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I have a sample text file abc.txt which contains some values:

Harry Potter - A:JK:1:1:1
Harry Potter - B:JK:1:1:1
Hairy Potter - C:Harry:1:1:1

The : is the separator between the values. Currently, I am trying to grep similar values and compare to the first column and print out the lines.

grep -i "harry" BookDB.txt | awk -F ':' '{print $0}'

It produces:

Harry Potter - A:JK:1:1:1
Harry Potter - B:JK:1:1:1
Hairy Potter - C:Harry:1:1:1

However, the results I am trying to achieve is:

Harry Potter - A:JK:1:1:1
Harry Potter - B:JK:1:1:1

any help?

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3 Answers 3

All that awk -F ':' '{print $0}' does is print every line, it does nothing in your example.

If you want to do this with awk it would be:

$ awk -F: '$1~/Harry/' file
Harry Potter - A:JK:1:1:1
Harry Potter - B:JK:1:1:1

# Case insensitive 
$ awk -F: 'tolower($1)~/harry/' file
Harry Potter - A:JK:1:1:1
Harry Potter - B:JK:1:1:1

This only prints the line if the first field $1 matches /Harry/, the case insensitive version converts the first field to all lowercase characters and checks against /harry/.

You could just anchor harry to the start of the line with ^ if you know this is always the case?

$ grep -i "^harry" file
Harry Potter - A:JK:1:1:1
Harry Potter - B:JK:1:1:1
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+1 This is definitely the way to go for this particular problem. –  tripleee Jan 7 '13 at 17:26

so you want it to only grep on the first part of the line, before the first occurence of ":" separator?

let's say you are sure there is no "%" in your file: 1) you replace the FIRST (and only first) occurence of ":" by the unused character (% or another) and show lines where you can your string before that %

sed -e 's/:/%/' < BookDB.txt | grep -i '^[^%]*harry[^%]*%'

or if all lines contain " - ": simplify it as such:

sed -e 's/:/%/' < BookDB.txt | grep -i '^[^%]*harry'

and add to this

| sed -e 's/%/:/' # to restore the original line

In the above, you can replace ":" with, for example, " - " (a multi-character separator), and it will still work.

If you really need just to find something before the first occurence of a single character, you can simplify further as such (but it's less flexible):

grep -i '^[^:]*harry[^:]*:'

or

grep -i '^[^:]*harry'

(2nd should probably only be used if all the lines are in a similar format as the ones you need to match things in)

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and to verify you don't have any of the "unused char" : grep '%' BookDB.txt || echo "ok, didn't find it." –  Olivier Dulac Jan 7 '13 at 15:44
    
on bash: ctrl+v followed by, for example, ctrl+e, will insert a "^E" special chars that is unlikely to be fuodn at all in BookDB.txt. Replace then all the "%" above with "ctrl+v ctrl+e". To do it portably (ie, easy to copy/paste), define : export unusedchar="$(printf '\005')" . And then change the lines above to : sed -e 's/ - /'${unusedchar}'/' < BookDB.txt | grep '^[^'${unusedchar}']*harry' –  Olivier Dulac Jan 7 '13 at 15:48
    
um... i am trying to grep on the part before the first ":" not "-". –  wjs Jan 7 '13 at 15:51
    
then easy: change " - " above with ":" : it will work too (replacing only the first occurence of it with the unused char, etc) –  Olivier Dulac Jan 7 '13 at 16:10
    
There are many ways this can be done, I don't recommend doing it like this however! –  iiSeymour Jan 7 '13 at 16:14

If you just looking for Harry in the first argument the command below will do the trick

grep -i "harry " BookDB.txt | awk -F ':' '{print $0}'

However if you need a full book name you have to write a bash script which will extract the book name and compares it to your input.

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1  
How is this different from what the OP already has, piping anything through awk -F ':' '{print $0}' does nothing as it just prints the lines. –  iiSeymour Jan 7 '13 at 16:11

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