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I am looking for a perl command where lines starting with a string are printed. For example, if I wanted to print all lines starting with "1234", what would that command look like? Sed? Awk? Grep?

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closed as not a real question by Wooble, andrewsi, amon, DavidO, TLP Sep 24 '12 at 17:55

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3 Answers 3

perl -ne 'print if /^1234/' 

or

sed -ne '/^1234/p'

or

awk '/^1234/'

or

grep '^1234'

or

ruby -ne 'print if /^1234/'

or even

python -c 'import fileinput;print "\n".join([l for l in fileinput.input() if l.startswith("1234")])'
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Thank you, Mark! –  user1694958 Sep 24 '12 at 17:14
3  
oh, python is so-o-o-o beautiful –  gaussblurinc Sep 24 '12 at 20:52
    
python -c 'import sys; [sys.stdout.write(l) for l in sys.stdin if l.startswith("1234")]' -- maybe slightly less pathological, but clearly Python is not meant to replace grep :) –  Eevee Sep 27 '12 at 21:36
    
Thanks for the improvement, @Eevee. Of course using sys.stdin doesn't let you specify a list of files at the end of the command line the way the rest of the entries in my answer do... :) But yes, this is definitely not Python's niche. –  Mark Reed Sep 27 '12 at 21:39
    
That's why man invented <. –  Eevee Sep 27 '12 at 21:42
perl -ne'print if /^1234/' file

But most people would use grep.

grep ^1234 file

Or on Windows

findstr /r ^1234 file
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For completion:

sed -ne '/^1234/p' somefile
awk '/^1234/{print}' somefile
grep '^1234' somefile
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1  
{print} is the default action for awk, so you all you need is the /^1234/ part. –  Mark Reed Sep 24 '12 at 22:11

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