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How can I delete some columns from a tab separated fields file with awk?

c1 c2 c3 ..... c60

For example, delete columns between 3 and 29 .

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This answer on stackoverflow may help you:… – iwg Sep 26 '11 at 6:24

4 Answers 4

This is what the cut command is for:

cut -f1,2,30- inputfile

The default is tab. You can change that with the -d switch.

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I had to remove the last - in order to make it work in Ubuntu. If I leave it, cut would print all the columns. Anyone had this problem too? – Adri C.S. Jul 5 '13 at 8:48
It should print columns one, two and thirty to the last one (60 in the question). If it doesn't that's a bug in Ubuntu! – Stephen Darlington Jul 5 '13 at 10:17
Aaaah, ok. I made a mistake. My bad. – Adri C.S. Jul 5 '13 at 11:23
It does not support too many columns! – user1436187 Oct 12 at 10:20

You can loop over all columns and filter out the ones you don't want:

awk '{for (i=1; i<=NF; i++) if (i<3 || i>29) printf $i " "; print""}' input.txt

where the NF gives you the total number of fields in a record.
For each column that meets the condition we print the column followed by a space " ".

EDIT: updated after remark from johnny:

awk -F 'FS' 'BEGIN{FS="\t"}{for (i=1; i<=NF-1; i++) if(i<3 || i>5) {printf $i FS};{print $NF}}' input.txt

this is improved in 2 ways:

  • keeps the original separators
  • does not append a separator at the end
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Shouldn't you print a tab (\t) instead of a space. He wants to remove fields, perhaps not remove tabs at the same time (if I understand you correctly). – johnny Sep 26 '11 at 10:31
@johnny: you are right. I updated the code so it should consider the separator correctly. – oliver Sep 26 '11 at 11:52
awk '{for(z=3;z<=15;z++)$z="";$0=$0;$1=$1}1'


c1 c2 c3 c4 c5 c6 c7 c8 c9 c10 c11 c12 c13 c14 c15 c16 c17 c18 c19 c20 c21


c1 c2 c16 c17 c18 c19 c20 c21
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Perl 'splice' solution which does not add leading or trailing whitespace:

perl -lane 'splice @F,3,27; print join " ",@F' file

Produces output:

c1 c2 c30 c31
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