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I'm using grep on TextWrangler to find strings of this type:

4,600.00

My regex command is the following:

\d.\d{3}.\d{2}

which seems to find the strings correctly. I would like to replace the string 4,600.00 with 4600.00 as I wish to save the data in a .csv file. How do I remove the comma from each number that I find?

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i guess your line contains not only this number but something like"foo,bar,blah,4,600,000.00,some,more" however, what if the line is "foo,bar,blah,999,600,000.00,..." how can you say 999 and 600000.00 are two columns? are there other rule in your input file? –  Kent Aug 9 '12 at 10:18
    
The numbers stay below 100,000 so I only need to find ,000.00. I'm unclear what the replacement code is though; I tried \d\d{3}.\d{2} . –  celenius Aug 9 '12 at 10:36

3 Answers 3

up vote 6 down vote accepted

Search: (\d{1,3}),(\d{1,3})\.(\d{1,2})

Replace: \1\2.\3

Works in TextWrangler.

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awk oneliner:

awk  --re-interval  '{x=gensub(/([0-9]{1,3}),([0-9]{3}\.[0-9]{2})/,"\\1\\2","g");print x}' file

test:

kent$  awk --version|head -1
GNU Awk 3.1.6

kent$  echo "foo,bar,blah,46,000.00,some,more"|awk --re-interval  '{x=gensub(/([0-9]{1,3}),([0-9]{3}\.[0-9]{2})/,"\\1\\2","g");print x}'
foo,bar,blah,46000.00,some,more
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One way using sed:

sed -r 's/([0-9]{1,3}),([0-9]{3}\.[0-9]{2})/\1\2/g' file.txt

You could add the -i flag to write the changes directly to the file.

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