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I try to run the following bash script to create a bunch of users, groups, home dirs for the users and correct permissions for all of these. The OS is CentOS.

When I try to run the following, which I though should work, it returns "command not found" when running via terminal. it only gets as far as creating the /homedirs directory, nothing more. I'm a total noob at bash scripting so forgive me if this looks ugly.

mkdir /homedirs; chmod 775 /homedirs;

for iYear in {1..3} do
    sYear = $iYear"ti"
    sYearDir = "/homerirs/"$sYear
    groupadd $sYear; mkdir $sYearDir; chgrp $sYear $sYearDir; chmod 750 $sYearDir

    for sClass in {a,b} do
        sClassDir = $sYearDir/$sClass
        mkdir $sClassDir
        sClassGrp = $sYear$sClass
        groupadd $sClassGrp; chgrp $sClassGrp $sClassDir; chmod 750 $sClassDir

        for iUser in {1..3} do
            sUserName = "i"$iYear$sClass"g"$iUser
            sUserDir = $sClassDir/$sUserName
            useradd -d $sUserDir -g $sClassGrp -G $sYear -m $sUserName
            chown $sUserName $sUserDir; chmod 750 $sUserDir
        done
    done
done
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1  
Doesn't it have to be for ... in ... ; do, with semicolons separating flow control statement and do block? –  raina77ow Oct 3 '12 at 20:49
    
@raina77ow that could be. I'm still quite unfamliar with the syntax. In fact I think it should be, too, come to think of it. Edit: that didn't solve the problem... –  MDeSchaepmeester Oct 3 '12 at 20:51
    
for iYear in 1 2 3; do and for sClass in a b; do would not only be shorter, but also more portable. –  tripleee Oct 3 '12 at 20:53
    
You might want to fix the spelling of homerirs too. –  tripleee Oct 3 '12 at 20:56
    
@raina77ow: +1 Yes you do need semicolons. –  tripleee Oct 3 '12 at 20:58

3 Answers 3

up vote 1 down vote accepted

The error message is caused by the spaces around the equals signs. A token with whitespace after it is interpreted as a command name; so what you intended as variable names causes the Command not found errors.

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It worked! Thank you! –  MDeSchaepmeester Oct 3 '12 at 21:13
    
Can you also tell me how to login with these users? As you can see, no password was specified but the login screen or terminal ask me for a password. When I leave it blank, there's an authentication failure... –  MDeSchaepmeester Oct 3 '12 at 21:30
    
You should probably pass in a password with an option to useradd. To change the password of an existing user, run passwd $user as root. –  tripleee Oct 3 '12 at 21:37
    
... or install a suitable public SSH key and leave them passwordless. –  tripleee Oct 3 '12 at 21:44
    
I don't really get what you mean with that last. The teacher (yes, this is for school) just asked us to script this and he said don't give a password with useradd. We have only had a poor introduction to unix last year... –  MDeSchaepmeester Oct 3 '12 at 22:05

You may need to set your PATH and you really should read the advanced bash scripting guide. See also this answer.

I also suggest to debug your script by starting it with #!/bin/bash -vx as its first line. And you should make it executable with chmod u+x at least.

Perhaps groupadd might not be available on your system.

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I've also made it executable... Groupadd is available. –  MDeSchaepmeester Oct 3 '12 at 20:55
    
Okay, I cannot run it from the terminal as opposed to what I thought before. What more do I need to do beside chmod u+x ? –  MDeSchaepmeester Oct 3 '12 at 21:04

best thing to do is add the full path before your executables:

change useradd to /usr/sbin/useradd

change groupadd to /usr/sbin/groupadd

will cure the command not found.

remember this programs will probably need to run as root to work.

share|improve this answer
    
-1 No, don't do that. Set up a sane PATH once, and never hard-code command path names. –  tripleee Oct 3 '12 at 21:09
1  
Thanks for the run as root hint, didn't know if it was necessary but did it anyway. –  MDeSchaepmeester Oct 3 '12 at 21:16

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