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Can someone show me to use xargs properly? Or if not xargs, what unix command should I use?

I basically want to input more than (1) file name for input <localfile>, third input parameter.

For example:

1. use `find` to get list of files
2. use each filename as input to shell script

Usage of shell script:

test.sh <localdir> <localfile> <projectname>

My attempt, but not working:

find /share1/test -name '*.dat' | xargs ./test.sh /staging/data/project/ '{}' projectZ \;

Edit: After some input from everybody and trying -exec, I am finding that my <localfile> filename input with find is also giving me the full path. /path/filename.dat instead of filename.dat. Is there a way to get the basename from find? I think this will have to be a separate question.

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4 Answers 4

up vote 4 down vote accepted

I'd just use find -exec here:

% find /share1/test -name '*.dat' -exec ./test.sh /staging/data/project/ {} projectZ \;

This will invoke ./test.sh with your three arguments once for each .dat file under /share1/test.

xargs would pack up all of these filenames and pass them into one invocation of ./test.sh, which doesn't look like your desired behaviour.

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its close. i'm still having problems running it. what i think is happening is find is now giving me the file name and the path /path/filename.dat and I just need the basename only. –  jdamae Aug 30 '11 at 21:41
    
@jdamae: If ./test.sh requires basenames, then it should be changed to call basename. You may be able to do -exec ./test.sh /staging/data/project/ $(basename {}) projectZ \; otherwise (untested). –  Johnsyweb Aug 30 '11 at 21:53
1  
this basically answers my question. thank you. i think i have to post another question on extracting only the basename of the output from find. –  jdamae Aug 30 '11 at 21:54

If you want to execute the shell script for each file (as opposed to execute in only once on the whole list of files), you may want to use find -exec:

find /share1/test -name '*.dat' -exec ./test.sh /staging/data/project/ '{}' projectZ \;

Remember:

  • find -exec is for when you want to run a command on one file, for each file.
  • xargs instead runs a command only once, using all the files as arguments.
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Thanks for clarifying use between the each cmd. –  jdamae Aug 30 '11 at 21:48
    
@jdamae: this is not forced behavior of xargs, I'm writing a proper answer with the correct xargs options. –  TechZilla Jan 15 '13 at 15:14

xargs stuffs as many files as it can onto the end of the command line. Do you want to execute the script on one file at a time or all files? For one at a time, use file's exec, which it looks like you're already using the syntax for, and which xargs doesn't use:

find /share1/test -name '*.dat' -exec ./test.sh /staging/data/project/ '{}' projectZ \;
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execute one at a time. thanks for your reply. I edited my question as I started to test exec. –  jdamae Aug 30 '11 at 21:47

xargs does not have to combine arguments, it's just the default behavior. this properly uses xargs, to execute the commands, as intended.

find /share1/test -name '*.dat' -print0 | xargs -0 -I'{}' ./test.sh /staging/data/project/ '{}' projectZ

When piping find to xargs, NULL termination is usually preferred, I recommend appending the -print0 option to find. After which you must add -0 to xargs, so it will expect NULL terminated arguments. This ensures proper handling of filenames. It's not POSIX proper, but considered well supported. You can always drop the NULL terminating options, if your commands lack support.

Remeber while find's purpose is finding files, xargs is much more generic. I often use xargs to process non-filename arguments.

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