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I remember seeing a unix command that would take lines from standard input and execute another command multiple times, with each line of input as the arguments. For the life of me I can't remember what the command was, but the syntax was something like this:

ls | multirun -r% rm %

In this case rm % was the command to run multiple times, and -r% was an option than means replace % with the input line (I don't remember what the real option was either, I'm just using -r as an example). The complete command would remove all files in the current by passing the name of each file in turn to rm (assuming, of course, that there are no directories in the current directory). What is the real name of multirun?

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1 Answer 1

up vote 2 down vote accepted

The command is called 'xargs' :-) and you can run it as following

ls | xargs echo I would love to rm -f the files

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Thanks! The correct full command would be ls | xargs -I% rm % –  Lorkenpeist Jun 7 '13 at 22:35
    
no need for %s in there... I don't think... man 1 xargs should give you the exact flavour on your system –  Ahmed Masud Jun 7 '13 at 22:37
    
Yes you're right, ls | xargs rm would do in this case, I guess when I saw the command before it was more complicated and only part of the arguments were given from standard in, so the -I% was necessary –  Lorkenpeist Jun 7 '13 at 22:40
    
Hmm, after some experimentation it looks like ls | xargs cmd is equivalent to cmd a b c (where a-c are the files in the current directory), whereas xargs -I% cmd % is equivalent to cmd a;cmd b;cmd c. –  Lorkenpeist Jun 7 '13 at 22:47
    
%x is a bad choice here, since it is expanded by the shell ( at least korn and bash shells, IIRC). Tip: avoid %. –  wildplasser Jun 7 '13 at 22:49

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