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I am learning bash and I have a file with 500000 lines, each of them has this pattern:

NNNNNNNN NNNNNN C

N = number | C = char A-Z | First space is a tab, second is a regular space.

I want to create a file with the last part, starting at the second column of numbers (NNNNNN C) using a bash script. I was able to do it with:

i=1
while [ $i -le 500000 ]
do
    echo $i
    sed $i"q;d" $1 | tail -c 9 >> file
    ((i++))
done

But it takes ages because it writes each line into the file, one by one. How can I do this faster?

Thanks

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up vote 1 down vote accepted

Use cut, which uses tabs as a delimiter by default.

To read infile and put fields (-f) 2 onwards (2-) into file:

cut -f2- infile > file
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1  
Great and simple. I have read the man page and I was able to do it with cut -c 10-17 $1 > $2 too, and using parameters. Thank you! – Fdiazreal Mar 10 '13 at 22:45
    
Glad my answer helped you. Often the simplest utilities are the best. – Johnsyweb Mar 11 '13 at 4:23

You can use read to split each line into words, and then print the ones you want:

while read a b c; do
  echo "$b $c"
done < input_file > output_file
share|improve this answer
    
That works perfect, I think I will use it in another type of file. Thank you! – Fdiazreal Mar 10 '13 at 22:43

yes, that would take a while. And while you DIY spirit is to be commended with using bash, this sort of task is usually taken care of with the unix tool that was designed for such tasks.

Try this

 sed 's/^.*<T>//' file > outFile

where <T> is either '\t' or the literal tab char, depending on your version of sed.

This deletes everything up to the first tab on each line in your file and then prints what is left into outFile.

IHTH.

share|improve this answer
    
It will be very useful for other files, using RegEx. Thank you! – Fdiazreal Mar 10 '13 at 22:47

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