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awk -F"," -v var=$test '$1 ~ /^var$/{print}' alpha.txt

I tried hard-coding my var with my actual variable input and I found that this code works. However, when I tried for example /^ppl$/ to search for partial match of apple, it does not display. can someone give me some guidance as to how I can parse my variable into the command?

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/^ppl$/ wouldn't give a partial match of apple, as you've required that the line consist only of ppl; the ^ means the start of the line and $ means the end. –  Michael J. Barber Jan 25 '13 at 12:20
    
Thanks alot. may i know if i wish to get a partial match of for example apple day, how can i modify the code to do it? –  user1823986 Jan 25 '13 at 13:18
    
Just use ppl; that places no restriction on where in the string the match may occur. –  Michael J. Barber Jan 26 '13 at 5:28

3 Answers 3

try this:

awk -F"," -v var=$test '$1 ~ "^"var"$"' alpha.txt
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Thanks. May i know if i wish to retreive any match with white spaces in the field, how could i do it? –  user1823986 Jan 25 '13 at 13:22
    
@user1823986 you meant your $test (var) is " "? if you want to match any space, which means, it could be at beginning, endding or middle of the field. just $1~var –  Kent Jan 25 '13 at 13:55
    
oh. Thanks alot. i think i mixed it up a little with my reading. –  user1823986 Jan 25 '13 at 13:59
awk -F"," '$1 ~ /^'"$test"'$/{print}' alpha.txt
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Thank you for your help –  user1823986 Jan 25 '13 at 13:24

If you're anchoring the match at the beginning and the end, just use ==

awk -F"," -v var=$test '$1 == var' alpha.txt

Unless $test contains a regular expression, in which case @Kent has the right answer.

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