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I am trying to write a very very simple script in Linux.
Let me show you the code first:

#!/bin/bash
# The shell program uses glob constructs and ls
# to list all entries in testfiles, that have 2
# or more dots "." in their name.

ls -l /path/to/file/*.*.*

When I run this code with bash myscript command, I get something like: /path/to/file/file.with.three.dots

But I don't want this. I want to show only the file name, not the path.
Then I tried:

ls -l *.*.*

But this time is shows me the files, only if I am inside the /path/to/file/.
How can I set the path, so when running the script from any place, it will output the name of the files in the /path/to/file/?

Thank you!

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You might want to use the realpath command like p=$(realpath foo/bar) –  Basile Starynkevitch Feb 6 '13 at 6:11
    
Edited; the title of your question asked the exact opposite of what you want to know. –  Aaron Digulla Feb 6 '13 at 8:58

5 Answers 5

up vote 6 down vote accepted

basename path/to/file.b.c should give you file.b.c

However re-reading the question, I think a temporary cd to the path and then an ls may be better:

(cd /path/to/file; ls -l *.*.*)
share|improve this answer
    
So just write ls -l basename /path/to/file/*.*.* ? –  m.spyratos Feb 6 '13 at 4:07
1  
The base name command will give you just the filename from a path. Sounds like you want (cd /path/to/file; ls -l *.*.*) –  John3136 Feb 6 '13 at 4:09
    
I have now cd /path/to/file/; ls -l *.*.*. It works as expected, only if I run bash myscript from inside the /path/to/file –  m.spyratos Feb 6 '13 at 4:19
1  
@m.spyratos: The () around the command are important. Don't omit them. –  Aaron Digulla Feb 6 '13 at 8:59
2  
@AaronDigulla, using () instead of {} does not have any side-effects: when the subshell ends, the effects of the cd vanish. –  glenn jackman Feb 6 '13 at 12:18

Code first:

ls -l /path/to/file/*.*.* | awk -F '/' '{print $NF}'

Now explanation: You list file of your choice and then use awk on it. Switch -F will determine character you use for split (/ in this case). Then you print with awk the value of "$NF", which means "the last one". So you have: /path/to/file/file.with.three.dots. Split it, take the last one (file.with.three.dots) and print it (regardless how long/deep is your path) and without any need of changing your current position on file system.

I really hope, I've helped.

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I suggest sticking with basename.

ls -1 /path/to/file/*.*.* | while read path
do
    basename "$path"
done

Its best to use while read rather than for path in $(ls /path/)* only because if your paths happen to have a space in them the for loop will segment the path.

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Actually, it's best to use a for loop: for path in /path/to/file/*.*.*.; do ... –  glenn jackman Feb 6 '13 at 12:19
    
But the for loop will break if the glob patterns have a space in them. –  zapatero Feb 6 '13 at 17:28
    
It will not: that's the magic of using a for loop to iterate over a glob pattern. If you did for file in $(ls), that will break on spaces. –  glenn jackman Feb 7 '13 at 0:45
    
Nice, but I found I needed to put quotes around the pathname, ls -1 "$1" | while read path to accommodate spaces. –  pbnelson Oct 24 '14 at 16:57

I used a variation on Zapatero's technique to capture the base file name in an environment variable. $1 is the command-line argument that, by definition in my script, is the full path to the filename in question.

Note that if the full path contains wildcards and returns multiple results, the basename variable will be set to the "last" matching filename, in whatever order ls returns them.

basename=$(ls -1 "$1" | while read path; do basename "$path"; done)
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Alternatively use the find command.

$> find /path/to/file -printf %f\\n\\r
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