Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a regex that gives me one result in sed but another in Perl (and Ruby).

I have the string one;two;;three and I want to highlight the substrings delimited by the ;. So I do the following in Perl:

$a = "one;two;;three";
$a =~ s/([^;]*)/[\1]/g;
print $a;

(Or, in Ruby: print "one;two;;three".gsub(/([^;]*)/, "[\\1]").)

The result is:

[one][];[two][];[];[three][]

(I know the reason for the spurious empty substrings.)

Curiously, when I run the same regexp in sed I get a different result. I run:

echo "one;two;;three" | sed -e 's/[^;]*/[\0]/g'

and I get:

[one];[two];[];[three]

What is the reason for this different result?

EDIT:

Somebody replied "because sed is not perl". I know that. The reason I'm asking my question is because I don't understand how sed copes so well with zero-length matches.

share|improve this question
    
Hm, possibly because the delimiters are eaten up. My alternative fails in Perl too, although less so: $ perl x.pl [one];[two];[];[three][] $ cat x.pl $a = "one;two;;three"; $a =~ s/([^;]*)(;|$)/[\1]\2/g; print $a."\n"; –  mirabilos Dec 23 '13 at 13:52
3  
sed doesn't "cope ... well with zero-length matches" - it gets it wrong in a way that happens to do what you need. Write join ';', map "[$_]", split /;/, $str instead and don't use a as an identifier. –  Borodin Dec 23 '13 at 13:56
3  
@NiccoloM. Are you saying that people who read the Perl tag are not open-minded? What a completely unfair and unjustified thing to say. –  TLP Dec 23 '13 at 15:05
2  
@TLP: I read it more as "people who don't normally use perl, but see something tagged with [perl] may pre-judge the content solely based on the tag." –  Joe Z Dec 23 '13 at 17:12
1  
@mirabilos: $a and $b are used by perl for sorting: perldoc.perl.org/functions/sort.html It's just good perl practice to avoid using them in other contexts. –  Nick Dec 23 '13 at 20:03
show 7 more comments

3 Answers 3

up vote 2 down vote accepted

From the source code for sed-4.2 for the substitute function:

   /sed/execute.c
  /* If we're counting up to the Nth match, are we there yet?
     And even if we are there, there is another case we have to
 skip: are we matching an empty string immediately following
     another match?

     This latter case avoids that baaaac, when passed through
     s,a*,x,g, gives `xbxxcx' instead of xbxcx.  This behavior is
     unacceptable because it is not consistently applied (for
     example, `baaaa' gives `xbx', not `xbxx'). */

This indicates that the behavior we see in Ruby and Perl was consciously avoided in sed. This is not due to any fundamental difference between the languages but a result of special handling in sed

share|improve this answer
    
Thank you. That's an exact answer. The article Zero-Length Regex Matches explains the three ways to cope with zero-Length matches. The third way is to "skip zero-length matches at the position where the previous match ended, so you can never have a zero-length match immediately adjacent to a non-zero-length match," which you've just proved is what sed does. –  Niccolo M. Dec 24 '13 at 14:03
    
sed is not alone. I tested python even vim's regex. all gave same result as sed's. –  Kent Dec 27 '13 at 23:58
add comment

This is an interesting and surprising edge case.

Your [^;]* pattern may match the empty string, so it becomes a philosophy question, viz., how many empty strings are between two characters: zero, one, or many?

sed

The sed match clearly follows the philosophy described in the “Advancing After a Zero–Length Regex Match” section of “Zero–Length Regex Matches.”

Now the regex engine is in a tricky situation. We’re asking it to go through the entire string to find all non–overlapping regex matches. The first match ended at the start of the string, where the first match attempt began. The regex engine needs a way to avoid getting stuck in an infinite loop that forever finds the same zero-length match at the start of the string.

The simplest solution, which is used by most regex engines, is to start the next match attempt one character after the end of the previous match, if the previous match was zero–length.

That is, zero empty strings are between characters.

The above passage is not an authoritative standard, and quoting such a document instead would make this a better answer.

Inspecting the source of GNU sed, we see

/* Start after the match.  last_end is the real end of the matched
   substring, excluding characters that were skipped in case the RE
   matched the empty string.  */
start = offset + matched;
last_end = regs.end[0];

Perl and Ruby

Perl’s philosophy with s///, which Ruby seems to share—so the documentation and examples below use Perl to represent both—is there is exactly one empty string after each character.

The “Regexp Quote–Like Operators” section of the perlop documentation reads

The /g modifier specifies global pattern matching—that is, matching as many times as possible within the string.

Tracing execution of s/([^;]*)/[\1]/g gives

  1. Start. The “match position,” denoted by ^, is at the beginning of the target string.

     o n e ; t w o ; ; t h r e e
    ^
    
  2. Attempt to match [^;]*.

     o n e ; t w o ; ; t h r e e
          ^
    

    Note that the result captured in $1 is one.

  3. Attempt to match [^;]*.

     o n e ; t w o ; ; t h r e e
          ^
    

    Important Lesson: The * regex quantifier always succeeds because it means “zero or more.” In this case, the substring in $1 is the empty string.

The rest of the match proceeds as in the above.

Being a perceptive reader, you now ask yourself, “Self, if * always succeeds, how does the match terminate at the end of the target string, or for that matter, how does it get past even the first zero–length match?”

We find the answer to this incisive question in the “Repeated Patterns Matching a Zero–length Substring” section of the perlre documentation.

However, long experience has shown that many programming tasks may be significantly simplified by using repeated subexpressions that may match zero–length substrings. Here’s a simple example being:

@chars = split //, $string; # // is not magic in split
($whitewashed = $string) =~ s/()/ /g; # parens avoid magic s// /

Thus Perl allows such constructs, by forcefully breaking the infinite loop. The rules for this are different for lower–level loops given by the greedy quantifiers *+{}, and for higher-level ones like the /g modifier or split operator.

The higher–level loops preserve an additional state between iterations: whether the last match was zero–length. To break the loop, the following match after a zero–length match is prohibited to have a length of zero. This prohibition interacts with backtracking … and so the second best match is chosen if the best match is of zero length.

Other Perl approaches

With the addition of a negative lookbehind assertion, you can filter the spurious empty matches.

  $ perl -le '$a = "one;two;;three";
              $a =~ s/(?<![^;])([^;]*)/[\1]/g;
              print $a;'
  [one];[two];[];[three]

Apply what Mark Dominus dubbed Randal’s Rule, “Use capturing when you know what you want to keep. Use split when you know what you want to throw away.” You want to throw away the semicolons, so your code becomes more direct with

$ perl -le '$a = "one;two;;three";
            $a = join ";", map "[$_]", split /;/, $a;
            print $a;'
[one];[two];[];[three]
share|improve this answer
    
I just edited your answer to include the section about higher-level loops (/g and split) instead of lower-level loops (*+{}), but now I'm not sure if that was appropriate since both types are in play here. Feel free to rollback. –  ThisSuitIsBlackNot Dec 23 '13 at 23:02
    
@ThisSuitIsBlackNot Yours is the better choice. Thanks for improving the answer. See update. –  Greg Bacon Dec 23 '13 at 23:35
    
Thank you for the investigative work! The article you linked to is invaluable: it helped me understand things. But I have to award the Best Answer to @tihom because he pinpointed the reason. (BTW, reading that article I see that Ruby is different than Perl; They discuss matching /\d*|x/ on "x1". Ruby uses "[T]he simplest solution" whereas Perl uses "[T]he other solution".) –  Niccolo M. Dec 24 '13 at 14:00
    
Item 3 Attempt to match [^;]*. makes no sense. You can't have an RE that matches "everything except a ;" and then have something in between "everything before the ;" and ";". Any perceived null string before the ; is part of the string that matches everything before the ;. The RE [^;]* matches "zero or more characters that are not ;` it doesn't mean zero or more character that are neither ; nor the null string. –  Ed Morton Dec 24 '13 at 21:32
    
@EdMorton Perhaps it doesn't make sense, but that's exactly what Perl does. Run perl -Mre=debug -e '$_ = "one;two;;three"; s/([^;]*)/[$1]/g' to see for yourself. Although it's a slightly different case, ikegami gives a nice explanation for how this works with zero-length lookarounds here. –  ThisSuitIsBlackNot Dec 25 '13 at 0:07
show 1 more comment

There's something else going on in the perl (and presumably ruby) scripts as that output makes no sense for simply handling the regexp as a BRE or ERE.

awk (EREs) and sed (BREs) behave as they should for just doing an RE replacement:

$ echo "one;two;;three" | sed -e 's/[^;]*/[&]/g'
[one];[two];[];[three]

$ echo "one;two;;three" | awk 'gsub(/[^;]*/,"[&]")'
[one];[two];[];[three]

You said I know the reason for the spurious empty substrings.. Care to clue us in?

share|improve this answer
    
As for "the reason for the the spurious empty substrings": Run echo aaaa | sed -e 's/q*/[&]/' to see a simple case. These are "zero-length matches" (see 1st link at answer by @Greg Bacon). Regular expressions have two basic rules: (1) match as early as possible, (2) match the longest run (unless we're non-greedy). /q*/ (above) matches because it is the earliest match. –  Niccolo M. Dec 24 '13 at 14:14
    
I understand zero length matches. I do not see any in the posted text and associated RE. one matches [^;]*. There is no additional zero-length match after it. If there were, there would ALWAYS be an infinite number of zero-length matches before and after every matching RE. –  Ed Morton Dec 24 '13 at 21:28
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.