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I'm trying to parse (in Ruby) what's effectively the UNIX passwd file-format: comma delimiters, with an escape character \ such that anything escaped should be considered literally. I'm trying to use a regular expression for this, but I'm coming up short — even when using Oniguruma for lookahead/lookbehind assertions.

Essentially, all of the following should work:

a,b,c    # => ["a", "b", "c"]
\a,b\,c  # => ["a", "b,c"]
a,b,c\
d        # => ["a", "b", "c\nd"]
a,b\\\,c # => ["a", "b\,c"]

Any ideas?

The first response looks pretty good. With a file containing

\a,,b\\\,c\,d,e\\f,\\,\
g

it gives:

[["\\a,"], [","], ["b\\\\\\,c\\,d,"], ["e\\\\f,"], ["\\\\,"], ["\\\ng\n"], [""]]

which is pretty close. I don't need the unescaping done on this first pass, as long as everything splits correctly on the commas. I tried Oniguruma and ended up with (the much longer):

Oniguruma::ORegexp.new(%{
  (?:       # - begins with (but doesn't capture)
    (?<=\A) #   - start of line
    |       #   - (or) 
    (?<=,)  #   - a comma
  )

  (?:           # - contains (but doesn't capture)
    .*?         #   - any set of characters
    [^\\\\]?    #   - not ending in a slash
    (\\\\\\\\)* #   - followed by an even number of slashes
  )*?

  (?:      # - ends with (but doesn't capture)
    (?=\Z) #   - end of line
    |      #   - (or)
    (?=,)) #   - a comma
  },

  'mx'
).scan(s)
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2 Answers 2

up vote 3 down vote accepted

Try this:

s.scan(/((?:\\.|[^,])*,?)/m)

It doesn't translate the characters following a \, but that can be done afterwards as a separate step.

share|improve this answer
    
Very nice, but it doesn't change the escaped characters to literal characters as the OP wanted. Which probably can't be done in a regex. –  Tim Pietzcker Feb 12 '10 at 21:06
    
I think this modification works, and doesn't capture the trailing commas themselves: s.scan(/((?:\\.|[^,])*),?/m) –  Stephen Touset Feb 13 '10 at 15:20
    
s.scan /((?:\\.|[^,])*)[,\n$]/mx seems to be a little more robust. –  Stephen Touset Feb 13 '10 at 15:34

I'd give the CSV class a try.

And a regex solution (hack?) might look like this:

#!/usr/bin/ruby -w

# contents of test.csv:
#   a,b,c
#   \a,b\,c
#   a,b,c\
#   d
#   a,b\\\,c

file = File.new("test.csv", "r")
tokens = file.read.scan(/(?:\\.|[^,\r\n])*|\r?\n/m)
puts "-----------"
tokens.length.times do |i|
  if tokens[i] == "\n" or tokens[i] == "\r\n"
    puts "-----------"
  else
    puts ">" + tokens[i] + "<"
  end
end
file.close

which will produce the output:

-----------
>a<
>b<
>c<
-----------
>\a<
>b\,c<
-----------
>a<
>b<
>c\
d<
-----------
>a<
>b\\\,c<
-----------
share|improve this answer
    
If you squint at this the right way, it kinda looks like CSV. It's not, of course, but if you're lucky you can convince the csv library that it is. –  Jörg W Mittag Feb 12 '10 at 21:51
    
The CSV class is too slow for what I need, unfortunately. –  Stephen Touset Feb 13 '10 at 16:41
    
I am pretty sure a regex solution will be slower than a (CSV) parser. –  Bart Kiers Feb 13 '10 at 17:42

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