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I have a csv file which I need to pull the first column out of. I would like to take the header (comprised of letters) and the data which is comprised only of numbers.

Sample input:

"HEADER1","HEADER2"
"1234567","TEXT"
"3456789","TEXT2"

As both are encapsulated within double quotes my output should be:

"HEADER"
"1234567"
"3456789"

I am currently using the following regex, which is only giving me the data and not the header. I thought the 'OR' operator in the middle would include any text as well as numbers encapsulated by double quotes. Any idea why this isn't giving me my header?

grep -o "^\"[0-9]\+\"\|^\"[A-Z]\+\"\"" test.csv > test2.csv

Cheers

  • 1
    did you try grep -o "^\"[0-9A-Z]\+\"" test.csv ? – leu Jan 24 '14 at 14:40
  • Thanks @leu - so simple! – Zfunk Jan 24 '14 at 14:41
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    @leu, there's a difference between [0-9]\+\|[A-Z]\+ and [0-9A-Z]\+. – Shahbaz Jan 24 '14 at 14:42
2

The problem is that you have closed your quotation for "[A-Z]\+" twice:

grep -o "^\"[0-9]\+\"\|^\"[A-Z]\+\"\"" test.csv > test2.csv
                                   ^^

Remove that and all is well. To make it easier to understand, use single quotation:

grep -o '^"[0-9]\+"\|^"[A-Z]\+"' test.csv > test2.csv
  • Is there something wrong with the regex? I'd appreciate comments on the downvote so I can learn too. – Shahbaz Jan 24 '14 at 15:23
1

Your regex contains too many \" at the end. Use:

grep -o "^\"[0-9]\+\"\|^\"[A-Z]\+\"" test.csv > test2.csv
0

You can use awk:

awk -F, '$1 ~ /"[0-9]+|[a-zA-Z]+"/ {print $1}' file
  • Thanks, useful to know! – Zfunk Jan 24 '14 at 14:50

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