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Example input string:

(F1 (F2 X (Y) Z) (F3 A B)

What i want to match: \w+ that is not preceded by a ( unless also followed by )
In this case: X, Y, Z, A, and B

A temporary work-around for now (which I know will give me issues later) is /\(\w+\)| \w+/, but as it also matches whitespaces, it will cause problems further down the road, especially when it gets to the point of substituting the matches.

I have done some experimenting in the area of negative lookbehind in the form of:

/(?!=\()\w+/

...but i can't seem to find a way of combining it with "not preceeded by ("

Just to be clear:

  • The matches in this case are all single letter, but actual data may be multiple characters and may not even be alphanumeric.
  • No whitespaces or parentheses can be a part of the returned match.
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1  
I think you need a parser for this, but my regex-fu is weak so someone else might know a way –  Seth Carnegie Jan 16 '12 at 3:55
    
So you want to validate parenthesis? –  Dave Jan 16 '12 at 3:59
    
solved by Joseph Silber: (?<= )\w+(?=[ )])|(?<=()\w+(?=)) –  Jarmund Jan 16 '12 at 4:15
3  
If this is related to lisp in that you want to do some processing of lisp data, then using such regexps is generally not going to be a good idea unless you know that the data is very well behaved (for example, no strings, no symbols with weird characters in them like parens, no redundant whitespaces, etc etc). –  Eli Barzilay Jan 16 '12 at 5:28

5 Answers 5

up vote 2 down vote accepted

Try this:

(?<=[ (])\w(?=[ )])

See it here in action: http://regexr.com?2vnri


Actually, this might be what you are looking for:

(?<= )\w+(?=[ )])|(?<=\()\w+(?=\))

See it here in action: http://regexr.com?2vnro

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That one did the trick. Cheers! –  Jarmund Jan 16 '12 at 4:02
    
@ikegami - Are you referring to the first or the second one? –  Joseph Silber Jan 16 '12 at 4:05
    
Fails for (f a b) –  ikegami Jan 16 '12 at 4:06
    
@ikegami - Why do you say that? –  Joseph Silber Jan 16 '12 at 4:07
1  
@Joseph Silber, I never said anything about your second regex. There was only one when I commented –  ikegami Jan 16 '12 at 4:18
/(?<! [(\w] (?! \w+ \) ) ) \w+/x

or

/(?<! [(\w] ) \w+ | (?<= \( ) \w+ (?= \) )/x
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This one does not obey the "Not preceeded by (", and therefore also matches F1, F2, and F3, which is what i'm trying to avoid. –  Jarmund Jan 16 '12 at 4:03
    
@jarmund, Adjusted to work with your example contrary to your description –  ikegami Jan 16 '12 at 4:10
    
@jarmund uh no, even before my change, it didn't match F1, F2 and F3. (It did match 1, 2 and 3, though.) –  ikegami Jan 16 '12 at 4:12

There's a great writeup for matching parenthases with a perl regular expression at: Matching math expression with regular expression? However, It's not recomended for any sort of maintainable code. Regular code to do this; however is easy: (psudeocode below)

match=true; 
while(match && ch=getchar())
    if(ch==')')
        pop() or match=false
    else if(ch=='(')
        push(ch);
    else if(!isalphanum(ch) &&  ch=!' ')
        match=false;
if(match)
   match=pop()
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Instead of trying to combine the conditions into a regex, you can also simply use a substitution to remove those known to be wrong:

my $str = "(F1 (F2 X (Y) Z) (F3 A B)";
$str =~ s/\(\w+(?![)\w])//g;

I.e. any opening parentheses, followed by alphanumerics, not followed by closing parenthesis or more alphanumerics.

Then it's a simple matter to extract the alphanumerics:

my @items = $str =~ /\w+/g;
say for @items;
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An alternate method using alternation and lookahead/behind. This way we can match either a parenthesised token or a token which is not preceded by a parenthesis

perl -e '$string="(F1 (F2 X (Y) Z) (F3 A B)";
@params=$string=~/((?<=\()\w+(?=\))|(?<![(\w])\w+)(?!\w)/g;
print join(",",@params),"\n";'

X,Y,Z,A,B
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