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I have a folder with a fair amount of subfolders. In some of the subfolders do I have a folder.jpg picture. What I try to do find that folder(s) and copy it to all other subfolders that got the same artist and album information then continue on to the next album etc.

The structure of all the folders are "artist - year - album - [encoding information]". I have made a really simple one liner that find the folders that got the file but there am I stuck.

ls -F | grep / | while read folders;do find "$folders" -name folder.jpg; done

Anyone have any good tip or ideas how to solve this or pointers how to proceed?

Edit:

First of all, i´m real new to this (like you cant tell) so please have patience.

Ok, let me break it down even more.

I have a folder structure that looks like this:

artist1 - year - album - [flac]
artist1 - year - album - [mp3]
artist1 - year - album - [AAC]
artist2 - year - album - [flac]
etc

I like to loop over the set of folders that have the same artist and album information and look for a folder.jpg file. When I find that file do I like to copy it to all of the other folders in the same set.

Ex if I find one folder.jpg in artist1 - year - album - [flac] folder do I like to have that folder.jpg copied to artist1 - year - album - [mp3] & artist1 - year - album - [AAC] but not to artist2 - year - album - [flac].

The continue the loop until all the sets been processed. I really hope that makes it a bit more easy to understand what I try to do :)

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Is there always only one subfolder with folder.jpg? What should be happen if there are more than one folder.jpg? Do you wan't to keep originals or don't care? –  Cougar Nov 16 '11 at 21:18
    
There can be more then one folder.jpg but I dont care to keep any 'originals' as long as the one writing over it are from the same 'set' (artist - album). The importance/idea of the script is that not the wrong folder.jpg gets copied to the wrong folder set and that all folders get a copy of the correct folder.jpg. Does that make any sense? –  Franko Nov 16 '11 at 21:33
    
Wouldn't simple find . -name folder.jpg be enough? Seems to me that you complicate things... Also, an example of "having these and these folders, while these have folders.jpg and others don't, I want .... to happen" would be nice, since I don't understand what you really want to. –  herby Nov 16 '11 at 21:36
    
Thank you for the feedback. I have updated the original post with some more information, hope that will help some :) –  Franko Nov 16 '11 at 21:54
    
You could use the cut command to extract the common part of the directory name. –  BitSchupser Nov 16 '11 at 22:02

2 Answers 2

IFS='
'
FLDRS=`find . -name folder.jpg | grep -v ./folder.jpg | sed -e 's@/folder\.jpg$@@`
for F in $FLDRS; do
  NOENC=`echo "$F" | sed -e 's/\[.*$//'`
  for DST in "$NOENC*"; do
    if [ -d "$DST" -a ! -f "$DST/folder.jpg" ]; then
      cp "$F/folder.jpg" "$DST"
    fi
  done
done

It is inefficient for sets which contain folder.jpg in all encondings already, but unless there is an error it should do the work.

share|improve this answer
    
wow. ty! Will give it a test and see how it works out. –  Franko Nov 16 '11 at 22:30
    
If it won't I hope you can fix it yourself - it's small enough to understand it. –  herby Nov 16 '11 at 22:39
    
J.F.Sebastian - the example did not show such possibility :-) and I think it would be crazy organization to have them scattered over. Franko knows if it can happen or same album dirs are guaranteed to be siblings. –  herby Nov 16 '11 at 22:40
    
How does it work for folders with spaces in their name? –  J.F. Sebastian Nov 16 '11 at 22:41
    
IFS takes care of it, along with quoting every variable-containing file name. –  herby Nov 16 '11 at 22:42
up vote 1 down vote accepted

I know its not the most efficient or correct code, but this did the job for me and I got the correct folder.jpg in the right folders.

IFS='
'

source=( `find . -name folder.jpg |  sed 's/^..//' | sort -u` )
   for s in ${source[@]}
        do

          fullname=(`echo $s | cut -d'/' -f1 | sort -u`)
          checkname=`echo $fullname | cut -d'[' -f1 | sort -u`
          match=( `find . -name "$checkname*" | sed 's/^..//' | sort -u` )

             for a in ${match[@]}
                do
                    if [[ "$a" == "$fullname" ]];
                    then
                        echo $a 'not copied'
                    else
                        echo $a
                        #echo $match '*M*'
                        cp $s "$a/folder.jpg"

                    fi    
                done


    done
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