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How can I split a fullname into single, medium and last name?

Obviously, it is impossible to cover all posibilities. I only want one rule: If after the word there is other word from 3 letter or less, it must join it with the next word.

Also, I am supposing that the fullname has 3 words or more.

I really have no idea even how to start.

For example:

John Martin Jackson:

  • name1: John
  • name2: Martin
  • name3: Jackson

Steven Ponce de Leon Presley

  • name1: Steven
  • name2: Ponce de Leon
  • name3: Presley

Michael de la Rosa Martin Jackson:

  • name1: Michael de la Rosa
  • name2: Martin
  • name3: Jackson

:S

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1  
I know a guy named Michael Harris Heaton Jones Patrick. (He's an architect in Boston I think.) –  Pointy Aug 2 '12 at 22:08
    
There's no clear pattern, why not use 3 different fields instead, like most webs do? –  elclanrs Aug 2 '12 at 22:10
    
I don't personally know, but have heard about, lots of guys named Wu or Bo. Last name >= 3 chars is not foolproof. –  Jon Aug 2 '12 at 22:11
    
both "Leon" and "Rosa" consist of 4 letters, they should go to the next word according to your rule? –  Eugene Xa Aug 2 '12 at 22:12
    
elclanrs: Yes, but the problem is that in the database they are all already in one single field :( –  yenssen Aug 2 '12 at 22:14

3 Answers 3

up vote 3 down vote accepted

A really fancy regex could do that. To match one name, use

/\S+((\s+\S{1,3})+\s+\S+)*/

Then, combine three of them with non-matching groups, but each wrapped in one, joined by whitespaces:

/^(\S+(?:(?:\s+\S{1,3})+\s+\S+)*)\s+(\S+(?:(?:\s+\S{1,3})+\s+\S+)*)\s+(\S+(?:(?:\s+\S{1,3})+\s+\S+)*)$/

To make it match people without a middle name, make that optional:

/^(\S+(?:(?:\s+\S{1,3})+\s+\S+)*)(?:\s+(\S+(?:(?:\s+\S{1,3})+\s+\S+)*))?\s+(\S+(?:(?:\s+\S{1,3})+\s+\S+)*)$/

Update: Don't try to match whole names in one regex. Just use the first (simple) regex with a global flag:

> "Steven Ponce de Leon Presley".match(/\S+((\s+\S{1,3})+\s+\S+)*/g)
["Steven", "Ponce de Leon", "Presley"]

Explanation:

/
 \S+      match a word
 (         followed by any number of
  (         at least one
   \s+       whitespace-separated
   \S{1,3}   up-to-three-letters word
  )+
  \s+       and a whitespace-separated
  \S+       word
 )*
/g

However, I think an algorithm with some string and array functions would make it clearer what happens, and allows more customisation of the matching process:

var names = input.split(/s+/);
if (names.length < 2)
    return; // special case handling for only one word
var short = 0;
for (var i=names.length-2; i>=0; i--) {
    // starting at the second-to-last, I expect names not to end with a short one
    if (names[i].length < 4) {
        short++;
    } else if (short) {
        names[i] += " "+names.splice(i+1, short+1).join(" ");
        short = 0;
    }
}
return names; // an Array with at least one name
share|improve this answer
    
+1, nicely done. :) –  PPvG Aug 2 '12 at 23:13
    
Wao, that's impressive. How can you write code than the first example? –  yenssen Aug 2 '12 at 23:23
    
It's not as hard as it looks like :-) The overly long regexes (which were a mistake) are only copy-and-paste of the first one, with some extra chars to make the groups non-matching. –  Bergi Aug 2 '12 at 23:43

How about something like this?

function split_name(name) {
    var parts = name.split(" ");
    var num_parts = parts.length;
    var i = 0;
    var names = [];

    function in_bounds() {
        return i < num_parts;
    }
    function next_part() {
        i += 1;
        return parts[i - 1];
    }
    function part_is_short() {
        return parts[i].length < 4;
    }
    function last_part_was_short() {
        return parts[i-1].length < 4;
    }
    function next_name() {
        var name = next_part();
        if (in_bounds() && part_is_short()) {
            name += " " + next_part();
            while(in_bounds() && last_part_was_short()) {
                name += " " + next_part();
            }
        }
        return name;
    }

    while (in_bounds()) {
        names.push(next_name());
    }

    return names;
}

JSFiddle: http://jsfiddle.net/nLe7S/2/

It's not the most performant algorithm ever. Regex gurus could probably do the same in one line, but at least this way it's readable for us mortals. (Update: I see Bergi has just proven himself to be such a regex guru. :)

It does roughly what you've described, but you'll have to adapt it to your needs. For instance, it returns an array containing as many "sub-names" as it finds. So if it can't find a middle name, it'll return an array of length 2. On the other hand, it may find more than 3 names. You'll have to think about how to handle that.

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Very interesting, an easy to understand! I will check it. Thank you very much! :) –  yenssen Aug 2 '12 at 23:22

Here is another working function http://jsfiddle.net/xPzEs/7/

edit: bad link

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