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Firefox 10 triggers the following warning...

octal literals and octal escape sequences are deprecated

...with the following regex (the last part at \1\n)...

var d = c.textContent.replace(/\([!.?]\)/g,'\1\n');

After remembering some Apache regex I did I revised it to this and while there are not more warnings the output does not display any line breaks...

var d = c.textContent.replace(/\([!.?]\)/g,'$1\n');

Do not edit my posts, if you have a question comment instead and I'll be happy to clarify.

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1  
Why do you ask people not edit your posts? –  David B Jul 23 '12 at 3:33
    
Because 99.9% of the time I have to revert them back so they regain the intended meaning instead of how someone else wants the question to be asked instead of posting their own interpretation in their own question. E.g. if I ask a KDE question someone will edit it to be Gnome related and the questions/answers are totally different. –  John Jul 23 '12 at 3:34
4  
@John. It just defeats the purpose of SO. I doubt editors will change "KDE" to "Gnome" for no reason. –  elclanrs Jul 23 '12 at 3:38
    
@elclanrs Too many edits have resulted in too many people answering based on someone else's question thereby defeating the purpose of me posting it. –  John Jul 23 '12 at 3:43
3  
SO also includes some wiki features, so if someone has the right to edit your question or someone without that privilege suggests an edit and it gets approved by peer-review, it'll be done for the better of our readers. Keep in mind that questions should hold meaning to future readers, and not only to the questioner. Now, if someone somehow disrupts the meaning of your post, you can easily @ them and rollback it, contacting a Mod if necessary. No need to put "don't edit my post please" in your question, people whom try to make that kind of edit will either be rejected or taken care of. –  Fabrício Matté Jul 23 '12 at 3:44

3 Answers 3

up vote 2 down vote accepted

It works fine (http://jsfiddle.net/zerkms/Rr4Yy/) if you don't escape parentheses:

'foo!bar!baz!'.replace(/([!.?])/g,'$1\n')

in your code there are escape characters:

var d = c.textContent.replace(/\([!.?]\)/g,'$1\n');
                               ^------^----- ???
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That worked and your explanation was visually helpful, thank you. –  John Jul 23 '12 at 3:48

You probably want:

var d = c.textContent.replace(/([!.?])/g,'$1\n');

The \( in bash extended regex is equivalent to ( in Perl Compatible Regex and its dialects (Javascript implements a subset of PCRE).

Back reference in the replace string is $<number> in Javascript regex. I remember some other language allow \<number> for back-reference, but check the reference for the language in which you use the regex - the language may have slight difference that makes a regex works or breaks.

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var d = c.textContent.replace(/\([!.?]\)/g,'$1\n');

I can see a problem here: Your $1 refers to the first bracketed section within your regular expression. However, your regular expression has no bracketed sections. There are some literal bracket characters, however, in the regular expression (see \( and \), which would match the literal bracket ( and ) respectively, in your input). Perhaps you didn't mean for these to be literals.

How to fix it depends on if you are looking for (!), (.), or (?), or if you are really just looking for !, ., or ?. Either way, you probably want to replace $1 with $&, since you don't actually need bracketed sections if you want to refer to the entire matching text.

The following should insert a line break after (!), (.), or (?)

c.textContent.replace(/\([!.?]\)/g,'$&\n');

The following should insert a line break after !, ., or ?

c.textContent.replace(/[!.?]/g,'$&\n');

More information about how this works here

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1  
This produced (using an alert to show the output)... c = [object HTMLParagraphElement] d = oh hai$0 How are you$0 That's nice$0 Look$0 –  John Jul 23 '12 at 3:50
    
Whoops, fixed. I was using $0 when I should have been using $&. Sorry about that. –  thomasrutter Jul 23 '12 at 4:06

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