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This should be an absurdly easy task: I want to take each line of the stdout of any old command, and use each to execute another command with it as an argument.

For example:

ls | grep foo | applycommand 'mv %s bar/'

Where this would take everything matching "foo" and move it to the bar/ directory.

(I feel a bit embarrassed asking for what is probably a ridiculously obvious solution.)

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In case your filenames have spaces in them: mywiki.wooledge.org/BashFAQ/020 –  Dennis Williamson Mar 4 '10 at 1:33
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3 Answers

up vote 6 down vote accepted

That program is called xargs.

ls | grep foo | xargs -I %s mv %s bar/
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xargs also lets you insert arguments in the middle of the command by specifying a substitution string. i.e. xargs -I FILE mv FILE bar/ –  Martin Mar 4 '10 at 1:28
    
@Martin: Thanks, I learnt something new! Will update my answer accordingly. –  Chris Jester-Young Mar 4 '10 at 1:38
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also mv has a --target option. so just: | xargs mv --target=bar/ –  pixelbeat Mar 4 '10 at 10:33
    
@pixelbeat: Thanks! I was trying to model my answer after what the OP wanted (with %s and all), but obviously in this case, your solution is even better. –  Chris Jester-Young Mar 4 '10 at 17:23
    
this doesn't execute a command for each line of stdin. It just bundles it together in one shot. The OP mentions this case only as an example. :\ –  Karthick Dec 7 '13 at 1:50
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ls | grep foo | while read FILE; do mv "$FILE" bar/; done

This particular operation could be done more simply, though:

mv *foo* bar/

Or for a recursive solution:

find -name '*foo*' -exec mv {} bar/ \;

In the find command {} will be replaced by the list of files that match.

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Almost right: when doing -exec ... +, the {} must immediately precede the +. You can use the ; form though: -exec mv {} bar/ ';'. –  Chris Jester-Young Mar 4 '10 at 1:25
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for your case, do it simply like this.

for file in *foo*
do
   if [ -f "$file" ];then
      mv "$file" /destination
   fi
done

OR just mv it if you don't care about directories or files

mv *foo* /destination
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