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I have a file in the following format:


I would like to delete col3 (with the delimiter "|") from the header and the data as well. Can this be done using awk/sed?

Plese NOTE that the data in col3 maybe empty (row 2).

The output should be:

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Yup, this can absolutely be done with sed or awk. What have you tried? –  David Cain Oct 3 '12 at 20:30
I've tried this: –  MyFirstName MyLastName Oct 3 '12 at 20:38
awk -F"|" '{ OFS="|"; $3=""; print }' in.txt > out.txt but the "|" is left out. I'd like the "|" following the header and the data gone. –  MyFirstName MyLastName Oct 3 '12 at 20:44

6 Answers 6

You could simply use cut.

cut -d'|' -f1-2,4- file
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I need to get a tattoo that says, "Did you try cut?" –  Dean Oct 3 '12 at 21:10
@Dean -- Wouldn't an incision somehow be more appropriate for that? –  Jeremy J Starcher Oct 3 '12 at 21:23
@JeremyJStarcher :) –  MyFirstName MyLastName Oct 3 '12 at 22:04

This might work for you (GNU sed):

sed 's/[^|]*|//3' file
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simple, clear, efficient. My best off –  NeronLeVelu Dec 5 '13 at 6:16
awk  'BEGIN{FS=OFS="|"}{print $1,$2,$4}'   file

should give you the output.

it is the very basic awk usage.


you didn't mention 70 columns... :(

try this:

awk  -F'|' '{s="";for(i=1;i<=NF;i++){f=(NF==i)?"":FS;if(i!=3)s=s $i f;}print s}' file
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but my file has 70 cols. Is there a better way than writing out all the columns except the one I need (which is say 45) –  MyFirstName MyLastName Oct 3 '12 at 20:47
@MyFirstNameMyLastName see update in answer –  Kent Oct 3 '12 at 20:55
Thank you Kent and triplee. Appreciate the help. –  MyFirstName MyLastName Oct 3 '12 at 20:59

Here's a possible sed solution:

sed -i.bak filename -e 's;\(^.*|.*|\).*|\(.*\);\1\2;'

This will work great for your example, and could be adjusted for other examples, but isn't really a general purpose solution.


-i.bak Edit the file in place, first making a backup called filename.bak.

\(^.*|.*|\) From the start of the line, match everything up to and including the second delimiter. The parenthesis group this match (group 1).

.*| Match everything up to and including the last delimiter.

\(.*\) Match the rest and group (group 2).

\1\2 Replace all of the previous matches with the text from group 1 and group 2.

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I think that because of the greediness of the .* expression, the expression wont work when you have more than 4 fields. A more general solution would probably be: sed -i.bak filename -e 's;^\([^|]*|[^|]*|\)[^|]*|\(.*\);\1\2;'. –  Janito Vaqueiro Ferreira Filho Oct 3 '12 at 21:32
@JanitoVaqueiroFerreiraFilho That's definitely a better way to do it. –  Dean Oct 3 '12 at 22:03
@JanitoVaqueiroFerreiraFilho Thanks! But my real issue is that the file has 70 columns and I'd like to get rid of the 45th one. Then, wouldn't it become hrad to use this approach? –  MyFirstName MyLastName Oct 3 '12 at 22:05

Using cut is the right answer, but if you really want to use awk it's easier than Kent shows:

awk -F'|' 'BEGIN {OFS="|"} {for (n=3; n < NF; ++n) $n = $(n+1); --NF; print}'

Just shuffle the fields after $3 down, then by altering the value of NF you change the number of fields.

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Thanks Jonathan. I've used cut. For my need, that seemed to be the easiest and straight forward answer. –  MyFirstName MyLastName Oct 3 '12 at 22:00
Any chance you could mark that as accepted then? Thanks! –  tripleee Oct 4 '12 at 3:27

cut command will help to achieve this

 cat filname | cut -d'|' -f1,2,4
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I do not find any problem in it and it works fine. Why is down voted? –  minhas23 Aug 26 '14 at 9:25
This works for me. Easy solution. –  Pavel Chernikov Jun 11 at 0:44
The Useless cat is obviously a problem, and may have attracted downvotes. Also, with that factored out, this duplicates my existing answer from two years earlier. –  tripleee Aug 20 at 4:13

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