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I have a plaintext file containing multiple instances of the pattern $$DATABASE_*$$ and the asterisk could be any string of characters. I'd like to replace the entire instance with whatever is in the asterisk portion, but lowercase.

Here is a test file:


test me $$DATABASE_GIBSON$$ test me



Here is the desired output:


test me gibson test me

gibson test gibson test

gibson gibsongibson

How do I do this with sed/awk/tr/perl?

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8 Answers 8

up vote 3 down vote accepted

Here's the perl version I ended up using.

perl -p -i.bak -e 's/\$\$DATABASE_(.*?)\$\$/lc($1)/eg' inputFile
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Nice solution indeed. Note however, that it won't work if * contains newlines. –  mschilli Jul 7 at 17:40

Unfortunately there's no easy, foolproof way with awk, but here's one approach:

$ cat tst.awk

   head = ""
   tail = $0

   while ( match(tail, "\nDATABASE_[^\n]+\n") ) {
      head = head substr(tail,1,RSTART-1)
      trgt = substr(tail,RSTART,RLENGTH)
      tail = substr(tail,RSTART+RLENGTH)


      head = head tolower(trgt)


   $0 = head tail



$ cat file
The quick brown $$DATABASE_FOX$$ jumped over the lazy $$DATABASE_DOG$$s back.
Put a dollar $$DATABASE_DOL$LAR$$ in the $$ string.

$ awk -f tst.awk file
The quick brown fox jumped over the lazy dogs back.
The grey squirrel ate nuts under a tree.
Put a dollar dol$lar in the $$ string.

Note the trick of converting $$ to a newline char so we can negate that char in the match(RE), without that (i.e. if we used ".+" instead of "[^\n]+") then due to greedy RE matching if the same pattern appeared twice on one input line the matching string would extend from the start of the first pattern to the end of the second pattern.

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Nice code. Would you mind commenting on my solution? I think I solved the problem with very little (g)awk. It should even work with newlines within the * string. But maybe I got something wrong. In this case I would like to lern from this. :) –  mschilli Jul 7 at 17:22
It doesn't produce the expected output from the sample input in the question. –  Ed Morton Jul 7 at 19:10
For me it does. Did you use GNU awk gawk? IIRC, POSIX awk does not support regular expression (RE) record separators (RS). If you tested it using gawk, what is the output you got and which version did you use? –  mschilli Jul 7 at 20:28
Yes I use gawk 4.1.1. The final line of output is gibson gibson with no terminating newline instead of gibson gibsongibson with a terminating newline. –  Ed Morton Jul 7 at 22:23
Thx for your input. The terminating newline was missing since ORS was empty in the case of the last record. Thus the assignment evaluated to false, not triggering the print. I fixed that by wrapping the assignment into an unconditioned action and adding an unconditioned print using the 1 idiom. However, the $$DATABASE_GIBSON$$$$DATABASE_GIBSON$$ part is tramsformed to gibsongibson as expected for me. Can you double-check that this is stil not the case for you with my latest version? I'm on gawk 4.0.2 so maybe sth changed since then. I'll try a recent gawk later today. Thx. –  mschilli Jul 8 at 5:54

This one works with complicated examples.

perl -ple 's/\$\$DATABASE_(.*?)\$\$/lc($1)/eg' filename.txt

And for simpler examples :

echo '$$DATABASE_GIBSON$$' | sed 's@$$DATABASE_\(.*\)\$\$@\L\1@'

in , \L means lower case (\E to stop if needed)

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\L doesn't work on my Mac i.e. Mac OS 10.6.8 –  anubhava Oct 25 '12 at 17:20
Not quite. I'm using this test file: And the output looks like this: –  BlueJ774 Oct 25 '12 at 17:25
Added perl portable solution. –  Gilles Quenot Oct 25 '12 at 17:28
With the same input file as above, using the perl, I get this: That one is seriously messing with formatting and deleting things. –  BlueJ774 Oct 25 '12 at 17:32
FYI I'm in a FreeBSD environment. –  BlueJ774 Oct 25 '12 at 17:45

Using awk alone:

> echo '$$DATABASE_AWESOME$$' | awk '{sub(/.*_/,"");sub(/\$\$$/,"");print tolower($0);}'

Note that I'm in FreeBSD, so this is not GNU awk.

But this can be done using bash alone:

[ghoti@pc ~]$ foo='$$DATABASE_AWESOME$$'
[ghoti@pc ~]$ foo=${foo##*_}
[ghoti@pc ~]$ foo=${foo%\$\$}
[ghoti@pc ~]$ foo=${foo,,}
[ghoti@pc ~]$ echo $foo

Of the above substitutions, all except the last one (${foo,,}) will work in standard Bourne shell. If you don't have bash, you can instead do use tr for this step:

$ echo $foo
$ foo=$(echo "$foo" | tr '[:upper:]' '[:lower:]')
$ echo $foo


Per comments, it seems that what the OP really wants is to strip the substring out of any text in which it is included -- that is, our solutions need to account for the possibility of leading or trailing spaces, before or after the string he provided in his question.

> echo 'foo $$DATABASE_KITTENS$$ bar' | sed -nE '/\$\$[^$]+\$\$/{;s/.*\$\$DATABASE_//;s/\$\$.*//;p;}' | tr '[:upper:]' '[:lower:]'

And if you happen to have pcregrep on your path (from the devel/pcre FreeBSD port), you can use that instead, with lookaheads:

> echo 'foo $$DATABASE_KITTENS$$ bar' | pcregrep -o '(?!\$\$DATABASE_)[A-Z]+(?=\$\$)' | tr '[:upper:]' '[:lower:]'

(For Linux users reading this: this is equivalent to using grep -P.)

And in pure bash:

$ shopt -s extglob
$ foo='foo $$DATABASE_KITTENS$$ bar'
$ foo=${foo##*(?)\$\$DATABASE_}
$ foo=${foo%%\$\$*(?)}
$ foo=${foo,,}
$ echo $foo

Note that NONE of these three updated solutions will handle situations where multiple tagged database names exist in the same line of input. That's not stated as a requirement in the question either, but I'm just sayin'....

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Close, but not quite with awk. Input: Output: –  BlueJ774 Oct 25 '12 at 17:57
Those samples are not included in your question. I answered the question posted. –  ghoti Oct 25 '12 at 18:37
@BlueJ774 - updated my answer with your new requirements. You might want to be more explicit in your question to avoid confusion. –  ghoti Oct 25 '12 at 18:55
Nice answer, but even your updated version does not do what (current version of) the question asks for: It will remove all input not to be transformed to lowercase instead of outputting it as-is. –  mschilli Jul 7 at 17:36

You can do this in a pretty foolproof way with the supercool command cut :)

echo '$$DATABASE_AWESOME$$' | cut -d'$' -f3 | cut -d_ -f2 | tr 'A-Z' 'a-z'
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This might work for you (GNU sed):

sed 's/$\$/\n/g;s/\nDATABASE_\([^\n]*\)\n/\L\1/g;s/\n/$$/g' file
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Here is the shortest (GNU) awk solution I could come up with that does everything requested by the OP:

awk -vRS='[$][$]DATABASE_([^$]+[$])+[$]' '{ORS=tolower(substr(RT,12,length(RT)-13))}1' 

Even if the string indicated with the asterix (*) contained one or more single Dollar signs ($) and/or linebreaks this soultion should still work.

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echo $$DATABASE_WOOLY$$ | awk '{print tolower($0)}'

awk will take what ever input, in this case the first agurment, and use the tolower function and return the results.

For your bash script you can do something like this and use the variable DBLOWER

DBLOWER=$(echo $$DATABASE_WOOLY$$ | awk '{print tolower($0)}');
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This is not replacing $$DATABASE_*$$ by * as requested by the OP. Also it will convert all the input to lower case. –  mschilli Jul 7 at 17:26

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