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I am trying to make a regular expression that will match:

((11 3) (96 15) (2 3) )

So far I have:

([^(|^)| |[A-Za-z])+

But it only captures the 11 and not the rest. Also the string is a lot longer I just used a small piece of it so it repeats with the same format but different numbers. This what I have thus far for the program at least part of it:

regex expression("([^(|^)| |[A-Za-z])+");
string line2 = "((11 3) (96 15) (2 3) )";
if(regex_match(line2, expression))
    cout << "yes";
else
    cout << "no";
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For one, I see you open a class 3 characters in on your RegEx, but never close it. Either use a group with pipes (e..g (Peter|Paul) for Peter or Paul) or use a class (e.g. [AB] for A or B) when you want scenarios that have multiple paths. –  Brad Christie Jul 11 '11 at 17:11
    
Also, what exactly are the patterns you are looking to match? Neither the demo nor the sample give me a comfortable indication of what you're trying to accomplish. –  Brad Christie Jul 11 '11 at 17:12
    
Tsk. This one is a difficult one to rename as part of the current barbarian war against dodgy regex question titles. But I've had a go anyway. –  razlebe Jul 11 '11 at 17:14
    
Okay I appreciate all of you guys responses but I am reading it in a string because some of the second numbers are sometimes words for example it could be ((11 skin) (96 big) (2 hope) ) or something like that but the pattern stays the same in terms of spacing and parenthesis. For example, ((11 skin) (96 big) (2 hope) )((11 3) (96 15) (2 3) )((20 3) (4 1) (20 30) ). What is in the parenthesis only change –  Cornelius Myles Jul 11 '11 at 17:31
    
I just need to capture the first numbers like 11 96 2 11 96 2 202 4 20 –  Cornelius Myles Jul 11 '11 at 17:32

3 Answers 3

You have numbers in your example string, but are using letters in your regex, was that intended? I suppose I would use a regex something like this:

\((\([0-9]+ [0-9]+\) )+\)

If we break it down, here's my thought process:

\(     // start with a literal "("
(      // create a group
\(     // another literal "("
[0-9]+ // one or more digits
       // a space (hard to spell out here
[0-9]+ // one or more digits
       // a space (hard to spell out here
\)     // a litteral ")" to match the opening
)      // close the group
+      // group must repeat one or more times
\)     // final closing ")"

EDIT: OK, since you say that sometimes the second numbers aren't numbers, then we can easily adjust the regex to look something like this:

\((\([0-9]+ [A-Za-z0-9]+\) )+\)

if you need to avoid mixing letters and numbers, you can do this:

\((\[0-9]+ ([A-Za-z]+|[0-9]+)\) )+\)
share|improve this answer
1  
As an aside, you can use \d instead of the [0-9] and (possibly) \s instead of the space (if that's acceptable to OP). –  Brad Christie Jul 11 '11 at 17:14
    
@Brad: good point, if available he should use those for simplicity. –  Evan Teran Jul 11 '11 at 17:15
    
thank you this helps –  Cornelius Myles Jul 11 '11 at 17:40

Let's build your expression "from the ground up".

Keeping in mind your final goal to match ((11 3) (96 15) (2 3) ), we shall start with matching a much simpler pattern, and advance one step at a time:

\d        matches "1"
\d+       matches "11", or "3", or "96"
\d+ *\d+  matches "11 3" or "96 15"
\(\d+ *\d+\)           matches "(11 3)" or "(96 15)"
(\(\d+ *\d+\) *)*      matches "(11 3)(96 15) (2 3)"
\((\(\d+ *\d+\) *)*\)  matches "((11 3) (96 15) (2 3) )"

Note: I have not tested this answer. I relied upon the Boost.Regex documentation to develop this answer.

share|improve this answer
    
I'm not gonna down-vote or anything, but how is this significantly different from my answer given almost 15 minutes earlier? –  Evan Teran Jul 11 '11 at 17:28
    
thank you this helps –  Cornelius Myles Jul 11 '11 at 17:40
    
@Evan - They are substantially the same, but for the explanation. I didn't notice your answer when I started composing mine. I'll delete this one soon enough. –  Robᵩ Jul 11 '11 at 17:43
2  
@Rob, I don't think you should delete it. It could help someone later on learn about building regexs. –  Dirk Jul 11 '11 at 17:49
    
@Dirk, agreed. No need to delete it. –  Evan Teran Jul 11 '11 at 17:59

I solved this recently when trying to match syntax similar to 1-4,5,9,20-25. The resulting regular expression is, admittedly, not simple:

/\G([0-9]++)(?:-([0-9]++))?+(?:,(?=[-0-9,]+$))?+/

This expression allowed me to collect all of the matches in the string, incrementally.

We can apply the same approach to your problem, but it's extremely difficult to both validate and match your given input. (I don't know how to do it. If someone else does, I'd like to see!) But you can validate the input separately:

/\(\s*(\s*((\s*\d+\s+\d+\s*)\)\s*)+\s*\)/

See Evan's answer for how it works. \d is equivalent to [0-9] and \s is equivalent to [\r\n\t ].

This is an incremental match to extract the numbers:

/\G\(?\s*(?:\(\s*(\d+)\s+(\d+)\s*\))(?:(?=\s*\(\s*\d+\s+\d+\s*\))|\s*\))/

It breaks down like so:

/\G     # matches incrementally. \G marks the beginning of the string or the beginning of the next match.
 \(?\s* # matches first open paren; safely ignores it and following whiespace if this is not the first match.
 (?:    # begins a new grouping - it does not save matches.
   \(\s* # first subgroup open paren and optional whitespace.
   (\d+) # matches first number in the pair and stores it in a match variable.
   \s+   # separating whitespace
   (\d+) # matches second number in the pair and stores it in a match variable.
   \s*\) # ending whitespace and close paren
 )      # ends subgroup
 (?:    # new subgroup
   (?=  # positive lookahead - this is optional and checks that subsequent matches will work.
     \s*\(\s*\d+\s+\d+\s*\)  # look familiar?
   )    # end positive lookahead
   |    # if positive lookahead fails, try another match
   \s*\)\s* # optional ending whitespace, close paren
 )/     # ... and end subgroup.

I haven't tested this, but I'm confident it'd work. Each time you apply the expression to a given string, it'll extract each subsequent pair of numbers until it sees the last closing paren, and it'll consume the whole string, or stop if there's an input error. You may need to finesse it for Boost::regex. This is a Perl-compatible regular expression.

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