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I have a directory, /original, that has hundreds of files. I have a script that will process files one at a time and delete the file so it's not executed again if the script gets interrupted. So, I need a bunch of soft links to the files on /original to /processing. Here's what I tried:

find /original -name "*.processme" -exec echo ln -s {} $(basename {}) \;

and got something like:

ln -s /original/1.processme /original/1.processme
ln -s /original/2.processme /original/2.processme
ln -s /original/3.processme /original/3.processme
...

I wanted something like:

ln -s /original/1.processme 1.processme
ln -s /original/2.processme 2.processme
ln -s /original/3.processme 3.processme
...

It appears that $(basename) is running before {} is converted. Is there a way to fix that? If not, how else could I reach my goal?

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basename is run only once; see for an explanation stackoverflow.com/questions/4793892/… –  larsmans Feb 1 '11 at 15:43

4 Answers 4

find /original -name '*.processme' -exec echo ln -s {} . \;

Special thanks to Ryan Oberoi for helping me realize that I can use a . instead of $(basename ...).

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Should be '*.processme' (single quotes) so that you do not match any files left over in the current directory. –  mark4o Feb 1 '11 at 15:58
    
good catch. I changed it. –  User1 Feb 1 '11 at 16:28

How about -

ln -s $(echo /original/*.processme) .
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It works, but it may overflow as I get more files. –  User1 Feb 1 '11 at 15:51

You can also use cp (specifically the -s option, which creates symlinks), eg.

find /original -name "*.processme" -print0 | xargs -0 cp -s --target-directory=.
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awesome, just awesome, thank you! –  brakertech Jan 22 '14 at 14:48

Give this a try:

find /original -name "*.processme" -exec sh -c 'echo ln -s "$@" $(basename "$@")' _ {} \;
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