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This is the list:

Work
Work
Fire
Global

And I want to extract the string WWFG from it. [(?).*\n] just give me Global. What should I rather be using?

For context, I'm using Rainmeter's webparser plugin.

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This should work: . –  user529758 Nov 21 '12 at 16:38
    
See Perl compatible regular expression mentioned in the Rainmeter docs for WebParser. –  Rich C Jan 2 at 23:32

7 Answers 7

Try this: (?simU)^(.)
RainRegExp seems to lack the replacement feature, so it is impossible to get all the captures concatenated into one string.

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You need to use the multiline flag with an anchor. I would use: /^(.)/gm (syntax differs from language to language)

See example here: http://regex101.com/r/uC1gV5

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This doesn't work seem to work in what I'm using... –  laggingreflex Nov 21 '12 at 16:37

The easiest way depends on what language you're using, but you want to replace

(.).*\n

with

$1
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up vote 1 down vote accepted
(?siU)(?(?=.)(.))(?(?=.*\n).*\n(.))(?(?=.*\n).*\n(.))(?(?=.*\n).*\n(.))

Answered by @moshi here. And it works perfectly with Rainmeter.

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I have no idea what language you're using, but here's some Python!

>>> import re
>>> ''.join(re.findall("(.).*", "Work\nWork\nFire\nGlobal"))
'WWFG'
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This will capture the first character from each line

([a-z])[^\n]+\n*

the replace with \1 or $1

Depending on what is in the text you might need to change [a-z] to something more all-encompassing

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^([a-z])[^\n]+\n* should be ^([a-z])[^\n]+..no need of \n* –  Anirudha Nov 21 '12 at 16:47
    
Depends if you want to return the characters all on one line or on separate lines. The OP showed them all together on one line. –  garyh Nov 21 '12 at 16:48
    
\n* is not needed..that means match \n 0 to many times..this doesnt make sense since [^\n]+ would reach to the character preceding \n.. –  Anirudha Nov 21 '12 at 16:49
    
\n doesn't have to exist to use [^\n]+ which means any character except \n, not any character up to \n –  garyh Nov 21 '12 at 16:59
    
@garyh I don't know if it's what I'm using but this just gives me F –  laggingreflex Nov 21 '12 at 16:59

If that is Lua, try s:gsub("(.).-\n","%1").

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