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I'm trying to identify street corners in a free text.

I have a list of streets, and I'm looking for a regular expression that given the following text

the corner of Saint John and Mac Dowell.

or

the store on Saint John and Mac Dowell.

would return something like

(Saint John) (Mac Dowell)

I was thinking about something like

.*((?:\w+\b+){5})and\b+((?:\w+\b+){5}).*

to get five words before "and" and 5 words after it. (I don't have street names with more than five words)

But I can't even find a way to match a certaing amount of words

If I try with

scala> val corner = """.*((?:\w+\b+){2}).*""".r
scala> val corner(c) = "word1 word2 word3"

It doesn't match at all...

(I'm not using \s because I want to take into account ,;:. etc. as word separators)

--

thanks to m.buettner's answer I could get closer to what I'm trying to achieve

Now I have:

val corner = """.*((?:\W+\w+){1,5})\W+and\W+((?:\w+\W+){1,5}).*""".r

val corner(a,b) = "the store located at Saint John street and Mac Dowell Avenue, is a great place"
a: String = " street"
b: String = "Mac Dowell Avenue, is a "

The only problem I have, is that I expected a to be "located at Saint John street" instead of just " street". Shouln't it be eager by default?

share|improve this question
    
Does Scala support lookahead and lookbehind? – Bergi Nov 6 '12 at 12:14
up vote 2 down vote accepted

The problem is that \b does not consume any characters, it just checks that the current position is between a word and a non-word character or the string boundaries. But you don't have to use \s, you could use \W (which represents any non-word characters):

.*?((?:\w+\W+){1,5})and((?:\W+\w+){1,5}).*

But why do you not simply use:

the corner of\W+(.*)\W+and\W+(.*)\W*
share|improve this answer
    
Thanks a lot for your answer, it really helped me, now I'm stuck with the first five words. I updated the question. I can't just use the formula you gave because the text is not so fixed, the only thing I have that tells me that there might be referring to a corner is the "and" part of the phrase. – opensas Nov 6 '12 at 11:53
    
@opensas The problem is that .* is greedy as well, so it will consume everything up to John and then the repetition kicks in, which can only get one word. I'll change my question accordingly – Martin Ender Nov 6 '12 at 12:06
    
thanks!, now it works like a charm... – opensas Nov 6 '12 at 12:31

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