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I have got a csv file, it has various columns, one of these columns is a Date column, so for a given date, I want to fetch all of the records from the csv, the reason that I cant use grep is that that date might be there in some other column and I dont want that.

So far this is what I have got,

Date is this format:

sed 's/\"//g' kk.csv | awk -F ',' '{print $4}'   '$4 ~ /^2012.*/'

First I am removing all of the "" quotes, then I have specified the separator ',' then I am applying the condition on the 4th column of the files which is the date column, but It is not working, I am doing exactly what the book says.

Can anyone point out what I am doing wrong, is it a quote related issue?

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Be more specific than "not working". One problem I see, though, is that you can't just remove the quotes. Quotes are used to allow commas, which otherwise separate two columns, to be used in a value. Removing the quotes prevents you from distinguishing between the two types of commas. –  chepner Feb 12 '13 at 20:24
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2 Answers

awk only accepts one script, while you're giving it two ({printf $4} and $4 ~ /^2012.*/). Join them into one awk script using awk's condition { commands } syntax:

sed 's/\"//g' kk.csv  | awk -F ',' '$4 ~ /^2012.*/ {print $4}'
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Wow!! that worked :) many thanks, –  Dude Feb 12 '13 at 20:28
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no need to use sed. Just awk is enough to search

awk -F, '$4 ~ "^\"2012"' kk.csv

This will print all line which have 4th column starting with "2012

If you want formatted output(removing quotes etc) awk do that also

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