How do I rename multiple files by removing characters in bash?

Solution 1:

A simple for loop with a bit of sed will do the trick:

% touch xxxxx{foo,bar,baz}
% ls -l xxxxx{foo,bar,baz}
-rw-r--r--  1 jamesog  wheel  0 29 Dec 18:07 xxxxxbar
-rw-r--r--  1 jamesog  wheel  0 29 Dec 18:07 xxxxxbaz
-rw-r--r--  1 jamesog  wheel  0 29 Dec 18:07 xxxxxfoo  
% for file in xxxxx*; do mv $file $(echo $file | sed -e 's/^.....//'); done
% ls -l foo bar baz
-rw-r--r--  1 jamesog  wheel  0 29 Dec 18:07 bar
-rw-r--r--  1 jamesog  wheel  0 29 Dec 18:07 baz
-rw-r--r--  1 jamesog  wheel  0 29 Dec 18:07 foo

The substitute regex in sed says to match any five characters (. means any character) at the start of the string (^) and remove it.

Solution 2:

Bash has some amazing scripting possibilities. Here's one way:

for file in ??????*; do mv $file `echo $file | cut -c6-`; done

A handy way to test what it would do is to add an echo in front of the command:

for file in ??????*; do echo mv $file `echo $file | cut -c6-`; done

The six question marks ensure that you only attempt to do this to filenames longer than 5 characters.

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Solution 3:

All great answers, thanks. This is what worked in my case:

rename 's/^.......//g' *

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Solution 4:

You can use sed to do this

for file in * ; do mv $file  $(echo $file |sed 's/^.\{5\}//g'); done