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I have unfortunately wandered into a situation where I need regex using Ruby. Basically I want to match this string after the underscore and before the first parentheses. So the end result would be 'table salt'.

_____ table salt (1)   [F]

As usual I tried to fight this battle on my own and with rubular.com. I got the first part

^_____ (Match the beginning of the string with underscores ).

Then I got bolder,

^_____(.*?) ( Do the first part of the match, then give me any amount of words and letters after it )

Regex had had enough and put an end to that nonsense and crapped out. So I was wondering if anyone on stackoverflow knew or would have any hints on how to say my goal to the Ruby Regex parser.

EDIT: Thanks everyone, this is the pattern I ended up using after creating it with rubular.

ingredientNameRegex = /^_+([^(]*)/;

Everything got better once I took a deep breath, and thought about what I was trying to say.

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6 Answers 6

up vote 2 down vote accepted

Try this: ^[_]+([^(]*)\(

It will match lines starting with one or more underscores followed by anything not equal to an opening bracket: http://rubular.com/r/vthpGpVr4y

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1  
[_] is the same thing as _ –  pguardiario Jan 19 '12 at 2:42
    
this is true, i just added the character class for clarity –  James Shuttler Jan 19 '12 at 2:47
    
Note that you will want to call strip on your $1 result to remove leading and trailing whitespace. Also, IMHO adding unnecessary square brackets to the already-line-noise nature of regex adds complexity, not clarity. –  Phrogz Jan 19 '12 at 13:13
str = "_____ table salt (1)   [F]"
p str[ /_{3}\s(.+?)\s+\(/, 1 ]
#=> "table salt"

That says:

  • Find at least three underscores
  • and a whitespace character (\s)
  • and then one or more (+) of any character (.), but as little as possible (?), up until you find
  • one or more whitespace characters,
  • and then a literal (

The parens in the middle save that bit, and the 1 pulls it out.

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Here's working regex:

str = "_____ table salt (1)   [F]"
match = str.match(/_([^_]+?)\(/)
p match[1].strip # => "table salt"
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You could use

^_____\s*([^(]+?)\s*\(

^_____ match the underscore from the beginning of string

\s* matches any whitespace character

( grouping start
[^(]+ matches all non ( character at least once
? matches the shortest possible string (non greedy)
) grouping end

\s* matches any whitespace character

\( find the (

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You might want a strip on the result. –  Phrogz Jan 19 '12 at 1:50
    
@Phrogz added an edit –  cctan Jan 19 '12 at 2:15
    
You don't escape ( when it's inside [] –  pguardiario Jan 19 '12 at 2:41
    
@pguardiario bad habits, added edit –  cctan Jan 19 '12 at 3:23
 "_____ table salt (1) [F]".gsub(/[_]\s(.+)\s\(/, ' >>>\1<<< ')
 # => "____ >>>table salt<<< 1) [F]" 
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It seems to me the simplest regex to do what you want is:

/^_____ ([\w\s]+) /

That says: leading underscores, space, then capture any combination of word chars or spaces, then another space.

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