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ls -lrt | awk ' !/dly/ { print $NF } ' | awk ' /000001.txt.gz/ { print } '

I want to display the file names which matches following condition: 1)Should not contain "dly" keyword. 2)Should contain "000001.txt.gz" keyword.

I used the above command. Is it possible to combine 2 pipes I used ?

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1  
Side note. Did you mean . or \.? –  lc. Oct 23 '12 at 14:53
    
Good call. $5 says it's \. –  doubleDown Oct 23 '12 at 14:56

3 Answers 3

up vote 1 down vote accepted
ls -lrt | awk ' !/dly/ && $NF~/000001.txt.gz/ { print $NF }'
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This doesn't use awk, but it does reduce the number of pipes.

find -name "*dly*" -o -name "*000001.txt.gz*" -exec basename {} \;

Edit: Added changes suggested by Zack (for GNU find)

find -maxdepth 1 -name "*dly*" -o -name "*000001.txt.gz*" -printf '%f\n'
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If I read the OP correctly, I think that should be find \! -name "*dly*" .... –  twalberg Oct 23 '12 at 15:06
    
@twalberg: the find command I wrote works, give it a try –  doubleDown Oct 23 '12 at 15:17
    
Ah, yes, my bad - I occasionally forget find doesn't follow the "expected" associativity and precedence rules. –  twalberg Oct 23 '12 at 15:30
2  
If you have GNU find, you can replace -exec basename {} \; with -printf '%f\n' Also, for a precise match to the original, there should be a -maxdepth 1 in there somewhere. –  Zack Oct 23 '12 at 17:18

You can combine conditions in awk mostly as if they were C expressions, so

ls -lrt | awk '/000001\.txt\.gz/ && !/dly/ { print $NF }'

should work. (Not tested at all.) However, if you want efficiency and robustness against unusual things (such as spaces in your filenames), then you should do it this way instead:

ls -1rt | awk '/000001\.txt\.gz/ && !/dly/ { print }'

which will be reliable as long as you don't have newlines in your file names. (The only byte values — not characters; the kernel is ignorant of character encoding — that cannot appear in a pathname component are 0x2F and 0x00, but you generally don't have to worry about that unless you're writing a script that has to handle malicious file names.) Another alternative is to reach for a more powerful language that can do opendir:

perl -le 'opendir(my $dh, ".") or die;
          print for sort grep { /00001\.txt\.gz/ && !/dly/ } readdir $dh'

or more concisely (but less efficiently)

perl -le 'print for sort grep { /00001\.txt\.gz/ && !/dly/ } glob("*")'

This doesn't sort the way ls -rt does, though. I don't remember how you do that in Perl.

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1  
I guess it could fail if the file name had spaces. Or if file name is 000001ptxt1gz. Or if the owner of the file has dly in its name. Perhaps ls | awk '/000001\.txt\.gz/ && !/dly/ { print $0 }' is more accurate. –  Birei Oct 23 '12 at 14:28
    
Well, really the way to do this is without using ls at all (see edit). Good point about the dots and the spaces, though. –  Zack Oct 23 '12 at 15:03
    
I like the perl one. Now it deserves the +1 –  Birei Oct 23 '12 at 15:26

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