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My requirement is to match each line of a text file, including the line terminator of each, at most excluding the terminator of the last line, to take into account the crippled, non POSIX-compiant files generated on Windows; each line terminator can be either \n or \r\n.

And I'm looking for the best regex, performance-wise.

The first regex I could come up with is this:

\n|\r\n|[^\r\n]++(\r\n|\n)?

A few comments on it:

  • since three alternatives cannot match at the same place, I guess the order of the alternatives is irrelevant, regardless of the engine being a DFA or NFA;
  • the ++ instead of + should save some memory, but not some time, as backtracking shouldn't occur.

From Code Review, a suggestion was to use .*(\r?\n|$) (or [^\r\n]*(\r?\n|$), if . also matches \n o \r), but this has a flaw: it also matches the empty string at the end of the file.

That suggested regex can be improved like this:

(?=.).*(\r?\n)?

where the lookahead guarantees that there's at least one character matched by .* and (\r?\n)? together, which prevents the emtpy string at the end of the file from matching.

Which of the two regexes above should be better, performance-wise? Is there any other better way to match as per my requirements?

Please, if you use the ^/$ anchors or similar, comment about that, because their behavior is dependent on whether the engine considers them as multiline by default.

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  • Are you using PCRE regex library? If yes, you'd better use (?m)^.*$\R? – Wiktor Stribiżew Sep 18 '20 at 17:55
  • Woow, this seems nice! Yes, I think the regex library that I'm using is PCRE. I'll check tomorrow. However I'm pretty sure I verified that ^ ad $ are multiline by default, which is suspicious. – Enlico Sep 18 '20 at 18:11
  • ^ and $ are multiline in Ruby Onigmo, and also in C++. – Wiktor Stribiżew Sep 18 '20 at 19:10
  • @WiktorStribiżew which makes sense, as I'm in C++. – Enlico Sep 18 '20 at 19:36
  • So, are you using boost::regex? – Wiktor Stribiżew Sep 18 '20 at 20:06
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The best performance in regex is achieved when each subsequent pattern cannot match at the same locationin the string. . and \R are opposite patterns, . is used to match any char but line break chars, and \R is used to match any line break sequence.

In context of C++ Boost regex, where a . matches any char including line break chars and ^ and $ anchors are line (not string) "terminators", the pattern you may consider using is

(?-s)^(?!\z).*\R?

See the regex demo. Details:

  • (?-s) - turning singleline mode off, the . will now fail to match line break chars
  • ^ - start of a line (boost::regex syntax does not require (?m) to make ^ line-aware, it is the default behavior)
  • (?!\z) - a negative lookahead that fails the match if the current position is at the very end of string
  • .* - any zero or more chars other than line break chars, as many as possible (this pattern moves the regex index right at the end of the line)
  • \R? - an optional line break sequence.

Here is a C++ boost::regex demo:

#include <boost/regex.hpp>
#include <iostream>
#include <string>

int main()
{
  std::string text = "Line1\nLine2\r\nLine3\rLastLine\n";
  boost::regex expression(R"((?-s)^(?!\z).*\R?)");
  boost::smatch match;
  boost::sregex_token_iterator iter(text.begin(), text.end(), expression, 0);
  boost::sregex_token_iterator end;
  for( ; iter != end; ++iter ) {
   std::cout << "'" << *iter << "'" << std::endl;
  }
  return 0;
}

Output:

'Line1
'
'Line2
'
'Line3
'
'LastLine
'
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  • Would .*+instead of .*improve the regex' space and/or time performance? – Enlico Sep 19 '20 at 13:42
  • @EnricoMariaDeAngelis As I explained in the beginning, it should not be necessary as . and \R are opposite patterns and thus cannot match the same text at the same position. You surely can use .*+, it should not affect the peformance in theory in this case. – Wiktor Stribiżew Sep 19 '20 at 13:48
  • are you saying that even without the plus, the regex'engine will not save states for that piece of match? – Enlico Sep 19 '20 at 13:57
  • @EnricoMariaDeAngelis You may see how the regex works here, you can see there is no backtracking. – Wiktor Stribiżew Sep 19 '20 at 13:59
  • 1
    See Boost regex reference. – Wiktor Stribiżew Sep 21 '20 at 16:05

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