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I'm somewhat in difficulty. (I'm pro in regexps but not much used them in scala/java). I have numeric string of 11 chars in length, need just last 10, so:

val Pattern = """(\d{10})$""".r
"79283767219" match {
  case Pattern(m) => m
}

It gives MatchError, but why?! What have I misunderstood?

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I mean, why does it try to match the whole string? It has no bounding to the start of the line –  dmitry Jan 31 '13 at 14:39
    
Ok, I had understanding of what's going on just from start, I'm interested in how to make it work properly, not to match like if there are implicit ^ and $. –  dmitry Jan 31 '13 at 14:47

3 Answers 3

up vote 6 down vote accepted

Because you have 11 digits, not 10. You can set "10 and more" with {10,}. To match only end of the string you need to explicitly specify full pattern:

 val Pattern = """.*(\d{10})$""".r

Update: until you're on Scala 2.10 and you can use Daniel's unanchored you can workaround it like so:

Pattern.findFirstIn("79283767219")
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1  
May you give a link where it specified - explicitly? Regex understands ^ and $ symbols, but somehow it behaves as if they were there implicitly. Is this unavoidable or maybe there is some kind of modifiers or options? –  dmitry Jan 31 '13 at 14:42
1  
@dmitry just use Pattern.findFirstIn("79283767219"). –  om-nom-nom Jan 31 '13 at 14:47
    
Seems in my case this is the solution. Add in answer, ok? –  dmitry Jan 31 '13 at 14:52
2  
@dmitry It's specified on the scaladoc for unapplySeq. –  Daniel C. Sobral Jan 31 '13 at 19:50

When you match against a regex pattern, the regex pattern should match the whole string. That is, it's like the regex pattern started with ^ and ended with $. The reason behind this is that a match is supposed to deconstruct the whole of the left side on the right side.

With Scala 2.10, you can call unanchored to get a matcher that will do partial matches, like this:

val Pattern = """(\d{10})$""".r.unanchored

Be assured that your anchor will be preserved. It's just the expectation that the match should apply over the whole string that will be dropped.

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Thanks, Daniel! I didn't know about unanchored. I presume it adds .* at both ends of the pattern? That would not work for the original question, I don't think. It also might interact badly with the $ that's already there. In some RE dialects (too lazy to check now) $ only is a right-side anchor when it's the last character in the RE. How smart is unanchored? –  Randall Schulz Jan 31 '13 at 14:50
    
Mm, good information. Thanks. Though I'm still on 2.9.2. –  dmitry Jan 31 '13 at 14:50
1  
@randall-shulz I checked it in 2.10. It works as intended. Explicit anchors work like I think they should have behaved from start. –  dmitry Jan 31 '13 at 14:56
    
That's fine, but I think it's best to use them the way they're designed, as a full match. Neither way is inherently better than the other. If it were a search, you'd have to explicitly anchor it. As a match, you have to explicitly float it. Personally, I like it the way it is. I rarely want search when I use a RegEx in a Scala match construct. –  Randall Schulz Jan 31 '13 at 15:09
1  
@RandallSchulz Unanchored changes the method called when doing unapplySeq, without doing any change to the pattern itself. It can have serious performance gains depending on the pattern. –  Daniel C. Sobral Jan 31 '13 at 19:47

Be aware, when a RegEx instance such as Pattern in your example is used in a match construct, it is not a search, it's a match! Meaning that it must match the entire value being matched (called, in Scala parlance, the "scrutinee"—79283767219 in your example).

That explains why your example got a MatchError.

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Ok, so, is there some way to avoid this? Without rewriting regexp. Maybe without pattern matching. –  dmitry Jan 31 '13 at 14:45
    
Without altering the regular expression? No. Float the pattern with .* as necessary. –  Randall Schulz Jan 31 '13 at 14:49

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