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Hi have a bunch of folders with one zip file in it the paths look like this

/folder/subfolder/archive.zip
/folder/subfolder1/archive1.zip
/folder/subfolder2/archive2.zip
/folder/subfolder3/zip3.zip
/folder/subfolder4/zip4.zip
etc...

I need the out put to be like this

/folder/subfolder/preview.zip
/folder/subfolder1/preview.zip
/folder/subfolder2/preview.zip
/folder/subfolder3/preview.zip
/folder/subfolder4/preview.zip
etc...

Each folder also only has one zip in it so i don't have to work about overwriting and what not i just need each zip in each folder renamed to preview.zip no matter the name in each subdirectory how can i do that in bash?

Thank you for any help

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4 Answers 4

up vote 4 down vote accepted

Something like this should do the job:

for j in **/*.zip; do mv "$j" "${j%/*.zip}/preview.zip"; done

As pointed out by SiegeX, note that to use recursive globbing you've got to set the globstar option and that is only available in bash 4.x

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2  
+1 for using pure bash code and not using find here. –  anubhava Jan 18 '12 at 8:42
    
perfect thanks a ton! –  user577732 Jan 18 '12 at 8:47
1  
Don't forget to mention that this wont work on many implementations, because it's a Bash 4.X only feature, also you didn't say anything about enabling globstar –  SiegeX Jan 18 '12 at 8:47
    
How does this cope with whitespace in filenames? –  Johnsyweb Jan 18 '12 at 8:53
    
@Johnsyweb poorly, because he didn't quote his variables –  SiegeX Jan 18 '12 at 8:57

You can do this with Bash's parameter substitution:

bash-3.2$ for archive in folder/subfolder*/*.zip; do
    echo "Archive = ${archive}, Preview = ${archive%/*}/preview.zip"
done
Archive = folder/subfolder/archive.zip, Preview = folder/subfolder/preview.zip
Archive = folder/subfolder1/archive1.zip, Preview = folder/subfolder1/preview.zip
Archive = folder/subfolder2/archive2.zip, Preview = folder/subfolder2/preview.zip
Archive = folder/subfolder3/zip3.zip, Preview = folder/subfolder3/preview.zip
Archive = folder/subfolder4/zip4.zip, Preview = folder/subfolder4/preview.zip

Where ${archive%/*} will strip off everything from the last / in ${archive}.

This will allow you to verify the command that will run. Change this to:

mv "${archive}" "${archive%/*}/preview.zip" 

... to rename the files (even if they have whitespace in their names).

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1  
he doesn't want the output files numbered. Just preview.zip –  SiegeX Jan 18 '12 at 8:46
    
@SiegeX: Thanks, fixed. –  Johnsyweb Jan 18 '12 at 8:52
    
@SiegeX: I don't think this answer deserves a downvote. It was tested using GNU bash, version 3.2.48(1)-release (x86_64-apple-darwin11) and no ~/.bashrc. –  Johnsyweb Jan 18 '12 at 8:57
1  
@SiegeX Looks like you are in no mood to take bad answers in bash tonight. :) –  jaypal singh Jan 18 '12 at 9:10
1  
+1. I've liked all the answers in this post. Every answer has offered so much to learn. @SiegeX If you don't mind, can you please add the info you have shared about globstar in your answer, I am sure everyone would appreciate that information and would be worthy of an up-vote. At least one from me right away. –  jaypal singh Jan 18 '12 at 9:19

This might work for you, but it's not fully tested:

find /folder -maxdepth 1 -mindepth 1 -type d -exec mv {}/archive*.zip {}/preview.zip \;

Working very strictly under your example, this should find all directories under /folder, with a maximum and minimum depth of 1 (i.e. only directories within /folder, since that seems to be what you want) and executes a mv command for a file under each.

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This isn't going to work. It's going to try to move the archive*.zip files into a directory named <something>/preview.zip –  SiegeX Jan 18 '12 at 8:45
1  
@SiegeX, it seems to work for me, with a basic test, minus the *. It looks like find doesn't want to pass that along as anything other than a literal *. –  Dan Fego Jan 18 '12 at 8:53
    
@SiegeX: This looks good to me. –  Johnsyweb Jan 18 '12 at 8:57
    
@Johnsyweb It def doesn't work if you try it, at least not for multiple files under the same directory that start with archive. As Dan pointed out, it doesn't work as written with the *, but even if the shell did expand * prior to being -exec it would be no different than issuing the following command: mv /foo/archive1.zip /foo/archive2.zip /foo/archive3.zip foo/preview.zip. Since mv uses the last argument as it's destination, it would try to do exactly what I said in my first comment, i.e. move three files into a directory called /foo/archive.zip –  SiegeX Jan 18 '12 at 9:25
    
@SiegeX, for what it's worth, OP said specifically "Each folder also only has one zip in it so i don't have to work about overwriting and what not," so that part isn't a problem for this specific case. But the asterisks are. –  Dan Fego Jan 18 '12 at 15:38
#!/bin/bash
while read file; do
  echo mv "$file" "${file%/*}/preview.zip"
done < <(find /folder -type f -name "archive*.zip")

Note: Remove the echo if the output looks sufficient and rerun the script to make the actual changes

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Do we need -print0 to handle filename with spaces in this case? Or will it work regardless? –  jaypal singh Jan 18 '12 at 9:28
1  
@JaypalSingh Yes. To be completely immune to files with spaces in their name, or even files with other nasties like newlines the best approach would be to add -print0 to the end of find and also use while IFS= read -r -d '' file; do ... I was a bit lazy about it with this one since the file names he wants to target are both known and well formed. The best solution is the Bash 4.X version with globstar since you don't have to worry about all this stuff; but...you severely limit your audience since Bash 3.X has a much larger install base –  SiegeX Jan 18 '12 at 9:39
    
Thanks @SiegeX. –  jaypal singh Jan 18 '12 at 14:26

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