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I have a CSV like this

Parameter Values,Count,% of Results
" david;dd@gmail.com;10300 "," 15 "," 50.0% "
" david;dd@gmail.com;12300 "," 15 "," 50.0% "
" davidk;dk@gmail.com;32300 "," 15 "," 50.0% "
" joe;joe@gmail.com;9200 "," 15 "," 50.0% "
" john;jj@gmail.com;1500 "," 15 "," 50.0% "

I want to get the line that has the highest number value, in this case 32300

I already made an attempt at this but it uses several commands

export max=$(awk -F, '{split($1,a,";"); print a[3] }' contestEntryTest.csv | tr -d ' "' | sort -nr | head -n 1) ; grep $max contestEntryTest.csv

How can i do the above in less commands or one command, how would a more experienced bash programmer do the above problem, just for the learning experience. Cheers!

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2 Answers 2

up vote 2 down vote accepted

You can use sort, if the file is demo.csv, then

sort -t ';' -k3 -n demo.cvs|tail -n 1
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wow, that is simple , thanks for the answer. I was just wondering which would have the best performance sort or awk , or is it negligible. –  tsukimi Mar 14 '12 at 2:51
    
@tsukimi I think performance base on the size/content of your data, sort will process all entries, but awk process script more complicate, so not easy to say who is faster. –  PasteBT Mar 14 '12 at 3:17

A pure awk way to do the trick :

awk -F"[; ]" '($4>v){v=$4}END{print v}' FILE
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I tried the above command it prints out "Results" –  tsukimi Mar 14 '12 at 2:55
    
I changed it a little to awk -F"[; ]" '(NR>1 && $4>v){v=$4}END{print v}' contestEntryTest.csv this prints out only the value not the whole line where the value exists –  tsukimi Mar 14 '12 at 3:07

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