of the output of ls -l, e.g.) So this is NOT what you want. – Henno Brandsma Jan 12 '11 at 12:28

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