3

I have a string:

Ayy ***lol* m8\nlol"

I would like to not include the empty capture and produce:

["Ayy ", "**", "*", "lol", "*", " m8", "\n", "lol"]

I am splitting the string by this regex:

/(?x)(\*\*|\*|\n|[.])/

This produces:

["Ayy ", "**", "", "*", "lol", "*", " m8", "\n", "lol"]
  • Why not just remove all empty array items? Consecutive matches when splitting always produce empty array items. Rather than switch to matching rather than splitting, use rarr = arr.reject { |c| c.empty? } – Wiktor Stribiżew Jul 9 '18 at 16:51
  • I'd like to consider all possibilities before opting for the obvious, because that doesn't seem like the cleanest solution possible – faissaloo Jul 9 '18 at 16:55
  • And do you think re-vamping totally the pattern is a "clean" approach? Then please share what you have done so far. – Wiktor Stribiżew Jul 9 '18 at 16:56
  • I just came up with @unformated.scan(/(? x)(\*\*|\*|\n|[^\*\*|\*|\n]+)/) but I really dislike the redundancy – faissaloo Jul 9 '18 at 17:01
  • Ok, it is "close", but what you call redundancy is unavoidable. However, correct pattern is .scan(/(?x)\*{2}|[*\n.]|(?:(?!\*{2})[^*\n.])+/). As you see, removing empty array items is much cleaner. – Wiktor Stribiżew Jul 9 '18 at 17:03
3

When splitting with a regex containing capturing groups, consecutive matches always produce empty array items.

Rather than switch to a matching approach, use

arr = arr.reject { |c| c.empty? }

Or any other method, see How do I remove blank elements from an array?

Else, you will have to match the substrings using a regex that will match the deilimiters first and then any text that does not start the delimiter texts (that is, you will need to build a tempered greedy token):

arr = s.scan(/(?x)\*{2}|[*\n.]|(?:(?!\*{2})[^*\n.])+/)

See the regex demo.

Here,

  • (?x) - a freespacing/comment modifier
  • \*{2} - ** substring
  • | - or
  • [*\n.] - a char that is either *, newline LF or a .
  • | - or
  • (?:(?!\*{2})[^*\n.])+ - 1 or more (+) chars that are not *, LF or . ([^*\n.]) that do not start a ** substring.
5

Here is a simplified version of your regex, chained with a method to remove empty strings -- which is inevitably necessary here when using String#split, since there is an 'empty result' in the middle of '***':

string = "Ayy ***lol* m8\nlol"


string.split(/(\*{1,2}|\n|\.)/).reject(&:empty?)
  #=> ["Ayy ", "**", "*", "lol", "*", " m8", "\n", "lol"] 

A few differences from your pattern:

  • I have removed the (?x); this served no purpose. Extended patterns are useful for ignoring spaces and comments within the regex - neither of which you are doing here.
  • \*\*|\* can be simplified to \*{1,2} (or \*\*? if you prefer).
  • [.] is technically fine, but \. is one character shorter and in my opinion shows clearer intent.
  • I don't think think the extra step of removing empty strings is essential when using split. See my answer. – Cary Swoveland Jul 10 '18 at 5:24
1
r = /
    [ ]+    # match one or more spaces
    |       # or
    (\*)    # match one asterisk in capture group 1
    [ ]*    # match zero or more spaces
    (?!\*)  # not to be followed by an asterisk (negative lookahead)
    |       # or
    (\n)    # match "\n" in capture group 2
    /x      # free-spacing regex definition mode

str = "Ayy ***lol* m8\nlol"

str.split r
  #=> ["Ayy", "**", "*", "lol", "*", "m8", "\n", "lol"]
  • This solution does not guarantee there won't be empty items in the resulting array. See this Ruby demo. Also, I understand (\*)[ ]*(?!\*) is used to match any* that is not followed with * that may have any amount of spaces in between, right? If so, you need (\*)[ ]*+(?!\*) to avoid backtracking into [ ]+. – Wiktor Stribiżew Jul 10 '18 at 6:47
  • What happens if there are more than 3 consecutive *s? For example, if str = "Ayy ******lol* m8\nlol" then: str.split r #=> ["Ayy", "*****", "*", "lol", "*", "m8", "\n", "lol"]. Is that the desired behaviour? I'm not sure, but it's different to how OP's version would behave. – Tom Lord Jul 10 '18 at 9:38
  • @Wiktor, I've asked for clarification of the question. Regardless, can you elaborate on the need to change [ ]* to [ ]*+? (x*+ is new to me.) Also, omitting the plus sign seems to work here. Can you give an example where [ ]*+ works but [ ]* doesn't? – Cary Swoveland Jul 10 '18 at 17:23
  • @Tom, I've asked for clarification of the question. – Cary Swoveland Jul 10 '18 at 17:23
  • @CarySwoveland \* *(?!\*) will backtrack sooner or later, thus you should use possessive quantifiers in these cases. Or include the space into the lookahead, \* *(?![* ]). – Wiktor Stribiżew Jul 11 '18 at 6:29

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