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I want to get the home directory of a user of a unix system. Why doesn't the following work:

# sudo su $offender -c "bash -s < <(echo echo \$HOME)"
sh: Syntax error: redirection unexpected
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Why doesn't sudo su $offender -c 'echo $HOME' work for you? –  cHao Apr 7 '12 at 2:52
    
I get a "redirection unexpected" error –  Vanson Samuel Apr 7 '12 at 2:54
    
Fully expected. < < doesn't make much sense. What i'm asking is, why all the shell gymnastics? It'd seem you don't need all the redirection and echoing commands and such... –  cHao Apr 7 '12 at 2:56
    
Guess we should ask...what OS is this? Is it one where sh isn't a link to bash? (On my RH/CentOS Linux boxes, sh is actually bash...probably why i'm not seeing the issue you're having.) –  cHao Apr 7 '12 at 3:03

3 Answers 3

up vote 1 down vote accepted

It works for me in Ubuntu and Fedora using sudo su $offender -c "echo \$HOME"

You could also gouge it from your /etc/passwd file like so:

grep "^$offender" /etc/passwd | cut -d':' -f6
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Sometimes the obvious escapes me. :-/ –  Vanson Samuel Apr 7 '12 at 3:13

Don't really know why it doesn't work, but here's a way to get the home directory that does not involve spawning a shell as that user:

getent passwd "${offender:?No Offending Account Given}" | awk -F':' 'NR==1{print $6}'
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Or do sudo su ${offender} -c 'bash -c "echo $HOME"', or sudo su ${offender} -c "bash -s <<<'echo \$HOME'" if you insist on running a process as the user you want to get information for. –  Ariel Apr 7 '12 at 2:56
    
this also works, thanks!!! –  Vanson Samuel Apr 7 '12 at 3:19

The direct problem is that sh does not recognize process substitution (the <(echo $HOME)) notation, even when it is a link to bash.

It seems like a rather brute force way to get the information. Doesn't:

eval echo ~$offender

work for you?

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