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I've got a comma separated textfile, which contains the column headers in the first line:

column1;column2;colum3
foo;123;345
bar;345;23
baz;089;09

Now I want a short command that outputs the first line and the matching line(s). Is there a shorter way than:

head -n 1 file ; cat file | grep bar
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Maybe I should add: I like to have the search string at the end of the line, so I can quickly change the search term when doing multiple searches in a row. (arrow-up, ctrl+W, enter new search string) –  grimmig Feb 24 '12 at 7:42

6 Answers 6

up vote 3 down vote accepted

This might work for you:

cat file | awk 'NR<2;$0~v' v=baz
column1;column2;colum3
baz;089;09

Usually cat file | ... is useless but in this case it keeps the file argument out of the way and allows the variable v to be amended quickly.

Another solution:

cat file | sed -n '1p;/foo/p' 
column1;column2;colum3
foo;123;345
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You could also write: awk -v v=baz 'NR<2;$0~v' file without cat. –  glenn jackman Feb 24 '12 at 14:57
    
@glennjackman I agree but this is an exception (see above). –  potong Feb 24 '12 at 15:20
    
Thanks. I didn't think about the possibility to use a variable with awk! –  grimmig Feb 27 '12 at 6:59
    
+1 for the first time I saw awk code including $0~ for a reason. –  sg-lecram Sep 2 '13 at 14:15
    
To get rid of the problem noted by Zsolt Botykai, you should probably use cat file | awk 'NR<2||$0~v' v=baz, instead. This way you ensure the first line is printed only once, even if it matched baz. –  sg-lecram Sep 2 '13 at 14:19

This should do the job:

sed -n '1p;2,${/bar/p}' file

where:

  • 1p will print the first line
  • 2,$ will match from second line to the last line
  • /bar/p will print those lines that match bar

Note that this won't print the header line twice if there's a match in the columns names.

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2  
just one more way : sed -e '1{p;d;};/bar/!d' file –  2r2w Feb 24 '12 at 8:00

You can use grouping commands, then pipe to column command for pretty-printing

$ { head -1; grep bar; } <input.txt | column -ts';'
column1  column2  colum3
bar      345      23
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What if the first row contains bar too? Then it's printed two times with your version. awk solution:

awk 'NR == 1 { print } NR > 1 && $0 ~ "bar" { print }' FILE

If you want the search sting as the almost last item on the line:

awk 'ARGIND > 1 { exit } NR == 1 { print } NR > 1 && $0 ~ ARGV[2] { print }' FILE YOURSEARCHSTRING 2>/dev/null

sed solution:

sed -n '1p;1d;/bar/p' FILE

The advantage for both of them, that it's a single process.

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true, didn't think of that. But honestly I don't care since I'm doing the search manually for a quick lookup and am not using the output afterwards. –  grimmig Feb 24 '12 at 7:46

head -n 1 file && grep bar file Maybe there is even a shorter version but will get a bit complicated.

EDIT: as per bobah 's comment I have added && between the commands to have only a single error for missing file

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I like complicated. Also if the search string is at the end of the line, its faster to do multiple searches (ARROW-UP,CTRL+W, enter new string) –  grimmig Feb 24 '12 at 7:40
    
+1, i would separate cmds with "&&", not ";" to have only one error message printed for missing file –  bobah Feb 24 '12 at 7:41
    
@bobah yes the idea is good –  Ivaylo Strandjev Feb 24 '12 at 7:44

Here is the shortest command yet:

awk 'NR==1||/bar/' file
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But it doesn't match all of the OPs requirements (see comment). –  sg-lecram Sep 2 '13 at 14:22

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