Try this

for file in `ls -1 *.jpg`; do name=`stat -c %y $file | awk -F"." '{ print $1 }' | sed -e "s/\-//g" -e "s/\://g" -e "s/[ ]/_/g"`.jpg; mv $file $name; done

Though there might be an easier way.

Naming based on file system date

In the linux shell:

for f in *.jpg
do
    mv -n "$f" "$(date -r "$f" +"%Y%m%d_%H%M%S").jpg"
done

Explanation:

• for f in *.jpg do

  This starts the loop over all jpeg files. A feature of this is that it will work with all file names, even ones with spaces, tabs or other difficult characters in the names.

• mv -n "$f" "$(date -r "$f" +"%Y%m%d_%H%M%S").jpg"

  This renames the file. It uses the -r option which tells date to display the date of the file rather than the current date. The specification +"%Y%m%d_%H%M%S" tells date to format it as you specified.

  The file name, $f, is placed in double quotes where ever it is used. This assures that odd file names will not cause errors.

  The -n option to mv tells move never to overwrite an existing file.

• done

  This completes the loop.

For interactive use, you may prefer that the command is all on one line. In that case, use:

for f in *.jpg; do mv -n "$f" "$(date -r "$f" +"%Y%m%d_%H%M%S").jpg"; done

Naming based on EXIF Create Date

To name the file based on the EXIF Create Date (instead of the file system date), we need exiftool or equivalent:

for f in *.jpg
do
    mv -n "$f" "$(exiftool -d "%Y%m%d_%H%M%S" -CreateDate "$f" | awk '{print $4".jpg"}')"
done

Explanation:

The above is quite similar to the commands for the file date but with the use of exiftool and awk to extract the EXIF image Create Date.

• The exiftool command provides the date in a format like:

  $ exiftool -d "%Y%m%d_%H%M%S"  -CreateDate sample.jpg
  Create Date                     : 20121027_181338
  

  The actual date that we want is the fourth field in the output.

• We pass the exiftool output to awk so that it can extract the field that we want:

  awk '{print $4".jpg"}'
  

  This selects the date field and also adds on the .jpg extension.