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I was wondering if there is a more efficient way to get this task done. I am working with files with the number of lines ranging from a couple hundred thousand to a couple million. Say I know that lines 100,000 - 125,000 are the lines that contain the data I am looking for. I would like to know if there is a quick way to pull just these desired lines from the file. Right now I am using a loop with grep like this:

 for ((i=$start_fid; i<=$end_fid; i++))
    grep "^$i " fulldbdir_new >> new_dbdir${bscnt}

Which works fine its just is taking longer than I would like. And the lines contain more than just numbers. Basically each line has about 10 fields with the first being a sequential integer that appears only once per file.

I am comfortable writing in C if necessary.

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4 Answers 4

up vote 15 down vote accepted

sed can do the job...

sed -n '100000,125000p' input

EDIT: As per glenn jackman's suggestion, can be adjusted thusly for efficiency...

sed -n '100000,125000p; 125001q' input

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add some efficiency with sed -n '100000,125000p; 125001q' – glenn jackman Jul 25 '11 at 19:54
Nice! Thanks for that – Costa Jul 25 '11 at 19:57
I think this answer will work for me, what does the p and q stand for after 125000 and 125001 respectively? – mike Jul 25 '11 at 20:04
The letters are the way to tell sed what to do with the pattern space you're referencing. In this case, the '100000,125000p' part says to print the pattern space 100000,125000 (i.e. line number 100000 to 125000), and the '125001q' part tells it to quit at line 125001 since you've already got what you need. – Costa Jul 25 '11 at 20:17

I'd use awk:

awk 'NR >= 100000; NR == 125000 {exit}' file

For big numbers you can also use E notation:

awk 'NR >= 1e5; NR == 1.25e5 {exit}' file

EDIT: @glenn jackman's suggestion (cf. comment)

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Save time with NR > 125000 {exit} – glenn jackman Jul 25 '11 at 19:51
@glenn jackman: v. good point. i'll update. – mhyfritz Jul 25 '11 at 19:54

You can try a combination of tail and head to get the correct lines.

head -n 125000 file_name | tail -n 25001 | grep "^$i "

Don't forget perl either.

perl -ne 'print if $. >= 100000 && $. <= 125000' file_name | grep "^$i "

or some faster perl:

perl -ne 'print if $. >= 100000; exit() if $. >= 100000 && $. <= 125000' | grep "^$i "

Also, instead of a for loop you might want to look into using GNU parallel.

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The answers so far reads the first 100000 lines and discards them. As disk I/O is often the limiting factor these days it might be nice to have a solution that does not have to read the unwanted lines.

If the first 100000 lines are always the same total length (approximately), then you might compute how far to seek into the file to get to approximately line 100000 and then read the next 25000 lines. Maybe read a bit more before and after to make sure you have all the 25000 lines.

You would not know exactly what line you were at, though, which may or may not be important for you.

Assume the average line length of the first 100000 lines is 130 then you would get something like this:

 dd if=the_file skip=130 bs=100000 | head -n 25000

You would have to throw away the first line, as it is likely to be only half a line.

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