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i have a directory listing like

seascaperecovered0088crop.jpg 
seascaperecovered0096crop.jpg
seascaperecovered0098crop.jpg
seascaperecovered0101crop.jpg
seascaperecovered0103crop.jpg
seascaperecovered0105crop.jpg
seascaperecovered0107crop.jpg
seascaperecovered0112crop.jpg
seascaperecovered0119crop.jpg
seascaperecovered0122crop.jpg

and i want to rename all files as seen here:

seascape_0122.jpg

i have tried something like this:

for f in `ls | egrep 'seascaperecovered.*\.jpg'`; 
do mv $f ${f/seascaperecovered/seascape}; 
done

i have read that you can do this with mv, rename, sed, awk, etc. can someone point me to the easiest (and clearest, hopefully) way of accomplishing this in UNIX? FWIW, I am ssh'd into a Linux machine and running a bash shell.

thanks, jml

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i would also be interested in why my example wouldn't work. i get a number of errors like: "mv: cannot stat `\033[33mseascaperecovered0088crop.jpg\033[0m': No such file or directory" –  jml Aug 16 '11 at 23:57
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2 Answers

up vote 5 down vote accepted

Very straightforward:

for i in seascaperecovered*.jpg; do A=${i/crop/}; mv $i ${A/recovered/_}; done

(Put echo before the mv first for a dry run.)

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nice! what about removing the "crop" bit? should i pipe again? –  jml Aug 16 '11 at 23:59
    
haha- beat me to it. :) –  jml Aug 17 '11 at 0:00
    
Sneaky, I almost noticed that too late :-) –  Kerrek SB Aug 17 '11 at 0:00
    
thank you so much. –  jml Aug 17 '11 at 0:03
    
No prob. I do this sort of stuff pretty regularly, and I'm always so happy I have a Bash in Windows; I really couldn't imagine life without one! –  Kerrek SB Aug 17 '11 at 0:05
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With bash regular expressions

for file in *; do 
  [[ "$file" =~ [0-9]+ ]] && mv "$file" seascape_${BASH_REMATCH[0]}.jpg 
done
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