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This is for a bash installation script. The script foo.sh takes "DIRECTORY" as an argument. Say, there is a dir <$HOME>/TEST/TEST_1A/TEST_2A/TEST_3 and another dir <$HOME>/TEST/TEST_1B/TEST_2B/TEST_3.

Script: foo.sh in brief.

DIR='find $HOME -type d -name $1 | head 1'
if [ DIR is set to a directory ]
then
   rm -rf $DIR
fi
exit 0

Usage: foo.sh TEST_3

Now from the script, only the <$HOME>/TEST/TEST_1A/TEST_2A/TEST_3 can be removed. To remove <$HOME>/TEST/TEST_1B/TEST_2B/TEST_3, I need to use a reg exp in my find command, to fine tune the remove to resolve the directory conflict.

Modified the find part of the above script as below

DIR='find $HOME -type d -regexp $1 | head 1'

New usage: foo.sh TEST_2B/TEST_3

But "find" command FAILS to get the DIR set to <$HOME>/TEST/TEST_1B/TEST_2B/TEST_3 and instead returns empty & as a result DIR is empty and I can never ever remove <$HOME>/TEST/TEST_1B/TEST_2B/TEST_3

How do I change the script, so that find can act on JUST the directory name, as well as on the path to the directory too with NO issues. Infact, some users may give a partial directory path as argument to "foo.sh". I expect "foo.sh" to work, even in such cases

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  • 1
    Please post the source for the bash script. I've written tons of fairly elementary, albeit long scripts. Nothing helps like echo-ing your arguments. – octopusgrabbus Oct 27 '11 at 22:00
2

You could try:

if [[ "$1" == */* ]]; then
    EXPR="-path *$1"
else
    EXPR="-name $1"
fi
DIR=$(find $HOME -type d $EXPR | head -1)

A simple name like "TEST_3" will translate into find -name TEST_3 but a name with a slash like "ST_2/TEST_3" will translate into find -path *ST_2/TEST3. This will take care of (partial) directory names.

4
  • I have a problem with find here. I think "find" has an issue with partial path. For ex, find $(HOME) -path *ST_2B/TEST_3 works, but find $(HOME) -path TEST_2B/TEST_3, yields nothing. Strange. I have to support partial paths too, with "find" resolving the path and then removing it – Mike Oct 27 '11 at 23:15
  • @Mike: Find does not have an issue, only your expectations are wrong. -path compared the complete path to the given pattern. Therefore a xyz/TEST_2B/TEST_3 is compared to your argument TEST_2B/TEST3 which obviously is a no-match. Compared to */TEST_2B/TEST_3 it IS a match. Regarding "partial match": If my answer is not what you want, please clarify this in the question by editing it. Long discussion within an answer are frowned upon - see the FAQ for this. – A.H. Oct 28 '11 at 7:42
  • With your second explanation, I got what -path expects & it will work for me. THANKS A LOT – Mike Oct 28 '11 at 14:15
  • 1
    You are welcome. Please lookup stackoverflow.com/faq#howtoask howto vote on and accept answers. – A.H. Oct 28 '11 at 15:37
0

Wouldn't this work as intended?

find $HOME -type d -name $1 -exec echo {} ';'  -exec rm -rf {} ';'

It will complain about deleting of processed directory, but toher than some stderr output it's ok...

You can ofc change "-name" for "-regexp" as you suggested, but if you want something more complex, you can create special script to call from "-exec"

EDIT: I probably understood you wrong first time (but won't delete anything, it may help somebody) - you want to delete only one of TEST_3 directories (how do you choose which one? first found by find? - it seems quite strange), still as I suggested in previous paragraph, you can provide skript to -exec which will take care of all decision making)

1
  • By virtue of "find" output, with "foo.sh TEST_3", it's always going to be <$HOME>/TEST/TEST_1A/TEST_2A/TEST_3 removed. If I change my "find" arguments appropriately, to support partial path, then "foo.sh TEST_2B/TEST_3" SHOULD remove TEST_2B/TEST_3 – Mike Oct 27 '11 at 23:07

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