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I am facing an issue when trying to apply the following regular expression:

(1234).*?(abcd)?

To the below string:

1234567abcd

My expectation is that the above should produce two matches:

  1. 1234
  2. abcd

However, this does not work. You might suggest "well, just remove the trailing ? character?" -- but I want this second pattern to be optional.

How is this done?

To reiterate:

(1234).*?(abcd)

... gives the desired result, but my searched string won't always contain abcd.

In case anyone is wondering, this is a simplified example of the bigger picture problem. I'll explain that if needed.

====

I think this problem needs additional clarification. Here is a more complete example of what I am trying to do, in ruby.

Given the following two "doctored up" lines from my logfile:

Aug 28 00:00:05 app-system-1 app-prod[7660]: Completed 200 OK in 150ms (Views: 24.6ms | ActiveRecord: 66.1ms)
Aug 28 00:05:06 app-system-1 app-prod[10639]: Completed 302 Found in 81ms (ActiveRecord: 74.6ms)

I have tried to compile a regex in ruby as follows:

d=Regexp.new('(?<timestamp>\w{1,3}\s\d{1,2}\s\d\d:\d\d:\d\d).*(?<in>in [0-9]*).*(?<views>Views: [0-9]*).*(?<activerecord>ActiveRecord: [0-9]*)')

Obviously in some cases the the 'views' text will be included, in other rows, it is not present.

I want to be able to do something like:

v=d.match(line)
if !v.nil?
    puts v[:timestamp]+ " " + v[:in] + " " + v[:views] + " " + v[:activerecord]

This is obviously an incomplete example but hopefully this clarifies.

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5 Answers

You didn't specify what you want, at least not clearly, but I think you want the following:

  • When given ...1234567abcd... as input, 1234567abcd should be matched, and 1234 and abcd should be captured.
  • When given ...1234567abce... as input, 1234 should be matched, 1234 should be captured.

If so, you can use:

/(1234)(?:.*?(abcd))?/s

I hate using the greediness modifier. It's used to avoid matching certain sequences, but there's no guarantee that it won't. I'd use the following instead:

/
   (1234)
   (?:
      (?:(?!abcd).)*    # Safer than .*?
      (abcd)
   )?
/sx
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I added some more clarification to the 'problem' at hand in my original problem statement. I think you probably are on the right track to helping me solve this. Can you take a look above? :) Thanks! –  user1267616 Aug 31 '12 at 4:00
    
You should really do it in steps. 1) extract the parens, then 2) split the contents on " | ", then 3) split the key from the value. –  ikegami Aug 31 '12 at 4:13
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Anchoring the regular expression works:

/(1234).*?(abcd)?$/
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Similar to ikegami but simpler I think:

/(1234)(?:(?!abcd).)*(abcd)?/
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Because (a|) is roughly equivalent to (a)? we can use:

(1234).*?(abcd|)

To force the regex engine to inspect the abcd first. The default for an optional rule with ? is to assume it is absent (that is equivalent to (|abcd)). This default behaviour is important to ensure that the regex terminates (faster).

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2  
No, (a|) is effectively the same as (a)?. It will match anywhere because it can always match nothing. –  Alan Moore Aug 31 '12 at 2:27
    
uh, that doesn't change anything. Like (?:a|), a? tries to match "a" before it tries to match "". –  ikegami Aug 31 '12 at 2:28
    
in perl, ? prefers to match rather than not match, equivalent to {0,1}. ?? is the version that prefers not matching, equivalent to {0,1}?. I would be interested to hear it if this is not true in python or ruby (the other languages indicated in the tags). –  ysth Aug 31 '12 at 3:55
    
@Alan Moore: in perl, (a|) and (a)? differ only in that the former can capture a or an empty string while the latter can capture a or undef. This is a subtle difference, but a difference nonetheless. –  ysth Aug 31 '12 at 3:59
1  
@ysth: I know. I just meant, like you and @ikegami, that ? is not non-greedy. (That applies to Python, Ruby, and every other flavor I'm familiar with, BTW. PHP has the /U modifier which makes all quantifiers non-greedy, but greedy is the default.) Furthermore, greediness or non-greediness is not relevant; what matters is that (a|)--just like (a)?--will match wherever it's applied because it can match nothing. –  Alan Moore Aug 31 '12 at 4:46
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You should really do it in steps.

if (my ($ts, $dur, $breakdown) = /
   ^
   (\w{3}[ ]\d{1,2}[ ]\d\d:\d\d:\d\d)
   .*?
   in[ ]([0-9]*)ms
   .*?
   \( ([^()]*) \)
/xs) {
   my %breakdown = map /^([^:]+): (.*)ms/, split /\s*\|\s*/, $breakdown;
   say join ', ',
      $ts,
      $dur,
      $breakdown{Views} // '--',
      $breakdown{ActiveRecord} // '--';
}
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