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Normally when you call sed, you can call \1 to reference the submatch number one, i.e.:

<something> | sed "s/<regex>\(<regex>\)<regex>/\1/"

This will just take the middle regex and remove the outer ones.

But what do you do, if you have more then 9 matches? Simply writing \10 doesn't work, because it will be interpreted as take submatch number one and add a zero behind it.

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Can you simplify it to reduce the number of capturing groups? –  nhahtdh Aug 6 '12 at 17:46
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possible duplicate of Circumvent the sed backreference limit \1 through \9 –  erikb85 Aug 6 '12 at 19:28

2 Answers 2

up vote 2 down vote accepted

It's not possible in sed. You'll have to use a different tool.

Here are similar questions on SO:

Circumvent the sed backreference limit \1 through \9.

how to get 10th grouping value in sed?

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thanks, the first one actually says (which I can only test tomorrow) that you can use perl instead of sed and apply a "s/in/out/" expression nearly in the same fashion but much more powerful. That is actually quite, quite helpful! So I voted for duplicate of your first link. –  erikb85 Aug 6 '12 at 19:27

I'm not sure about SED, but in many languages (javascript, ruby), that have regex implementations that allow for submatching (or backreferencing as it is sometimes called), only support \1 through \9. \10 is simply not allowed.

Any additional backreferencing would require the use of a more sophisticated parser.

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I think Perl allows it, though. –  Andrew Cheong Aug 6 '12 at 17:55
    
Some regex implementations, such as Python, will accept \10, etc, if there are more than 9 capture groups in the pattern. –  MRAB Aug 6 '12 at 19:12

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