41

I want to strip leading and trailing quotes, in Ruby, from a string. The quote character will occur 0 or 1 time. For example, all of the following should be converted to foo,bar:

  • "foo,bar"
  • "foo,bar
  • foo,bar"
  • foo,bar
1

9 Answers 9

45

You could also use the chomp function, but it unfortunately only works in the end of the string, assuming there was a reverse chomp, you could:

'"foo,bar"'.rchomp('"').chomp('"')

Implementing rchomp is straightforward:

class String
  def rchomp(sep = $/)
    self.start_with?(sep) ? self[sep.size..-1] : self
  end
end

Note that you could also do it inline, with the slightly less efficient version:

'"foo,bar"'.chomp('"').reverse.chomp('"').reverse

EDIT: Since Ruby 2.5, rchomp(x) is available under the name delete_prefix, and chomp(x) is available as delete_suffix, meaning that you can use

'"foo,bar"'.delete_prefix('"').delete_suffix('"')
4
  • 1
    Interesting approach. I expected someone to provide an answer involving array indices [0] and [-1], but had forgotten about chomp, an obviously better solution. I think your answer is better than mine. Aug 12, 2010 at 14:54
  • rchomp and lchomp should be required functions, damn it!
    – Henley
    Aug 16, 2013 at 2:40
  • 1
    delete_suffix and delete_prefix methods are there, perhaps they were not present when this answer was written
    – Sundeep
    Sep 13, 2018 at 9:25
  • @Sundeep thanks for pointing that out. I have added it to the answer.
    – grddev
    Sep 20, 2018 at 8:04
42

I can use gsub to search for the leading or trailing quote and replace it with an empty string:

s = "\"foo,bar\""
s.gsub!(/^\"|\"?$/, '')

As suggested by comments below, a better solution is:

s.gsub!(/\A"|"\Z/, '')
4
  • 7
    A couple of hints: there is no need to escape the quotes in the Regexp, since quotes don't have any special meaning in Regexp s anyway. Also, ^ and $ do not anchor to the beginning and end of the string, they anchor to the beginning and end of the line. It's not clear from your question which one of the two you want: if you want to remove quotes from the beginning and end of the string, you need to use \A and \Z instead. Lastly, you can get rid of the escapes for the double quotes (and the confusing double double quotes) by delimiting your string with single quotes. Aug 10, 2010 at 20:51
  • 1
    Altogether, it looks like this: ` s = '"foo,bar"'; s.gsub!(/\A"|\Z"$/, '') ` (I forgot: there's also no need to make the match optional. If it doesn't match, then simply nothing will get replaced.) Aug 10, 2010 at 20:54
  • 3
    @Jörg, don't you mean s.gsub!(/\A"|"\Z/, '')?
    – grddev
    Aug 10, 2010 at 20:57
  • @grddev: Yes, of course. This comment box makes a terrible IDE :-) Aug 10, 2010 at 21:12
26

As usual everyone grabs regex from the toolbox first. :-)

As an alternate I'll recommend looking into .tr('"', '') (AKA "translate") which, in this use, is really stripping the quotes.

4
  • 24
    Assuming there are no " in the middle of the string.
    – grddev
    Aug 11, 2010 at 6:26
  • 1
    According to the examples given by the OP there are only leading/trailing double-quotes so it's a safe assumption. Aug 12, 2010 at 3:58
  • 6
    It's not a safe assumption, but I didn't specifically state that there could be a quote inside the string. Nevertheless, it's a good answer and one most definitely worth my +1. Aug 12, 2010 at 14:53
  • 3
    <pedantry>He specified "a string". Strings can contain arbitrary characters, including quotes.</pedantry> Oct 11, 2012 at 23:47
10

Another approach would be

remove_quotations('"foo,bar"')

def remove_quotations(str)
  if str.start_with?('"')
    str = str.slice(1..-1)
  end
  if str.end_with?('"')
    str = str.slice(0..-2)
  end
end 

It is without RegExps and start_with?/end_with? are nicely readable.

3

It frustrates me that strip only works on whitespace. I need to strip all kinds of characters! Here's a String extension that will fix that:

class String
  def trim sep=/\s/
    sep_source = sep.is_a?(Regexp) ? sep.source : Regexp.escape(sep)
    pattern = Regexp.new("\\A(#{sep_source})*(.*?)(#{sep_source})*\\z")
    self[pattern, 2]
  end
end

Output

'"foo,bar"'.trim '"'         # => "foo,bar"
'"foo,bar'.trim '"'          # => "foo,bar"
'foo,bar"'.trim '"'          # => "foo,bar"
'foo,bar'.trim '"'           # => "foo,bar"

'  foo,bar'.trim             # => "foo,bar"
'afoo,bare'.trim /[aeiou]/   # => "foo,bar"
3

Assuming that quotes can only appear at the beginning or end, you could just remove all quotes, without any custom method:

'"foo,bar"'.delete('"')
1
  • Any explanation on why this is being downvoted is greatly appreciated.
    – awendt
    May 3, 2018 at 7:07
3

I wanted the same but for slashes in url path, which can be /test/test/test/ (so that it has the stripping characters in the middle) and eventually came up with something like this to avoid regexps:

'/test/test/test/'.split('/').reject(|i| i.empty?).join('/')

Which in this case translates obviously to:

 '"foo,bar"'.split('"').select{|i| i != ""}.join('"')

or

'"foo,bar"'.split('"').reject{|i| i.empty?}.join('"')
1
  • 1
    This question is seven and a half years old. Way to go, adding an answer with a new approach! Well worth my +1. Mar 20, 2018 at 14:41
0

Regexs can be pretty heavy and lead to some funky errors. If you are not dealing with massive strings and the data is pretty uniform you can use a simpler approach.

If you know the strings have starting and leading quotes you can splice the entire string:

string  = "'This has quotes!'"
trimmed = string[1..-2] 
puts trimmed # "This has quotes!"

This can also be turned into a simple function:

# In this case, 34 is \" and 39 is ', you can add other codes etc. 
def trim_chars(string, char_codes=[34, 39])
    if char_codes.include?(string[0]) && char_codes.include?(string[-1])
        string[1..-2]
    else
        string
    end
end
2
  • Unfortunately, this does not answer the question posed. Apr 7, 2014 at 13:53
  • Regexes do not lead to some funky errors. Bad code leads to some funky errors.
    – zmilojko
    Jul 17, 2015 at 18:47
-1

You can strip non-optional quotes with scan:

'"foo"bar"'.scan(/"(.*)"/)[0][0]
# => "foo\"bar"
2
  • This fails for three of the examples given. Apr 10, 2017 at 17:13
  • 1
    Ah didn't notice the quotes were optional in your case. This will be helpful for someone with slightly different requirements though.
    – emlai
    Apr 10, 2017 at 18:19

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