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Bash script, need help with

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Although this seems like a great question, I'm afraid I'm not quite up to the challenge. You might repost/migrate this to one of the other boards--there is Server Fault and Unix/Linux both of which should be able to give a quicker/better answer. Or someone will post a great answer by the time I've hit add comment and I'll look even stupider. –  Bill K Oct 28 '10 at 17:52
It does not seem to work properly ... What happened ? The script will process three users given as arguments, and then all users in the '/etc/passwd' –  philant Oct 28 '10 at 17:57
this looks like fun, hopefully i'll be back in a bit with some help –  Orbit Oct 28 '10 at 17:57
Post what it's doing, both correctly and incorrectly. Note too that there is no point in your 2 find lines if the directory doesn't exist (that's a hint). Note too that 'in $1 $2 $3' assumes three arguments, but you don't know how many you have (and it directly contradicts your later 'shift' command) –  KevinDTimm Oct 28 '10 at 17:59
Why was your original code deleted? It should be left there for posterity. –  erjiang Oct 28 '10 at 20:56

2 Answers 2

code from the initial post seems to have disappeared... rolled up an example.


function mod {
    if [ -d "/Users/$1/share" ]; then
        echo "permissions changes for $1"
        #chmod 750 /Users/$1/share
        #find /Users/$1/share -type f -exec chmod 744 {} \;
        #find /Users/$1/share -type d -exec chmod 750 {} \;
        #find /Users/$1/ -type f -exec chmod 600 {} \;
        #find /Users/$1/ -type d -exec chmod 700 {} \;

function clean {
    IFS=':' read -ra pw <<< "$1"
    local c=0
    local n=""
    local t=500
    for i in "${pw[@]}"; do 
        if [ $c == 0 ]; then
        if [ $c == 2 ]; then
            if [ "$i" -gt "$t" ]; then
                mod $n

function report {
    export user=$(whoami)
    ls -la "/Users/$user" > report.txt

if [ -z $1 ]; then"
    while read line; do 
        if [ "${line:0:1}" != "#" ]; then
            clean $line
    done < /etc/passwd
    for arg in "$@"
         mod $arg

only requirement that it doesn't meet is printing full path (only prints relative) under #3 in the report. the variable t is the lowest uid the permissions changes will affect. commented out the chmods so no one accidentally does this to their system. oops.

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Instead of specifying $1 $2 $3, loop over the inputs like so:

for user ; do

Then, you will need to change all $1 to $user

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You almost never want $*. Use "$@" instead. Or just remove the sequence to iterate over entirely; the default for for is $@. –  Ignacio Vazquez-Abrams Oct 28 '10 at 18:06
I hadn't realized the difference between the variables. I'll update to reflect that. –  Bruce Armstrong Oct 28 '10 at 18:27
Do u mean it should be like: –  trs Oct 28 '10 at 18:39
You won't need the shift before done, aside from that, its better. Although, please reformat the code to display as code. –  Bruce Armstrong Oct 28 '10 at 18:53

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