88
str = "Hello☺ World☹"

Expected output is:

"Hello:) World:("

I can do this: str.gsub("☺", ":)").gsub("☹", ":(")

Is there any other way so that I can do this in a single function call?. Something like:

str.gsub(['s1', 's2'], ['r1', 'r2'])
4
  • 1
    Is there a reason why you want to do that in one call? I would prefer to stick with your first solution. Nov 15, 2011 at 7:08
  • 2
    @Semyon: The mapping table couple be large or it could be configured at run time. Nov 15, 2011 at 7:15
  • 1
    On a similar note, if you end up having a huge mapping table - you are basically looking at a templating language. You can, in that case, convert it into a DSL and write an interpreter (or compiler) for that.
    – Swanand
    Nov 15, 2011 at 7:28
  • I had expected String#tr to do the trick, but the replacements being multiple charcters means I can't use that. Nov 15, 2011 at 22:38

7 Answers 7

130

Since Ruby 1.9.2, String#gsub accepts hash as a second parameter for replacement with matched keys. You can use a regular expression to match the substring that needs to be replaced and pass hash for values to be replaced.

Like this:

'hello'.gsub(/[eo]/, 'e' => 3, 'o' => '*')    #=> "h3ll*"
'(0) 123-123.123'.gsub(/[()-,. ]/, '')    #=> "0123123123"

In Ruby 1.8.7, you would achieve the same with a block:

dict = { 'e' => 3, 'o' => '*' }
'hello'.gsub /[eo]/ do |match|
   dict[match.to_s]
 end #=> "h3ll*"
5
  • 1
    woah! I had no idea! great stuff!
    – kikito
    Nov 15, 2011 at 8:45
  • Cool, didn't know about that. Kind of a nicer version of Perl tr. Nov 15, 2011 at 15:30
  • Note that this is not the same as calling str.gsub(key, value) on every element of the hash. If something is matched by the regexp but doesn't have an entry in the hash, it will be deleted. Dec 5, 2013 at 19:34
  • 3
    @NarenSisodiya, actually it should be: '(0) 123-123.123'.gsub(/[()\-,. ]/, '') You need to add the escape character to '-'.
    – jpbalarini
    Aug 14, 2015 at 15:42
  • Yeah that line there is wrong: '(0) 123-123.123'.gsub(/[()-,. ]/, '') You either need to escape the dash or move it to the front.
    – Greg Blass
    Aug 16, 2016 at 15:47
42

Set up a mapping table:

map = {'☺' => ':)', '☹' => ':(' }

Then build a regex:

re = Regexp.new(map.keys.map { |x| Regexp.escape(x) }.join('|'))

And finally, gsub:

s = str.gsub(re, map)

If you're stuck in 1.8 land, then:

s = str.gsub(re) { |m| map[m] }

You need the Regexp.escape in there in case anything you want to replace has a special meaning within a regex. Or, thanks to steenslag, you could use:

re = Regexp.union(map.keys)

and the quoting will be take care of for you.

6
  • @steenslag: That's a nice modification. Nov 15, 2011 at 7:43
  • String#gsub accepts strings as the pattern parameter: "The pattern is typically a Regexp; if given as a String, any regular expression metacharacters it contains will be interpreted literally, e.g. '\\d' will match a backlash followed by ‘d’, instead of a digit.". Nov 15, 2011 at 22:40
  • @Andrew: Yeah but we have multiple strings to replace, hence the regex. Nov 15, 2011 at 22:48
  • what if the keys of the map are regex expressions? the replacement doesn't seem to work
    – content01
    Feb 10, 2014 at 23:30
  • @content01: Off the top of my head, I think you'd have to go one by one in that case: map.each { |re, v| ... } Feb 10, 2014 at 23:39
38

You could do something like this:

replacements = [ ["☺", ":)"], ["☹", ":("] ]
replacements.each {|replacement| str.gsub!(replacement[0], replacement[1])}

There may be a more efficient solution, but this at least makes the code a bit cleaner

6
  • 2
    Isn't it suppose to be replacements.each?
    – DanneManne
    Nov 15, 2011 at 7:01
  • 4
    This is just more complicated and slower.
    – SwiftMango
    Feb 25, 2013 at 6:28
  • 1
    The return value for each is the collection it was invoked upon. stackoverflow.com/questions/11596879/… Apr 9, 2013 at 23:39
  • 1
    to have it return the result and not change str: replacements.reduce(str){|str,replacement| str.gsub(replacement[0],replacement[1])}
    – artm
    May 12, 2013 at 20:30
  • 4
    @artm you can also do replacements.inject(str) { |str, (k,v)| str.gsub(k,v) } and avoid needing to do [0] and [1].
    – Ben Lings
    Feb 5, 2015 at 9:27
20

Late to the party but if you wanted to replace certain chars with one, you could use a regex

string_to_replace.gsub(/_|,| /, '-')

In this example, gsub is replacing underscores(_), commas (,) or ( ) with a dash (-)

1
  • 4
    this would be even better like this: string_to_replace.gsub(/[_- ]/, '-')
    – Automatico
    Oct 26, 2013 at 10:49
8

Another simple way, and yet easy to read is the following:

str = '12 ene 2013'
map = {'ene' => 'jan', 'abr'=>'apr', 'dic'=>'dec'}
map.each {|k,v| str.sub!(k,v)}
puts str # '12 jan 2013'
6

You can also use tr to replace multiple characters in a string at once,

Eg., replace "h" to "m" and "l" to "t"

"hello".tr("hl", "mt")
 => "metto"

looks simple, neat and faster (not much difference though) than gsub

puts Benchmark.measure {"hello".tr("hl", "mt") }
  0.000000   0.000000   0.000000 (  0.000007)

puts Benchmark.measure{"hello".gsub(/[hl]/, 'h' => 'm', 'l' => 't') }
  0.000000   0.000000   0.000000 (  0.000021)
3

Riffing on naren's answer above, I'd go with

tr = {'a' => '1', 'b' => '2', 'z' => '26'}
mystring.gsub(/[#{tr.keys}]/, tr)

So 'zebraazzeebra'.gsub(/[#{tr.keys}]/, tr) returns "26e2r112626ee2r1"

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