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Too cumbersome:

awk '{print " "$4" "$5" "$6" "$7" "$8" "$9" "$10" "$11" "$12" "$13}' things
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26  
Is there any reason you can't just use cut -f3-? –  Jefromi Apr 13 '10 at 0:38
1  
@hhh nice one.. I like the idea of a summary answer. –  iiSeymour Sep 22 '13 at 21:54
1  
@Jefromi - because there are line buffering issues with cut, which awk doesn't have: stackoverflow.com/questions/14360640/… –  sdaau Nov 27 '13 at 16:57
    
possible duplicate of Using awk to print all columns from the nth to the last –  Wladimir Palant Jan 6 '14 at 7:49

12 Answers 12

up vote 16 down vote accepted

A solution that does not add extra leading or trailing whitespace:

awk '{for(i=4;i<NF;i++)printf "%s",$i OFS; if (NF) printf "%s",$NF; printf ORS}'

Demo:

$ echo '1 2 3 4 5 6 7' | 
  awk '{for(i=4;i<NF;i++) printf"%s",$i OFS;if(NF)printf"%s",$NF;printf ORS}' | 
  tr ' ' '-'
4-5-6-7

Another approach using the ternary operator is Sudo_O's solution:

$ echo '1 2 3 4 5 6 7' |
  awk '{for(i=4;i<=NF;i++)printf "%s",$i (i==NF?ORS:OFS)}' | tr ' ' '-'
4-5-6-7

And EdMorton gives a solution that preserves the original whitespace between fields:

$ echo '1   2 3 4   5    6 7' |
awk '{sub(/([^ ]+ +){3}/,"")}1' | tr ' ' '-'
4---5----6-7

The solution given by larsr in the comments is almost correct:

$ echo '1 2 3 4 5 6 7' | 
  awk '{for (i=3;i<=NF;i++) $(i-2)=$i; NF=NF-2; print $0}' | tr  ' ' '-'
3-4-5-6-7

This is the fixed and parametrized version of larsr solution:

$ echo '1 2 3 4 5 6 7' | 
  awk '{for(i=n;i<=NF;i++)$(i-(n-1))=$i;NF=NF-(n-1);print $0}' n=4 | tr ' ' '-'
4-5-6-7

All other answers are nice but add extra spaces:

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1  
Hi, see my edited answer –  klashxx Apr 7 '14 at 10:05
    
EdMorton's answer didn't work for me (bash 4.1.2(1)-release,GNU Awk 3.1.7 or bash 3.2.25(1)-release, GNU Awk 3.1.5) but found here another way: echo ' This is a test' | awk '{print substr($0, index($0,$3))}' –  elysch Dec 18 '14 at 18:45
1  
@elysch no, that will not work in general, it just appears to work given some specific input values. See the comment I added below your comment under my answer. –  Ed Morton Dec 18 '14 at 21:57
awk '{for(i=1;i<4;i++) $i="";print}' file
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2  
This would leave leading OFS as you don't deal with NF i.e. leading space in the records. –  iiSeymour Sep 15 '13 at 21:14

use cut

$ cut -f4-13 file

or if you insist on awk and $13 is the last field

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

else

$ awk '{for(i=4;i<=13;i++)printf "%s ",$i;printf "\n"}' file
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11  
probably better to use "NF" than "13" in the last example. –  glenn jackman Apr 13 '10 at 14:02
2  
2 scenario that is up to OP to decide. if 13 is the last field, using NF is alright. If not, using 13 is appropriate. –  ghostdog74 Apr 13 '10 at 14:07
3  
2nd needs to delete 3 copies of OFS from the start of $0. 3rd would be better with printf "%s ",$i, since you don't know whether $i might contain %s or the like. But that would print an extra space at the end. –  dubiousjim Apr 19 '12 at 3:16

Try this:

awk '{ $1=""; $2=""; $3=""; print $0 }'
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1  
This is nice because of how dynamic it is. You can add columns at the end and not rewrite your scripts. –  MinceMan Jan 13 '12 at 17:09
1  
This demonstrates the exact problem the question is trying to deal with you just do the opposite. What about print the from the 100th field? Note to mention you don't deal with NF so you leaving leading OFS. –  iiSeymour Sep 15 '13 at 21:17

The correct way to do this is with an RE interval because it lets you simply state how many fields to skip, and retains inter-field spacing for the remaining fields.

e.g. to skip the first 3 fields without affecting spacing between remaining fields given the format of input we seem to be discussing in this question is simply:

$ echo '1   2 3 4   5    6' |
awk '{sub(/([^ ]+ +){3}/,"")}1'
4   5    6

If you want to accommodate leading spaces and non-blank spaces, but again with the default FS, then it's:

$ echo '  1   2 3 4   5    6' |
awk '{sub(/[[:space:]]*([^[:space:]]+[[:space:]]+){3}/,"")}1'
4   5    6

If you have an FS that's an RE you can't negate in a character set, you can convert it to a single char first (RS is ideal if it's a single char since an RS CANNOT appear within a field, otherwise consider SUBSEP), then apply the RE interval subsitution, then convert to the OFS. e.g. if chains of "."s separated the fields:

$ echo '1...2.3.4...5....6' |
awk -F'[.]+' '{gsub(FS,RS);sub("([^"RS"]+["RS"]+){3}","");gsub(RS,OFS)}1'
4 5 6

Obviously if OFS is a single char AND it can't appear in the input fields you can reduce that to:

$ echo '1...2.3.4...5....6' |
awk -F'[.]+' '{gsub(FS,OFS); sub("([^"OFS"]+["OFS"]+){3}","")}1'
4 5 6

Then you have the same issue as with all the loop-based solutions that reassign the fields - the FSs are converted to OFSs. If that's an issue, you need to look into GNU awks' patsplit() function.

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1  
Brilliant!!!!!! –  jaypal singh Feb 23 '14 at 18:09
    
Didn't work for me (bash 4.1.2(1)-release,GNU Awk 3.1.7 or bash 3.2.25(1)-release, GNU Awk 3.1.5) but found here another way: echo ' This is a test' | awk '{print substr($0, index($0,$3))}' –  elysch Dec 18 '14 at 18:47
2  
No, that will fail if $1 or $2 contain the string that $3 is set to. Try, for example echo ' That is a test' | awk '{print substr($0, index($0,$3))}' and you'll find that the a that is $3 matches the a inside That in $1. In a very old version of gawk like you have you need to enable RE intervals with the flag --re-interval. –  Ed Morton Dec 18 '14 at 22:28
2  
You're right, didn't notice. By the way, really appreciate your comment. Many times wanted to use a regex with "{}" to specify number of elements and never saw "--re-interval" in the man. +1 for you. –  elysch Dec 19 '14 at 12:48
    
One additional question. Why does the last "1" makes awk to give the changed string instead of the number of changes made by sub? –  elysch Dec 19 '14 at 13:10

Pretty much all the answers currently add either leading spaces, trailing spaces or some other separator issue. To select from the fourth field where the separator is whitespace and the output separator is a single space using awk would be:

awk '{for(i=4;i<=NF;i++)printf "%s",$i (i==NF?ORS:OFS)}' file

To parametrize the starting field you could do:

awk '{for(i=n;i<=NF;i++)printf "%s",$i (i==NF?ORS:OFS)}' n=4 file

And also the ending field:

awk '{for(i=n;i<=m=(m>NF?NF:m);i++)printf "%s",$i (i==m?ORS:OFS)}' n=4 m=10 file
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echo 1 2 3 4 5| awk '{ for (i=3; i<=NF; i++) print $i }'
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3  
Or to get them on the same line, assign $3 to $1, etc. and then change NF to the right number of fields. echo 1 2 3 4 5| awk '{ for (i=3; i<=NF; i++) $(i-2)=$i; NF=NF-2; print $0 }' –  larsr Apr 24 '12 at 7:48
    
Hi @larsr. Your proposed command line is the single correct answer. All other answers add extra spaces (leading or trailing). Please post your command line within a new answer, I will up-vote it ;-) –  olibre Sep 15 '13 at 20:07
1  
Hi @sudo_O, I was speaking to @larsr, about the command line he proposed within his comment. I spent about five minutes before figuring out the quiproco (misunderstanding). I agree, the @Vetsin answer inserts new lines (ORS) between fields. Bravo for your initiative (I like your answer). Cheers –  olibre Sep 16 '13 at 9:35
awk '{$1=$2=$3="";$0=$0;$1=$1}1'

Input

1 2 3 4 5 6 7

Output

4 5 6 7
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Another way to avoid using the print statement:

 $ awk '{$1=$2=$3=""}sub("^"FS"*","")' file

In awk when a condition is true print is the default action.

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This has all the problems @lhf answer has.. it's just shorter. –  iiSeymour Sep 15 '13 at 21:19
    
See my edited answer @sudo_O –  klashxx Apr 7 '14 at 10:04
    
Very good idea ;) Better than my answer! (I have already upvoted your answer last year) Cheers –  olibre Apr 7 '14 at 14:18
    
Cheers ;) @olibre –  klashxx Apr 7 '14 at 15:20

I can't believe nobody offered plain shell:

while read -r a b c d; do echo "$d"; done < file
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+1 for the similar solution... But this may have performance issues if file is large (>10-30KiB). For large files the awk solution performs better. –  TrueY Sep 11 '14 at 11:26

This isn't very far from some of the previous answers, but does solve a couple of issues:

cols.sh:

#!/bin/bash
awk -v s=$1 '{for(i=s; i<=NF;i++) printf "%-5s", $i; print "" }'

Which you can now call with an argument that will be the starting column:

$ echo "1 2 3 4 5 6 7 8 9 10 11 12 13 14" | ./cols.sh 3 
3    4    5    6    7    8    9    10   11   12   13   14

Or:

$ echo "1 2 3 4 5 6 7 8 9 10 11 12 13 14" | ./cols.sh 7 
7    8    9    10   11   12   13   14

This is 1-indexed; if you prefer zero indexed, use i=s + 1 instead.

Moreover, if you would like to have to arguments for the starting index and end index, change the file to:

#!/bin/bash
awk -v s=$1 -v e=$2 '{for(i=s; i<=e;i++) printf "%-5s", $i; print "" }'

For example:

$ echo "1 2 3 4 5 6 7 8 9 10 11 12 13 14" | ./cols.sh 7 9 
7    8    9

The %-5s aligns the result as 5-character-wide columns; if this isn't enough, increase the number, or use %s (with a space) instead if you don't care about alignment.

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Slightly better "general" solution:

awk 'NF > 3 { for(i=4; i<NF; i++) printf("%s%s", $(i), OFS); printf("%s%s", $(i), ORS) }'

Testing:

$ foo='1 2 3 %s would break most printf-based answers'
$ echo "$foo" | awk 'NF > 3 { for(i=4; i<NF; i++) printf("%s%s", $(i), OFS); printf("%s%s", $(i), ORS) }'
%s would break most printf-based answers 
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