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I have a text file that's about 300KB in size. I want to remove all lines from this file that begin with the letter "P". This is what I've been using:

> cat file.txt | egrep -v P*

That isn't outputting to console. I can use cat on the file without another other commands and it prints out fine. My final intention being to:

> cat file.txt | egrep -v P* > new.txt

No error appears, it just doesn't print anything out and if I run the 2nd command, new.txt is empty. I should say I'm running Windows 7 with Cygwin installed.

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Why do you need egrep? Is P an extended regex? –  devnull Jun 20 '13 at 8:49
    
qnd: Regex is wrong. P* says "match any number (even 0) of P" so it matches every single line. –  doubleDown Jun 20 '13 at 9:08

5 Answers 5

up vote 6 down vote accepted

Explanation

  1. use ^ to anchor your pattern to the beginning of the line ;
  2. delete lines matching the pattern using sed and the d flag.

Solution #1

cat file.txt | sed '/^P/d'

Better solution

Use sed-only:

sed '/^P/d' file.txt > new.txt
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sed -i '/^P/d' file.txt ... works as well –  MeJ Mar 10 at 13:03
    
@MeJ yep but I prefer to remove flag that can be of destructive nature as people sometimes copy/paste command –  Édouard Lopez Mar 10 at 15:39

With awk:

awk '!/^P/' file.txt

Explanation

  1. The condition starts with an ! (negation), that negates the following pattern ;
    • /^P/ means "match all lines starting with a capital P",
  2. So, the pattern is negated to "ignore lines starting with a capital P".
  3. Finally, it leverage awk's behavior when { … } (action block) is missing, that is to print the record validating the condition.

So, to rephrase, it ignores lines starting with a capital P and print everything else.

Note

sed is line oriented and awk column oriented. For your case you should use the first one, see Edouard Lopez's reponse.

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This works:

cat file.txt | egrep -v -e '^P'

-e indicates expression.

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Use start of line mark and quotes:

 cat file.txt | egrep -v '^P.*'

P* means P zero or more times so together with -v gives you no lines

^P.* means start of line, then P, and any char zero or more times

Quoting is needed to prevent shell expansion.

This can be shortened to

egrep -v ^P file.txt

because .* is not needed, therefore quoting is not needed and egrep can read data from file.

As we don't use extended regular expressions grep will also work fine

grep -v ^P file.txt

Finally

grep -v ^P file.txt > new.txt
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5  
Note that it is not necessary to use cat file | egrep ..., this is better: egrep .... file. –  fedorqui Jun 20 '13 at 9:17
2  
The .* is superfluous as well. Drop that, and you don't even need to quote. Just use grep -v ^P "${old_file}" > "${new_file}". –  Adrian Frühwirth Jun 20 '13 at 9:22
    
This will make a complete answer now. –  Grzegorz Żur Jun 20 '13 at 9:46

Use sed with inplace substitution (for GNU sed, will also for your cygwin)

sed -i '/^P/d' file.txt

BSD (Mac) sed

sed -i '' '/^P/d' file.txt
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2  
I do not recommend inplace replacement as it might lead to data-loss. Especially on wide-public site such as SO. –  Édouard Lopez Jun 20 '13 at 9:18
2  
@EdouardLopez Just use sed -i .bak -e '/^P/d' file.txt to create a backup copy –  l0b0 Jun 20 '13 at 9:23
    
@l0b0 yep, but it should be avoided when noobs are the target audience –  Édouard Lopez Jun 20 '13 at 9:25
    
Noobs will make sed '/^P/d' file.txt > file.txt which is even worse :)) –  bartimar Jun 20 '13 at 14:04

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