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I would like to have help or direction on a problem I have in awk.

I have a tab-delimited file with more than 5 fields. I want to output the fields excluding the first 5 fields.

Could you please tell how to write an awk script to accomplish this task?

Best, jianfeng.mao

Do Note the following kind comment:

There are many fields in my files. Different lines have a different number of fields. The number of fields per line is not standard.

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do you have a standard set of fields? or do does the field count vary. For example sometimes 6 fields sometimes 10 fields? –  matchew Jun 10 '11 at 14:35
    
Yes, there are many fields. Different file with different number of fields. I do not know how many of them. –  jianfeng.mao Jun 10 '11 at 14:39
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Don't forget to accept the answer that answered your question. –  ssapkota Jun 11 '11 at 19:16
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Allow me to welcome you to StackOverflow and remind three things we usually do here: 1) As you receive help, try to give it too answering questions in your area of expertise 2) Read the FAQs 3) When you see good Q&A, vote them up by using the gray triangles, as the credibility of the system is based on the reputation that users gain by sharing their knowledge. Also remember to accept the answer that better solves your problem, if any, by pressing the checkmark sign –  belisarius Jun 15 '11 at 9:14

4 Answers 4

up vote 3 down vote accepted

I agree with matchew's suggestion to use cut: it's the right tool for this job. But if this is just going to become a part of a larger awk script, here's how to do it:

awk -F "\t" '{ for (i=6; i<=NF; ++i) $(i-5) = $i; NF = NF-5; print; }
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Dear user349433, I am now trying to learn from your awk script. Thanks a lot –  jianfeng.mao Jun 10 '11 at 16:04

if my tab delimited file temp.txt looks like the following

field1 field2 field3 field4 field5 field6
field1 field2 field3 field4 field5 field6 field7
field1 field2 field3 field4 field5 field6 field7 field 8

Per your update I strongly reccomend using cut.

cut -f6- temp.txt

will print field6 to end of line. note -d specifies the delimiter, but tab is the default delimiter.

you can do this in awk, but I find cut to be simplier

in awk it would looke like the following:

 awk '{print substr($0, index($0, $6))}' temp.txt

but cut is more simpler in this instance.

if my tab delimited file temp.txt looks like the following

field1 field2 field3 field4 field5 field6
field1 field2 field3 field4 field5 field6 field7
field1 field2 field3 field4 field5 field6 field7 field 8

awk -F"\t" '{print $6}' temp.txt

will print only the 6th field. if the delimiter is tab it will likely work without setting -F, but I like to set my field-separator when I can.

similarly so too would cut.

cut -f6 temp.txt

I have a hunch your question is a bit more complicated then this, so if you respond to my comment I can try and expand on my answer.

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Dear matchew. Thanks a lot for your helps. –  jianfeng.mao Jun 10 '11 at 14:42
    
cut is great for simplicity, but does not handle inconsistent delimiters (mixture of different whitespaces). +1 for using substr in the awk solution. –  Shawn Chin Jun 10 '11 at 15:00

perl way?

perl -lane 'splice @F,0,5;print "@F"'

so,

echo 'field1 field2 field3 field4 field5 field6' | perl -lane 'splice @F,0,5;print "@F"'

will produce

field6
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awk -vFS='\t' -vOFS='\t' '{
  $1=$2=$3=$4=$5=""
  print substr($0,6) # delete leading tabs
}'

I use -vFS='\t' rather than -F'\t' because some implementations of awk (e.g. BusyBox's) don't honor C escapes in the latter construction.

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