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I'm trying to remove the first three columns (of which I'm not interested in) from a DbgView log file. I can't seem to find an example that prints from column 3 onwards until the end of the line. Note that each line has variable number of columns.

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Downvoted for accepting an answer that doesn't use awk. Please remove "awk" from the question. –  danorton Oct 16 '13 at 19:15

12 Answers 12

up vote 28 down vote accepted

...or a simpler solution: cut -f 3- INPUTFILE just add the correct delimiter (-d) and you got the same effect.

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Note that this only works if the delimiter is exactly the same between all columns... For example, you can't use cut with a delimiter like \d+. (That I know of.) –  Zach Wily Jan 13 '10 at 21:11
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Voted down. When question is titled awk it is inappropriate to accept answer other than awk. What if people need it for awk scripts? This answer should've just been a comment. –  SyaZ Nov 1 '10 at 4:17
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@SyaZ: Normally I'd agree, but with the amount of 'gratuitous awk' going on this board, I thought it's needed to show an alternative way of doing the task. Wouldn't you be thankful if someone showed you a simpler and quicker way to do the same task? Maybe the poster thought awk is the only way to do this because of number of 'not incorrect, but certainly improvable upon' answers to other questions? –  Marcin Nov 1 '10 at 13:24
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That's what the comment is for. Accept the best awk answer and provide better non-awk suggestions on comments. If people start posting answers that don't exactly answer questions, it will be annoying when searching (in my case). –  SyaZ Nov 2 '10 at 15:10
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Not only delimiter have to be the same between all columns, but there have to be EXACTLY ONE delimiter character between columns. So if you are dealing with programs that align their output with delimiters, it is better to use awk. –  sknaumov Aug 21 '12 at 12:40
awk '{for(i=3;i<=NF;++i)print $i}'
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awk '{for(i=3;i<=NF;++i)print $i}' be more compact. :) –  user172818 Oct 21 '09 at 16:58
    
Thanks, lh3. I was just copying and pasting for the gawk manual. :) –  Jonathan Feinberg Oct 21 '09 at 17:07
    
From. From. From. –  Jonathan Feinberg Oct 21 '09 at 17:08
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The key point here is the existence and meaning of NF. –  dmckee Oct 21 '09 at 21:13
    
I think that you can do something like this awk 'NF >= 3' –  user2571881 May 10 '13 at 7:29
awk '{ print substr($0, index($0,$3)) }'

solution found here:
http://www.linuxquestions.org/questions/linux-newbie-8/awk-print-field-to-end-and-character-count-179078/

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I'm kind of late for this, but this won't work for records in which the first or second field is equal to the third (e.g., 3 2 3 4 5) –  aleph_null Oct 25 '11 at 1:46
    
This is perfect. Thank you! –  Qix Nov 27 at 5:25

Jonathan Feinberg's answer prints each field on a separate line. You could use printf to rebuild the record for output on the same line, but you can also just move the fields a jump to the left.

awk '{for (i=1; i<=NF-3; i++) $i = $(i+3); NF-=3; print}' logfile
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awk '{$1=$2=$3=""}1' file

NB: this method will leave "blanks" in 1,2,3 fields but not a problem if you just want to look at output.

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This command puts a space at the beginning of each line. –  Nathan Jan 15 at 19:59
    
Trail that command with ` | sed s/^\ *// | column -t` to strip leading spaces and align the remaining columns –  MSpreij Sep 9 at 13:57

What about following line:

awk '{$1=$2=$3=""; print}' file

Based on @ghostdog74 suggestion. Mine should behave better when you filter lines, i.e.:

awk '/^exim4-config/ {$1=""; print }' file
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This command puts a space at the beginning of each line. –  Nathan Jan 15 at 20:00

Well, you can easily accomplish the same effect using a regular expression. Assuming the separator is a space, it would look like:

awk '{ sub(/[^ ]+ +[^ ]+ +/, ""); print }'
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I'd avoid regex. It's probably slower and easier to accidentally mess up. –  Jefromi Oct 21 '09 at 17:13
    
It shorten it like this: awk '{ sub(/([^ ]+ +){2}/, ""); print }' which takes the pattern two times away. –  erik Jan 11 at 15:10
awk '{ system ("echo " $0 " | cut -d\"" FS "\" -f3-") }'
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It's completely unnecessary to wrap that in an AWK system() call and without that, it's identical to the accepted answer. Also, cut can't accept many possible values of FS. –  Dennis Williamson May 1 '12 at 21:04
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@DennisWilliamson I think Evil_Answer was a troll ... –  Slomojo Dec 24 '12 at 13:35

A bit late here, but none of the above seemed to work. Try this, using printf, inserts spaces between each. I chose to not have newline at the end.

awk '{for(i=3;i<=NF;++i) printf("%s ",  $i) }'
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awk -v m="\x0a" -v N="3" '{$N=m$N ;print substr($0, index($0,m)+1)}'

This chops what is before the given field nr., N, and prints all the rest of the line, including field nr.N and maintaining the original spacing (it does not reformat). It doesn't mater if the string of the field appears also somewhere else in the line, which is the problem with daisaa's answer.

Define a function:

fromField () { 
awk -v m="\x0a" -v N="$1" '{$N=m$N; print substr($0,index($0,m)+1)}'
}

And use it like this:

$ echo "  bat   bi       iru   lau bost   " | fromField 3
iru   lau bost   
$ echo "  bat   bi       iru   lau bost   " | fromField 2
bi       iru   lau bost 

Output maintains everything, including trailing spaces

Works well for files where '/n' is the record separator so you don't have that new-line char inside the lines. If you want to use it with other record separators then use:

awk -v m="\x01" -v N="3" '{$N=m$N ;print substr($0, index($0,m)+1)}'

for example. Works well with almost all files as long as they don't use hexadecimal char nr. 1 inside the lines.

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awk '{for (i=4; i<=NF; i++)printf("%c", $i); printf("\n");}'

prints records starting from the 4th field to the last field in the same order they were in the original file

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sorry, this was not quite correct answer. it is too specific, but I do not know how to delete it –  Massimo Nov 14 at 10:18

The following awk command prints the last N fields of each line and at the end of the line prints a new line character:

awk '{for( i=6; i<=NF; i++ ){printf( "%s ", $i )}; printf( "\n"); }'

Find below an example that lists the content of the /usr/bin directory and then holds the last 3 lines and then prints the last 4 columns of each line using awk:

$ ls -ltr /usr/bin/ | tail -3
-rwxr-xr-x 1 root root       14736 Jan 14  2014 bcomps
-rwxr-xr-x 1 root root       10480 Jan 14  2014 acyclic
-rwxr-xr-x 1 root root    35868448 May 22  2014 skype

$ ls -ltr /usr/bin/ | tail -3 | awk '{for( i=6; i<=NF; i++ ){printf( "%s ", $i )}; printf( "\n"); }'
Jan 14 2014 bcomps 
Jan 14 2014 acyclic 
May 22 2014 skype
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