I have a script and want to ask the user for some information, the script cannot continue until the user fills in this information. The following is my attempt at putting a command into a loop to achieve this but it doesn't work for some reason.

echo "Please change password"
while passwd
do
echo "Try again"
done

I have tried many variations of the while loop:

while `passwd`
while [[ "`passwd`" -gt 0 ]]
while [ `passwd` -ne 0 ]]
# ... And much more

But I can't seem to get it to work.

up vote 293 down vote accepted
until passwd
do
  echo "Try again"
done
  • 39
    oneliner: until passwd; do echo "Try again"; done – tig Mar 19 '12 at 12:10
  • 14
    Difficult to Ctrl-C out of this. – DonGar Feb 10 '13 at 22:38
  • 30
    Easy to Ctr-C out of this: until passwd; do echo "Try again"; sleep 2; done - all you have to do is press Ctr-C right after (within the two seconds given) the echo did it's job. – Christian Aug 23 '13 at 20:14
  • 33
    Ctrl-Z followed by kill %1 works here when Ctrl-C won't – Tom Apr 24 '14 at 17:36
  • 5
    @azmeuk: Try something like until passwd || (( count++ >= 5 )); do echo "foo"; done (bash only, make sure to set count to 0 if that varaible exists) If you need this for plain sh, increment the counter in the body and use [ ] – Justin Sane Aug 5 '15 at 11:53

You need to test $? instead, which is the exit status of the previous command. passwd exits with 0 if everything worked ok, and non-zero if the passwd change failed (wrong password, password mismatch, etc...)

passwd
while [ $? -ne 0 ]; do
    passwd
done

With your backtick version, you're comparing passwd's output, which would be stuff like Enter password and confirm password and the like.

  • 2
    Shouldn't that be $? ? – Shawn Chin Mar 11 '11 at 14:49
  • Whoops. right. Good catch. thanks! I'll edit the answer – Marc B Mar 11 '11 at 14:49
  • 1
    Nice, but "Erik"s answer is cleaner, thanks! – J V Mar 11 '11 at 14:52
  • I like this because it's clear how to adapt it for the opposite situation. e.g. run a program with a non-deterministic bug until it fails – Eric May 15 '14 at 23:54
  • When success is indicated by a non-zero exit code, this is what you need. – Gudlaugur Egilsson Jan 30 '17 at 14:19

To elaborate on @Marc B's answer,

$ passwd
$ while [ $? -ne 0 ]; do !!; done

Is nice way of doing the same thing that's not command specific.

  • 9
    Doesn't work for me unfortunately (I get '!!' command not found). How is it supposed to work? – Johannes Rudolph Sep 10 '14 at 10:05
  • 2
    It is a bash trick to run the previous command. For example if you forget to write sudo in front of a command, you can simply do sudo !! to run the previous command with root privileges. – JohnEye Jan 8 '15 at 13:34
  • 1
    can i make a script in my profile that can do this, so i can go: $ makelastwork – user230910 Apr 24 '16 at 13:42
  • 2
    How to sleep between runs? – Kamil Dziedzic Oct 25 '17 at 17:04
  • This one is very useful – webofmars Jul 26 at 14:17
while [ -n $(passwd) ]; do
        echo "Try again";
done;
  • This is not the way to do it... you're negating the stdout of psswd and then doing a unary test on it. @duckworthd is good. – Ray Foss Jun 13 at 18:20

you can use an infinity loop

while true
do
  read -p "Enter password" passwd
  case "$passwd" in
    <some good condition> ) break;;
  esac
done
  • This is the only answer that didn't require putting my multi-line command in a function. I did && break after my verification command though instead of the select case. – carlin.scott Apr 27 at 21:19

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