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Is there a way to use bash to remove the last four columns for some input CSV file? The last four columns can have fields that vary in length from line to line so it is not sufficient to just delete a certain number of characters from the end of each row.

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up vote 6 down vote accepted

Cut can do this if all lines have the same number of fields or awk if you don't.

cut -d, -f1-6 # assuming 10 fields

Will print out the first 6 fields if you want to control the output seperater use --output-delimiter=string

awk -F , -v OFS=, '{ for (i=1;i<=NF-4;i++){ printf $i, }; printf "\n"}'

Loops over fields up to th number of fields -4 and prints them out.

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in the awk line, I guess you want to printf $i not print $i, right? typo maybe? and print $i , won't work, you may want to have ; another typo? – Kent Jan 19 '13 at 21:21
    
@kent yeah meant printf $i, don't you need to have the ; if only one command. – peteches Jan 19 '13 at 21:45
    
you are right, but you have "comma".. :) – Kent Jan 19 '13 at 21:52
    
Ahh I see what you mean. The comma is expanded to the value of the OFS variable – peteches Jan 19 '13 at 22:49
cat data.csv | rev | cut -d, -f-5 | rev

rev reverses the lines, so it doesn't matter if all the rows have the same number of columns, it will always remove the last 4. This only works if the last 4 columns don't contain any commas themselves.

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2  
This is a really nice solution in my opinion, +1 for the use of rev (I didn't know it existed) – skd Feb 6 '14 at 16:24

You can use cut for this if you know the number of columns. For example, if your file has 9 columns, and comma is your delimiter:

cut -d',' -f -5

However, this assumes the data in your csv file does not contain any commas. cut will interpret commas inside of quotes as delimiters also.

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awk one-liner:

awk -F, '{for(i=0;++i<=NF-5;)printf $i", ";print $(NF-4)}'  file.csv

the advantage of using awk over cut is, you don't have to count how many columns do you have, and how many columns you want to keep. Since what you want is removing last 4 columns.

see the test:

kent$  seq 40|xargs -n10|sed 's/ /, /g'           
1, 2, 3, 4, 5, 6, 7, 8, 9, 10
11, 12, 13, 14, 15, 16, 17, 18, 19, 20
21, 22, 23, 24, 25, 26, 27, 28, 29, 30
31, 32, 33, 34, 35, 36, 37, 38, 39, 40

kent$  seq 40|xargs -n10|sed 's/ /, /g' |awk -F, '{for(i=0;++i<=NF-5;)printf $i", ";print $(NF-4)}'
1,  2,  3,  4,  5,  6
11,  12,  13,  14,  15,  16
21,  22,  23,  24,  25,  26
31,  32,  33,  34,  35,  36
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This might work for you (GNU sed):

sed -r 's/(,[^,]*){4}$//' file
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In my sense, it is the best answer here! – Noémien Kocher Jan 14 at 12:40

This awk solution in a hacked way

awk -F, 'OFS=","{for(i=NF; i>=NF-4; --i) {$i=""}}{gsub(",,,,,","",$0);print $0}' temp.txt
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awk -F, '{NF-=4; OFS=","; print}' file.csv

or alternatively

awk -F, -vOFS=, '{NF-=4;print}' file.csv

will drop the last 4 columns from each line.

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Good way to drop the extra columns, but for me this replaces the commas between columns with spaces in the output. Is there an easy way to avoid that and keep them as commas? – Dan Getz Jun 11 '15 at 2:07
    
You can add back your delimiter with awk -F, '{NF-=4; OFS=","; print}' – YH Wu Jun 11 '15 at 15:08
    
Great, that works for me. Also could set OFS in a BEGIN block or with the -v command-line argument like awk -F, -vOFS=, ... – Dan Getz Jun 11 '15 at 15:25

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