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I have many files named 001ac.jpg 002ae.jpg 003.ag.jpg ... 012gf.jpg I need to change them to 001.jpg 002.jpg 003.jpg 004.jpg....012.jpg

i have some solutions now, but i think they are wired too. So any other good solutions?

now i have this:

#!/bin/sh    
rename .jpg .89 *    
for i in {a..z}    do
rename $i '' *.jpg
rename $i '' *.jpg    
 done    
rename .89 .jpg *

and this:

  1 #!/bin/bash
  2
  3 for i in `find . -name "*.jpg"`
  4     do
  5         j=${i:0:5}
  6         echo $j
  7         mv $i $j.jpg
  8 done
share|improve this question

3 Answers 3

up vote 0 down vote accepted

You're almost there, I would use your loop to explcitily remove just the chars from the filename, i.e.

#!/bin/bash

for i in $( find . -name "*.jpg") ;do
      new=$(echo "$i" | sed 's/[A-Za-z\.][A-Za-z\.]*//g')           
      echo $new
      echo mv $i $new.jpg
done

Remove the echo in front of mv when you are satisfied this is working as needed. Any spaces in filenames will mess things up, might want to add -printf0 at the end of your fine command.

Also, Don't use backquotes for cmd-substitution. They've been deprecated at least since 1995 ;-)

I hope this helps.

share|improve this answer
    
I think it's lack of another [A-Za-z\.] in sed. Isn't it? If you use just two ,it can be zero with *. –  apporc Nov 17 '11 at 8:32
    
Hmmm I not sure of your point. Yes, only /[A-Za-z\.]*/ can be a zero length match and is useless. That is why I put 2 series of [A-ZA-Z\.] in the sed match pattern. Did either of these solutions work for you? If so please accept an answer. Good luck. –  shellter Nov 17 '11 at 16:01

This might work for you:

 find . -name "*.jpg" | 
 sed -n  's|^\(\./[0-9]\+\)\([^0-9]\+\)\(\.jpg\)$|mv -v & \1\3|p' | sh
share|improve this answer
    
I like this solution. –  apporc Nov 20 '11 at 13:39

I don't quite comprehend the first solution. I don't know of a rename command.

The second solution might be good if you can guarantee the exact format of the name, but why do you have the length as 5 in ${i:0:5} instead of 3? The examples you gave all have a number length of 3 digits. And, if you're doing a find, you shouldn't put it in a for loop. Just pipe it into a a read:

find . -name "*.jpg" | while read $name
do
    newName=${name:0:3}
    mv $name $newName.jpg
done

Here's another possible solution. It simply loops through all of your numbers. The printf formats the number to be zero filled and three digits. The if makes sure the file exists before you try to rename it.

for number in {1..100}
do
   zf_number=$(printf "%03d", $number)   #Zero fill number
   if [ -e ${zf_number}* ]
   then 
       mv ${zf_number}* $zf_number.jpg
   fi
done

That will go sequentially through all the files in the directory and rename them. The printf zero fills the number to match the name on the files.


Because find gives filenames like this: ./001 ./002 ./003

You're right. However, you're probably better off removing the directory and basename of the file, then putting them back together. That way, you don't have issues if some of the files are in sub-directories.

find . -name "*.jpg" | while read $name
do
    dirname=$(dirname $name)
    basename=$(basename $name)
    newName=${basename:0:3}
    mv "$dirname/$basename" "$dirname/$newname.jpg"
done
share|improve this answer
    
Because find gives filenames like this: ./001 ./002 ./003 –  apporc Nov 17 '11 at 8:36
    
To zero-fill the number, you want printf "%03d" $number with no comma –  glenn jackman Nov 17 '11 at 13:53
    
@glenn jackman You're right. I forgot the zero in front. I'll edit and fix my post. –  David W. Nov 17 '11 at 20:43
    
@apporc - Okay, I see. You're right. However, you're probably better off separating the base and directory names, then putting them back together. See my edit. –  David W. Nov 17 '11 at 20:46

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