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Date:      Tue, 6 Mar 2007 08:53:49 -0800
From:      Gary Kline <kline@tao.thought.org>
To:        Derek Ragona <derek@computinginnovations.com>
Cc:        Gary Kline <kline@tao.thought.org>, FreeBSD Mailing List <freebsd-questions@freebsd.org>
Subject:   Re: awk question
Message-ID:  <20070306165349.GA67829@thought.org>
In-Reply-To: <6.0.0.22.2.20070306072709.02577448@mail.computinginnovations.com>
References:  <20070306003506.GA12553@thought.org> <6.0.0.22.2.20070306072709.02577448@mail.computinginnovations.com>
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On Tue, Mar 06, 2007 at 07:27:56AM -0600, Derek Ragona wrote:
> You can loop through them using a shell script:
> for i in `ls -lt | awk '{if ($8 == 2006) print $9}'`;do rm $i;done


	This is the safest way to rm or rm -i each file ($i); the 
	ls -ls | [awkstuff] spits out the entire list in one chunk.
	But since packages from 2006 were OLD, I just /bin/rm'd them
	wholesale.  Thanks,

	gary

> 
>         -Derek
> 
> 
> At 06:35 PM 3/5/2007, Gary Kline wrote:
> 
> >        Guys,
> >
> >        Having found $9 , how do I /bin/rm it (using system()--yes??)
> >        in an awk one-liner?
> >
> >        I'm trying to remove from packages from long ago and find and
> >        print them with
> >
> >        ls -lt | awk '{if ($8 == 2006) print $9}';
> >
> >        but what I want to remove the file pointed at by $9.  I've tried
> >        FILE=ARGV[9]; and using FILE within my system() call, but no-joy.
> >        What's the magic here?
> >
> >        thanks in advance,
> >
> >        gary
> >
> >
> >
> >--
> >  Gary Kline  kline@thought.org   www.thought.org  Public Service Unix
> >
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-- 
  Gary Kline  kline@thought.org   www.thought.org  Public Service Unix

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