How do I select the first column from the TAB separated string?

# echo "LOAD_SETTLED    LOAD_INIT       2011-01-13 03:50:01" | awk -F'\t' '{print $1}'

The above will return the entire line and not just "LOAD_SETTLED" as expected.

Update:

I need to change the third column in the tab separated values. The following does not work.

echo $line | awk 'BEGIN { -v var="$mycol_new" FS = "[ \t]+" } ; { print $1 $2 var $4 $5 $6 $7 $8 $9 }' >> /pdump/temp.txt

This however works as expected if the separator is comma instead of tab.

echo $line | awk -v var="$mycol_new" -F'\t' '{print $1 "," $2 "," var "," $4 "," $5 "," $6 "," $7 "," $8 "," $9 "}' >> /pdump/temp.txt
  • 3
    awk 'BEGIN { FS = "[ \t]+" } ; { print $1 }' # this is what I was looking for. Is my google search correct? :) – shantanuo Mar 21 '11 at 5:50
  • 2
    Thanks to this comment, I have discovered: awk 'BEGIN {FS="\t"}; {print $1,FS,$2,FS,$3}' myFile.txt to print tab-delimited values of the first three columns. – Wok May 30 '13 at 9:33
  • 5
    Or perhaps simply awk 'BEGIN {OFS="\t"}; {print $1,$2,$3}' – Josiah Yoder Jul 22 '15 at 3:07
  • 2
    Both GNU and BSD awk support -v for setting variables. It's ugly to use BEGIN {FS="\t"} inside an inline program, and any open source contribution you try to make like that is likely to be objected to. Only do that if you are writing a program file. Also, it is discouraged to use -F instead of -v FS= because the latter makes clear that only FS is being set and not OFS. Confusion about that last point is what caused this post in the first place. That's why "good style" is important. – Bruno Bronosky Apr 12 at 17:35
  • 1
    Please, no one, ever, should do what @Wok demonstrated. You don't enumerate [Input] Field Separators in your Output. You specify an Output Field Separator via the OFS variable. – Bruno Bronosky Apr 12 at 17:38
up vote 112 down vote accepted

You need to set the OFS variable (output field separator) to be a tab:

echo "$line" | 
awk -v var="$mycol_new" -F $'\t' 'BEGIN {OFS = FS} {$3 = var; print}'

(make sure you quote the $line variable in the echo statement)

  • 3
    What is the purpose of the $ in $'\t'? – Amr Mostafa May 11 '13 at 11:55
  • 10
    Answering my own question from the Advanced Bash Scripting Guide: The $' ... ' quoted string-expansion construct is a mechanism that uses escaped octal or hex values ..., e.g., quote=$'\042'. – Amr Mostafa May 11 '13 at 12:34
  • 4
    @AmrMostafa, too bad that guide has a misleading explanation leading one to think that you don't the $ in $'\t' is not needed. Greg's wiki is better: "Of these, $'...' is the most common, and acts just like single quotes except that backslash-escaped combinations are expanded as specified by the ANSI C standard". – Cristian Ciupitu Jul 12 '14 at 20:38
  • 7
    In hindsight, the $'\t' is not necessary. awk understands the string "\t" to be a tab character – glenn jackman Oct 22 '15 at 11:50
  • echo "LOAD_SETTLED LOAD_INIT 2011-01-13 03:50:01" | awk '{print $1}' should this not be sufficient? – asadz Jan 11 '16 at 7:31

Make sure they're really tabs! In bash, you can insert a tab using C-v TAB

$ echo "LOAD_SETTLED    LOAD_INIT       2011-01-13 03:50:01" | awk -F$'\t' '{print $1}'
LOAD_SETTLED

You can set the Field Separator:

... | awk 'BEGIN {FS="\t"}; {print $1}'

Excellent read:

https://docs.freebsd.org/info/gawk/gawk.info.Field_Separators.html

echo "LOAD_SETTLED    LOAD_INIT       2011-01-13 03:50:01" | awk -v var="test" 'BEGIN { FS = "[ \t]+" } ; { print $1 "\t" var "\t" $3 }'

I use the FS and OFS variables to manipulate BIND zone files which are tab delimited. Here is one of my scripts https://gist.github.com/RichardBronosky/abe1652c2d5c78c35b92ad02bdf0d0af#file-dns_update-sh-L36-L39

The meat of it is:

awk -v FS='\t' -v OFS='\t' \
    -v record_type=$record_type \
    -v hostname=$hostname \
    -v ip_address=$ip_address '
$1==hostname && $3==record_type {$4=ip_address}
{print}
' $zone_file > $temp

This is a clean and easy to read way to do this.

Should this not work?

echo "LOAD_SETTLED    LOAD_INIT       2011-01-13 03:50:01" | awk '{print $1}'

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.