1

I'm experimenting with sed and recently I've noticed interesting behavior. However, I'm unable to find any documentation that describes it.

Imagine that we have file called 'sedtest':

$cat sedtest
 hello 0 world
 example
 4 sed
 Phone number: 123-456-789

Next, I'll run it through sed:

$cat sedtest | sed '/\([[:digit:]]\+\)/s,,(\1),'
 hello (0) world
 example
 (4) sed
 Phone number: (123)-456-789

That was fairly easy to understand sed script:

  1. First, it matches string by regexp \([[:digit:]]\+\), which means "match string that contains 1 or more digits". Notice that I also use s-command-style \( and \) parentheses to mark substring here (is it allowed?).
  2. In case of match it proceeds with s command s,,(\1), (with empty regexp field), that means "replace matched substring with (\1)".

Initially I thought that it should fail with error, because \1 and similar backreferences should work only for substrings from s command matcher field, which is empty in this case.

But the result is as if it was s,\([[:digit:]]\+\),(\1), script (\regexp\ matcher moved inside s command matcher field)!

So, the question is: is it normal (i.e. it is desired behavior) to backreference substrings of text matched by \regexp\ rule from s//replace/ command as if they were matched by s/regexp/replace/ command?

P.S.

My sed version is: GNU sed 4.2.1

And motivation behind question is that way you can do something like:

sed '/^Number: \([[:digit:]]\+\)$/{s,,#NUMBER: (\1),;p;d};q 1', i.e.

  1. /^Number: \([[:digit:]]\+\)$/ - match every string of kind Number: 12345 and in case of match:
    • s,,#NUMBER: (\1), - replace it with #NUMBER: (12345)
    • p - print it
    • d - clear pattern space, and start new cycle (fetch new line and start parsing script expression from beginning)
  2. q 1 - exit with code 1. This command is executed only if no match occured in step 1 (because of d command presence) - it checks for 'not matched' case, which in my situation means 'not allowed string' and must result in error.

Main trick here was executing p and d commands after substitution took place, which is not possible when using 'normal' s/match/replace/ command.

1

It's normal. The back reference hold space doesn't get cleared unless you do another match. Since your regex for s is null, \1 refers to the capture group previous to that. You can see the difference:

$ sed '/\([[:digit:]]\+\)/s,\(a\),(\1),' sedtest
hello 0 world
 example
 4 sed
 Phone number: 123-456-789

Nothing matched (lines with digits which also have a, but the back reference holds were cleared

$sed '/\([[:digit:]]\+\)/s,\(e\),(\1),'
h(e)llo 0 world
 example
 4 s(e)d
 Phon(e) number: 123-456-789

e matched and that becomes the back reference.

If you don't want this behaviour, you shouldn't create the back reference by putting \( \) around [[:digit:]] in the first place.

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