101

This question already has an answer here:

Write a simple script that will automatically rename a number of files. As an example we want the file *001.jpg renamed to user defined string + 001.jpg (ex: MyVacation20110725_001.jpg) The usage for this script is to get the digital camera photos to have file names that make some sense.

I need to write a shell script for this. Can someone suggest how to begin?

marked as duplicate by tripleee shell Aug 31 '17 at 7:12

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168

An example to help you get off the ground.

for f in *.jpg; do mv "$f" "$(echo "$f" | sed s/IMG/VACATION/)"; done

In this example, I am assuming that all your image files begin with "IMG" and you want to replace "IMG" with "VACATION".

The shell automatically evaluates *.jpg to all the matching files.

The second argument of mv (the new name of the file) is the output of the sed command that is replacing "IMG" with "VACATION".

If your filenames include multiple consecutive spaces pay extra careful attention to the "$f" notation. You need the double-quotes to preserve such spaces.

  • 5
    With bash, you can also redirect from a string: sed 's/foo/bar/' <<< "$f" – glenn jackman Jul 27 '11 at 11:08
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    Excellent example Susam--this usage also worked for me in MingW to change files named *-1.0-SNAPSHOT.war to *.war, like this: for i in *.war; do mv ${i} `echo ${i} | sed 's/-1.0-SNAPSHOT\.war/\.war/'`; done – mikequentel Jul 9 '15 at 16:03
  • just to add to this.. you can also use wild card, say for example there is a bunch of files with IMGnnnn.jpg where n is a bunch of nunbers; then you could do something like s/IMG.*/VACATION\\.jpg/ – Ahdee Aug 30 '17 at 15:54
138

You can use rename utility to rename multiple files by a pattern. For example following command will prepend string MyVacation2011_ to all the files with jpg extension.

rename 's/^/MyVacation2011_/g' *.jpg

or

rename <pattern> <replacement> <file-list>
  • 4
    This should be the accepted answer. The solution is so much more simple then in other answers. – jutky Dec 29 '14 at 7:03
  • But there must be variants of this commands, rename is just like mv on my RedHat 6.5 – ixe013 Apr 3 '15 at 21:29
  • This didn't work for me, because I had too many files: -bash: /usr/bin/rename: Argument list too long. But I agree it's nice if you have a smaller list – TM. Nov 21 '15 at 17:50
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    @ixe013 This rename is perl version, not built-in utility. Follow the guide at stackoverflow.com/questions/22577767/… to install. – 林果皞 Mar 23 '16 at 16:32
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    The "Argument list too long" problem can be circumvented by use of find: find . -name *.jpg -exec rename <pattern> <replacement> {} \; This will call rename once per file. – Erik Forsberg Nov 22 '16 at 12:26
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for file in *.jpg ; do mv $file ${file//IMG/myVacation} ; done

Again assuming that all your image files have the string "IMG" and you want to replace "IMG" with "myVacation".

With bash you can directly convert the string with parameter expansion.

Example: if the file is IMG_327.jpg, the mv command will be executed as if you do mv IMG_327.jpg myVacation_327.jpg. And this will be done for each file found in the directory matching *.jpg.

IMG_001.jpg -> myVacation_001.jpg
IMG_002.jpg -> myVacation_002.jpg
IMG_1023.jpg -> myVacation_1023.jpg
etcetera...

  • this is best answer ever, and works fantastic on linux/mac ! thanks – To Kra Jan 5 '17 at 10:01
16

this example, I am assuming that all your image files begin with "IMG" and you want to replace "IMG" with "VACATION"

solution : first identified all jpg files and then replace keyword

find . -name '*jpg' -exec bash -c 'echo mv $0 ${0/IMG/VACATION}' {} \; 
  • 1
    Best answer as it allow traversal of the directory trees, uses built-in bash utilities and is easily configurable. Also, the example gives the non-destructive test to make sure the changes are correct. – Dan Mergens Jan 15 '18 at 21:16
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    Just a note here... pretty obvious but worth statting: the 'echo mv $0 ${0/IMG/VACATION}' portion is the actual command that will be ran against each file found. So, if you leave the echo there, it will only echo what it would do. Remove the echo command to actually move the files eg. find . -name '*jpg' -exec bash -c 'mv $0 ${0/IMG/VACATION}' {} \; – dmmd May 9 '18 at 23:55
  • Kudos for including echo so users know if it will work or not – Tung Mar 21 at 8:00
2

Another option is:

for i in *001.jpg
do
  echo "mv $i yourstring${i#*001.jpg}"
done

remove echo after you have it right.

Parameter substitution with # will keep only the last part, so you can change its name.

1

You can try this:

for file in *.jpg;
do
  mv $file $somestring_${file:((-7))}
done

You can see "parameter expansion" in man bash to understand the above better.

1
find . -type f | 
sed -n "s/\(.*\)factory\.py$/& \1service\.py/p" | 
xargs -p -n 2 mv

eg will rename all files in the cwd with names ending in "factory.py" to be replaced with names ending in "service.py"

explanation:

1) in the sed cmd, the -n flag will suppress normal behavior of echoing input to output after the s/// command is applied, and the p option on s/// will force writing to output if a substitution is made. since a sub will only be made on match, sed will only have output for files ending in "factory.py"

2) in the s/// replacement string, we use "& " to interpolate the entire matching string, followed by a space character, into the replacement. because of this, it's vital that our RE matches the entire filename. after the space char, we use "\1service.py" to interpolate the string we gulped before "factory.py", followed by "service.py", replacing it. So for more complex transformations youll have to change the args to s/// (with an re still matching the entire filename)

example output:

foo_factory.py foo_service.py
bar_factory.py bar_service.py

3) we use xargs with -n 2 to consume the output of sed 2 delimited strings at a time, passing these to mv (i also put the -p option in there so you can feel safe when running this). voila.

0

Can't comment on Susam Pal's answer but if you're dealing with spaces, I'd surround with quotes:

for f in *.jpg; do mv "$f" "`echo $f | sed s/\ /\-/g`"; done;

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