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I am trying to match this string

'12.34.5.6',#### OR
'12.34.5.6', #### (Note the space after the comma) 

in a series of files and replace #### with 2222.

I started small and this command successfully changed 1234 to 2222

sed -i 's/'12.34.5.6\''\,1234/'12.34.5.6\''\, 2222/g' file.txt

so I moved on to work on replacing 1234 with regex, below are some of the commands i've tried but do not work.

sed -i 's/'12.34.5.6\''\,\(\s?[0-9]{4,5}\)/'12.34.5.6\''\, 2222/g' file.txt
sed -i 's/'12.34.5.6\''\,[0-9][0-9][0-9][0-9][0-9]?/'12.34.5.6\''\, 2222/g' file.txt

Can someone help me out with this or give some pointers?

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2 Answers 2

sed -r "s/('12[.]34[.]5[.]6',[ ]?)[0-9]{4}/\\12222/g"
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Thanks for your input, Omega. –  plasticdoor66 Nov 20 '12 at 18:58

This might do the trick:

sed -E "s/('12.34.5.6',\s?)[0-9]{4,5}/\12222/g"

Examples:

$ echo "'12.34.5.6', 2134" | sed -E "s/('12.34.5.6',\s?)[0-9]{4,5}/\12222/g"
'12.34.5.6', 2222
$ echo "'12.34.5.6',9230" | sed -E "s/('12.34.5.6',\s?)[0-9]{4,5}/\12222/g"
'12.34.5.6',2222

Explications:

With -E we ask sed to use extended regex (but this is mainly a matter of taste), the beginning of the regex is fairly simple: '12.34.5.6', just match this same string. We then add a space, followed by a ? to indicate it is optionnal. This first part is enclosed in braces to be able to use this in the replacement pattern.

Then, we add the #'s to the pattern. I assumed you used #'s in place of numbers based on your attempts with [0-9]{4,5} and [0-9][0-9][0-9][0-9][0-9].

Finally, in the replacement pattern we use the previously matched first pair of braces with \1, and add our 2's: \12222 (which will replace the numbers (#'s), discarded in the process because not enclosed in the braces).

PS. Next time please format your question for better readability. PPS. I think the real issue here is not the regex but the quote escaping in your regex. Maybe take look at [this question].

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Thanks for your response. What does #{4} mean in the command and what does \1 in \12222 mean ? –  plasticdoor66 Nov 20 '12 at 1:30
    
I updated my answer, I didn't understand that by # you really were expecting to match numbers. The \1 means "first capturing group" (ie. everything matched by the first group of braces). –  Guillaume Algis Nov 20 '12 at 1:32
    
oh sorry abt the format. –  plasticdoor66 Nov 20 '12 at 1:33
    
Thanks for the explanation. I tried out your example but I am getting this error: char 36: invalid reference \1 on `s' command's RHS. I tried escaping the quotes and editing the command but still getting an error one way or another. –  plasticdoor66 Nov 20 '12 at 17:27
    
Thank you for your help GuillaumeA. –  plasticdoor66 Nov 20 '12 at 18:58

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