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I want to extract just the lines with specific line numbers from a file (I have about 20-50 line numbers, the file has 30,000 lines). So far, the most concise way I've found to do this is e.g.:

gawk 'BEGIN {split("13193,15791,16891", A, ",")} NR in A' <file_name>

but it seems like I should be able to further reduce the amount of typing involved. I've looked at sed but I think I need an -n and a -p for each line number, also thought about cat -n with grep but it's more verbose than the above. Does anyone know a better way?

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3  
Do you really type 20-50 line numbers into the command line argument? –  TLP May 11 '11 at 10:19
    
Not by hand! I pasted them from another program, so the amount of typing is only a function of which command to use to get bash to recognise the numbers as line numbers in a file. –  OpenSauce May 13 '11 at 7:14
    
Sounds... clunky. ;) I think I personally would prefer to paste them into a file. A very short perl script would do the trick for you. –  TLP May 13 '11 at 8:37

3 Answers 3

up vote 9 down vote accepted

Sed can be more concise:

sed -n "13193p;15791p;16891p" file_name
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Welcome to the ranks of the Stack Athletes. –  Dennis Williamson May 12 '11 at 1:33
    
thanks, that's the sort of thing I was looking for. I need to brush up on my sed skills. –  OpenSauce May 13 '11 at 7:16

Put the list of line numbers in a separate file, then

gawk 'FNR==NR {line[$1]; next} NR in line' line_numbers file_name
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This might work for you (GNU sed?):

sed 's/$/p/' file_of_line_numbers | sed -nf - source
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