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I have a simple question, which is almost too simple to find on this forum or on awk learning sites.

I have some awk code that matches a line beginning with a number, and prints the 6th column of that line:

/^[1-9]/ {   
print $6 

How do I tell it to print only the first 50 rows of the column from the match?


I tried used my own version of the answers below and I got it to print 50 lines. However, now I am trying to choose which 50 lines I print. I do this by skipping a line that starts with a number and contains the word 'residue'. Then I skip 5 lines that start with a number and contain a 'w'. This method is working as if I am only skipping the line with residue and prints from the first line starting with a number after that. Do you know why my 'w's are not being considered.

#!/usr/bin/awk -f

    line  = 0;
    skipW = 0;

# Ignore all lines beginning with a number until I find one I'm interested in.
/^[0-9]+ residue/ { next }

# Ignore the first five lines beginning with a number followed by a 'w'.
/^[0-9]+ w/ { 
    skipW += 1;
    if (skipW <= 5) next

# For all other lines beginning with a number, perform the following.  If we are
# "printing", increment the line count.  When we've printed 50 lines turn off
# printing from that point on.
/^[0-9]+/ { 
    if ((line > 0) && (line <= 50)) print $6
share|improve this question
Your program seems correct. It will be helpful to show an example of your data where it fails. – Birei Oct 3 '12 at 21:20
You say 'skipping lines that start with a number and contain the word residue', but the code code doesn't do that; it skips lines that start with a number followed immediately by the word residue. You'd need something like /^[0-9]+ .*residue/ to do what you say you want. Similarly with lines that 'start with a number and contain a w'. – Jonathan Leffler Oct 3 '12 at 21:42
can you think of a way to match multi-line patterns. Like if there is a pattern 4 lines in a row where they start with a number and then have a letter such as 1 q 2 r 3 i 4 l – chimpsarehungry Oct 3 '12 at 22:10
You can do some sort of messing around with an array of the $0 records, and keep a tab on which one contains the first line and the fourth line and see what goes on. Fiddly, messy, but probably OK. – Jonathan Leffler Oct 3 '12 at 22:34

2 Answers 2

up vote 2 down vote accepted
awk '/^[1-9]/ { if (num_printed++ < 50) print $6 }'

This increments num_printed each time a match is found and prints out the first 50 such lines, regardless of where the lines are in the files in the input.

This reads through all the input. If an early exit is OK, then you can use:

awk '/^[1-9]/ { print $6; if (++num_printed == 50) exit }'

Note the switch from post-increment to pre-increment.

share|improve this answer

Use a match counter as part of your condition:

/^[1-9]/ && matched < 50 {
    print $6

You can use a shortcut method also:

/^[1-9]/ { print $6; matched++ }
matched == 50 { exit }

But this may not always work on a pipline, if the producer command does not handle SIGPIPE gracefully.

share|improve this answer
This only looks for matches in the first 50 lines of input, rather than printing out the first 50 matching lines. – Jonathan Leffler Oct 3 '12 at 18:12
@JonathanLeffler You're right, I'll fix it. – C2H5OH Oct 3 '12 at 18:13
I don't have to initialize matched to 0 in a BEGIN statement? – chimpsarehungry Oct 3 '12 at 18:34
No; variables are automagically initialized to zero when they are first used. – Jonathan Leffler Oct 3 '12 at 18:59

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