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I would like to craft a case-insensitive regex (for JavaScript) that matches street names, even if each word has been abbreviated. For example:

n univ av should match N University Ave

king blv should match Martin Luther King Jr. Blvd

ne 9th should match both NE 9th St and 9th St NE

Bonus points (JK) for a "replace" regex that wraps the matched text with <b> tags.

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8  
As this is tagged "fun", quoting Jamie Zawinski : Some people, when confronted with a problem, think "I know, I’ll use regular expressions." Now they have two problems. –  Pascal MARTIN Apr 16 '10 at 17:57
    
@Pascal: great quote. –  Andy E Apr 16 '10 at 18:10
    
@Andy: Now you must be the only programmer on earth who has not yet been confronted with that particular quote. ;) For my part, I'm sick of it. oO –  Tomalak Apr 16 '10 at 18:26
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4 Answers

up vote 8 down vote accepted

You got:

"n univ av"

You want:

"\bn.*\buniv.*\bav.*"

So you do:

var regex = new RegExp("n univ av".replace(/(\S+)/g, function(s) { return "\\b" + s + ".*" }).replace(/\s+/g, ''), "gi");

Voilà!

But I'm not done, I want my bonus points. So we change the pattern to:

var regex = new RegExp("n univ av".replace(/(\S+)/g, function(s) { return "\\b(" + s + ")(.*)" }).replace(/\s+/g, ''), "gi");

And then:

var matches = regex.exec("N University Ave");

Now we got:

  • matches[0] => the entire expression (useless)
  • matches[even] => one of our matches
  • matches[odd] => additional text not on the original match string

So, we can write:

var result = '';
for (var i=1; i < matches.length; i++)
{
  if (i % 2 == 1)
    result += '<b>' + matches[i] + '</b>';
  else
    result += matches[i];
}
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@fabio: those .* should be non-greedy - .*?. Also, your regex does not fulfil the matching requirement of ne 9th. –  Andy E Apr 16 '10 at 18:17
    
You're right, it does not... I didn't noticed he wanted matches outside of the order as well. –  Fábio Batista Apr 16 '10 at 18:29
    
@Fábio: You should regex-quote the input before you start. Otherwise +1, that's better than my approach. –  Tomalak Apr 16 '10 at 18:58
    
@Fábio: So I've been tinkering with this for quite some time now. I'm struggling with the last bit. If I execute the code exactly as shown, I get this matches array: ["N University Ave", " ", "ersity ", "e"]. Is this right? –  nw. Apr 16 '10 at 21:00
    
Sorry, the replace function was wrong. I fixed it now: var regex = new RegExp("n univ av".replace(/(\S+)/g, function(s) { return "\\b(" + s + ")(.*)" }).replace(/\s+/g, ''), "gi"); –  Fábio Batista Apr 16 '10 at 21:33
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function highlightPartial(subject, search) {
  var special = /([?!.\\|{}\[\]])/g;
  var spaces  = /^\s+|\s+/g;
  var parts   = search.split(" ").map(function(s) { 
    return "\b" + s.replace(spaces, "").replace(special, "\\$1");
  });
  var re = new RegExp("(" + parts.join("|") + ")", "gi");
  subject = subject.replace(re, function(match, text) {
    return "<b>" + text + "</b>";
  });
  return subject;
}

var result = highlightPartial("N University Ave", "n univ av");
// ==> "<b>N</b> <b>Univ</b>ersity <b>Av</b>e"

Side note - this implementation does not pay attention to match order, so:

var result = highlightPartial("N University Ave", "av univ n");
// ==> "<b>N</b> <b>Univ</b>ersity <b>Av</b>e"

If that's a problem, a more elaborate sequential approach would become necessary, something that I have avoided here by using a replace() callback function.

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@Tomalak, great response. +1. How would you only return results that matched all the terms? –  maček Apr 16 '10 at 18:34
    
@macek: Well, that would require some work. I think writing a loop over all the parts and matching them individually against subject, incrementing a counter as you go would do the trick. If the counter matches the number of parts, all of them are in the input. –  Tomalak Apr 16 '10 at 18:43
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Simple:

var pattern = "n univ av".replace(/\s+/, "|");
var rx      = new RegExp(pattern, "gi");
var matches = rx.Matches("N University Ave");

Or something along these lines.

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If these are your search terms:

  1. n univ av
  2. king blv
  3. ne 9th

It sounds like your algorithm should be something like this

  1. split search by space (results in search terms array) input.split(/\s+/)
  2. attempt to match each term within your input. /term/i
  3. for each matched input, replace each term with the term wrapped in <b> tags. input.replace(/(term)/gi, "<b>\$1</b>")

Note: You'll probably want to take precaution to escape regex metacharacters.

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@macek: Point #3 fails because string.replace() always begins at the start of the string, potentially leading to invalid tag nesting etc when the second search term is part of the first. Or the second search term is "b". ;) –  Tomalak Apr 16 '10 at 18:55
    
@Tomalak, thanks for catching this. Your method is highly superior. –  maček Apr 16 '10 at 19:13
    
Fábio's is even better. ;) It addresses the issues mine has, and is's shorter, too. –  Tomalak Apr 16 '10 at 19:18
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