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I wanted to print only every other column in a file (with over 1 million columns) so first I tried using seq on a subset of data:

    cut -d ' ' -f 1,2,3,4,5,6,7,8,9,10,11,12 filename > filename.test
    cut -d ' ' -f$(seq -s, 1 2 12) filename.test > filename.testout

That works--I end up with half as many columns as the first file. However when I try the same approach on the full dataset like so:

    cut -d ' ' -f$(seq -s, 1 2 1211418) file > fileout

I get this error:

    -bash: /bin/cut: Argument list too long

So what do I do if I need only every other column from a file with this many columns? Thanks!

I referenced using cut command to remove multiple columns but I'm stuck on how to make it work for my huge file...

share|improve this question

Use a different tool.

perl -F'/\x20/' -ane 'print $F[0]; for ( $i=2 ; $i<=$#F ; $i+=2 ) { print " $F[$i]" } print "\n"'

-F tells Perl to split on a space (\x20). -a tells Perl to split into the @F array. -n tells Perl to process the input line by line without printing each line. -e introduces the expression. $#F is the index of the last element in the @F array.

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So what do I do if I need only every other column from a file with this many columns?

Instead of attempting to use a tool that requires you to pass the fields explicitly on the command line that cause the argument list too long error, use something that doesn't require you to do that. Using awk:

awk '{for(i=1;i<=NF;i=i+2){printf "%s ", $i}{printf "%s", RS}}' filename

Or, using perl:

perl -lane 'print join" ",@F[map {$_*2} 0..int($#F/2)]' inputfile
share|improve this answer

Using awk

awk '{for(i=1;i<=NF;i+=2){if(i<NF-1){printf "%s ", $i} else{printf "%s", $i}}{print "";}}' input.txt
share|improve this answer

You might try this awk solution:

awk 'BEGIN {FS=" " ; OFS=FS}
     { for (i=1;i<=NF;i+=2) {printf("%s%s",$i,OFS)}
       printf("\n","")
     } INPUTFILE
share|improve this answer
1  
A typo I guess printf("%s%s",i,OFS) shouldn't be printf("%s%s",$i,OFS) ? – Ashkan Apr 18 '14 at 8:40

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