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I want to understand the real power of pipe and redirection command.As per my understanding,| takes the output of one command result as the input of itself. And, > is helps in output redirecting .If it is so,

find . -name "*.swp" | rm 
find . -name "*.swp" > rm 

why this command is not working as expected .For me above command means

  1. Find the all files recursively whose extension is .swp in current directory .
  2. take the output of 1. and remove all whose resulted files .

FYI,yes i know how to accomplish this task . it can be done by passing -exec flag .

find . -name "*.swp"-exec rm -rf {} \;

But as I already mentioned,i want to accomplish it with > or | command.
If i was wrong and going in wrong direction,please correct me and explain redirection and pipe command. Where we use whose commands ? please dont mention simple book examples i read all whose thing . try to explain me some complicated thing .

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> is output redirection. < is input redirection. –  chepner Sep 12 '12 at 18:49
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You are getting stuck on the distinction between standard input and the command line. You want the $( ) operator in bash, or the -exec option of find, or (perhaps your best choice) xargs. No energy to write a real answer... –  dmckee Sep 12 '12 at 18:49
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4 Answers

up vote 4 down vote accepted

I'll break this down by the three methods you have shown:

  • > will redirect all output from find into a file named rm (will not work, because you're just appending to a file).
  • | will pipe output from find into the rm command (will not work, because rm does not read on stdin)
  • -exec rm -rf {} \; will run rm -rf on each item ({}) that find finds (will work, because it passes the files as argument to rm).

You will want to use -exec flag, or pipe into the xargs command (man xargs), not | or > in order to achieve the desired behavior.

EDIT: as @dmckee said, you can also use the $() operator for string interpolation, ie: rm -rf $(find . -name "*.swp") (this will fail if you have a large number of files, due to argument length limits).

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You can use also shell globbing (rm -rf **/*.swp) to achieve your stated (example) goal, but a bit outside the scope of the question (shell piping and redirection). –  neersighted Sep 12 '12 at 18:58
    
string interpolation is changing stdout into stdin , is it like that . –  Paritosh Piplewar Sep 12 '12 at 18:58
    
@Dear: No, it's not. You shell will see the $(), and substitute it with the output of the command in the $(), before starting the program. An example makes this clearer. If I have echo "foo$(echo 'bar')", the shell will substitute the $(), and will really execute echo "foobar". –  neersighted Sep 12 '12 at 18:59
    
thanks . Nice explanation . –  Paritosh Piplewar Sep 12 '12 at 19:02
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You should take some time and read about the basics of shell redirection again :) I think this is a good document: http://wiki.bash-hackers.org/howto/redirection_tutorial

I'll try to explain what went wrong for you:

find . -name "*.swp" | rm 

This command redirects the find results, i.e. the stdout of find, to the stdin of the program rm. However, rm does not read on stdin (this is something you can read in the documentation of rm). rm is controlled via command line arguments, not via stdin. I think there is no way to make rm read from stdin at all. That's why nothing is deleted.

find . -name "*.swp" > rm 

This command redirects newline-delimited find results (stdout of find) to a file called 'rm'. Again, nothing is deleted :)

Basically the <, >, >>, &>, &>> operators perform redirection from/to a file that actually exists in the file system. The pipe | redirects the standard output from one command to the standard input of another command. Simply spoken there are no files involved here. However, this approach only makes sense if the program to the left of the pipe actually writes something to stdout and the program to the right of the pipe reads from stdin and both programs understand each other, i.e. the reading program (the consumer) understands the output of the feeding program.

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> simply redirects to a file named rm. Piping via | to rm doesn't work because rm doesn't expect filenames via STDIN. So you have to use xargs, which passes values from STDIN as arguments:

find . -name "*.swp"|xargs rm

This is dangerous because the filename may contain characters your shell considers a field seperator ($IFS). So, you use:

find . -name "*.swp" -print0|xargs -0 rm

Which causes find print the filenames \0 sperated to STDOUT and xargs to read the filenames \0 seperated and pass them as arguments to rm.

Of course, the easiest way to achieve this would have been:

rm **/*.swp

assuming you use bash.

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+1 , thanks for explaining xargs. –  Paritosh Piplewar Sep 12 '12 at 19:04
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Redirection creates a file. So your >rm example just creates a file named ./rm into which the output of your command is saved.

Pipes are essentially a shorthand. one | two is like one >tmp; two <tmp except without the (explicit) temporary file.

Of course, rm doesn't read file names from standard input, so cmd | rm is basically useless (apart from situations where the pipeline continues with yet another command which does something with the input which rm didn't read). If you want that, there's xargs.

find . -name "*.swp" | xargs rm 
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