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Ruby 1.8.7. I'm using a regex with a ^ to match a pattern at the start of the string. The problem is that if the pattern is found at the start of any line in the string it still matches. This is the behaviour I would expect if I were using the 'm' modifier but I'm not:

$ irb
irb(main):001:0> str = "hello\ngoodbye"
=> "hello\ngoodbye"
irb(main):002:0> puts str
hello
goodbye
=> nil
irb(main):004:0> str =~ /^goodbye/
=> 6

What am I doing wrong here?

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4  
Great resource... rubular.com –  Tony Fontenot Nov 23 '10 at 14:47

4 Answers 4

up vote 10 down vote accepted

Use \A instead of ^.

http://www.zenspider.com/Languages/Ruby/QuickRef.html#12

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  • start of the line: ^
  • end of the line: $
  • start of the string: \A
  • end of the string: \z
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Your confusion is justified. In most regex flavors, ^ is equivalent to \A and $ is equivalent to \Z by default, and you have to set the "multiline" flag to make them take on their other meanings (i.e. line boundaries). In Ruby, ^ and $ always match at line boundaries.

To add to the confusion, Ruby has something it calls "multiline" mode, but it's really what everybody else calls "single-line" or "DOTALL" mode: it changes the meaning of the . metacharacter, allowing it to match line-separator characters (e.g. \r, \n) as well as all other characters.

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Which regex flavors have the behavior you describe? –  Wayne Conrad Nov 23 '10 at 16:32
    
@Wayne: All the other Perl-derivative flavors work that way: Perl, PHP, Python, JavaScript, Java, .NET... If it has a "multiline" mode, that's what it means: ^ becomes "start of line" and $ becomes "end of line". I'm not saying Ruby's approach is wrong, BTW; I just wish they hadn't mixed up the names like they did. The only flavor that really gets it right is Perl 6/Parrot, which eliminates "multiline" and "single-line" modes. –  Alan Moore Nov 23 '10 at 18:53
    
Yes, I'm used to regex in C and Perl which use ^ in the same way Ruby uses \A. I thought the C regex library was the 'definitive' one - clearly I was mistaken. Thanks for your answers. –  SteveRawlinson Nov 25 '10 at 11:32
    
This answer has been added to the Stack Overflow Regular Expression FAQ, under "Modifiers". –  aliteralmind Apr 10 at 0:52

"^" is the start of the line. To make what you want, you can split de string and test just the first line. But I think exist some better method.

str.split("\n")[0] =~ /^hello/
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