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I'd like a Regular Expression for C# that matches "Johnson", "Del Sol", or "Del La Range"; in other words, it should match words with spaces in the middle but no space at the start or at the end.

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What does the input string look like? Is the last name the only part of the string, or is it a sentence, or possibly a full name with optionally more spaces? I think context is important here. –  Rich Mar 10 '09 at 21:37

7 Answers 7

^\p{L}+(\s+\p{L}+)*$

This regex has the following features:

  • Will match a one letter last name (e.g. Malcolm X's last name)
  • Will not match last names containing numbers (like anything with a \w or a [^ ] will)
  • Matches unicode letters

But what about last names like "O'Connor" or hyphenated last names ... hmm ...

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In the name "Ṣalāḥ ad-Dīn Yūsuf ibn Ayyūb" (see http://en.wikipedia.org/wiki/Saladdin), which is the first name, and which is the last? What about in the name "Roberto Garcia y Vega" (invented)? "Chiang Kai-shek" (see http://en.wikipedia.org/wiki/Chang_Kai-shek)?

Spaces in names are the least of your problems! See http://stackoverflow.com/questions/620118/personal-names-in-a-global-application-what-to-store.

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I agree. No matter how hard you try you will always find names that don't match correctly. I mean, if you don't have complete control on what names you are parsing. –  Sergio Acosta Mar 10 '09 at 22:36

This should do the job:

^[a-zA-Z][a-zA-Z ]*[a-zA-Z]$

Edit: Here's a slight improvement that allows one-latter names and hyphens/apostrophes in the name:

^[a-zA-Z'][a-zA-Z'- ]*[a-zA-Z']?$
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Malcolm X would not be happy about this... (requiring minimum of 2 letter last names that is...) –  Daniel LeCheminant Mar 10 '09 at 21:42
    
The shortest REAL name I can think of is "Ng." Should be fine. ;) –  Stuart Branham Mar 10 '09 at 21:48
    
A non-zero number of people have the "real" last name of "U"... –  Daniel LeCheminant Mar 10 '09 at 21:52
    
Yeah, I noticed that upon review, but didn't bother changing because I didn't consider a one-letter last name... Post is edited now anyway with a few other improvements. –  Noldorin Mar 10 '09 at 23:42
    
+1 for tackling ' and -. (I don't know if the first character needs to accept an apostrophe though... or if a-- should be a valid last name) –  Daniel LeCheminant Mar 11 '09 at 0:00

The ? qualifier is your friend. Makes a shortest-possible match instead of a greedy one. Use it for the first name, as in:

^(.+?) (.+)$

Group 1 grabs everything up to the first space, group 2 gets the rest.

Of course, now what do you do if the first name contains spaces?

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Nice and simple, but I think it will match "238 39592" as well, which aren't words. –  Stuart Branham Mar 10 '09 at 21:26
    
then replace "." with "\w" or "[a-zA-Z]" –  Rich Mar 10 '09 at 21:34
    
Not sure if the OP wants to match the last name by itself or within a string containing both the first and last names... I supposed the former, while you seem to have done the latter. Still, it appears your regex allows spaces at the start or end, which needs to be fixed. –  Noldorin Mar 10 '09 at 21:40

Try something like this:

^[^\s][\w\s]*[^\s]$
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I don't think last names can contain numbers... –  Daniel LeCheminant Mar 10 '09 at 21:36

Here's a better one:

/^[a-zA-Z]+(([\'\,\.\- ][a-zA-Z ])?[a-zA-Z]*)*$/

Allows standard punctuation and spaces, but cannot start with punctuation.

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I think this is more what you were looking for:

^[^ ][a-zA-Z ]+[^ ]$

This should match the beginning of the line with no space, alpha characters or a space, and no space at the end.

This works in irb, but last time I worked with C#, I've used similar regexes:

(zero is good, nil means failed)

>> "Di Giorno" =~ /^[^ ][a-zA-Z ]+[^ ]$/
=> 0
>> "DiGiorno" =~ /^[^ ][a-zA-Z ]+[^ ]$/
=> 0
>> " DiGiorno" =~ /^[^ ][a-zA-Z ]+[^ ]$/
=> nil
>> "DiGiorno " =~ /^[^ ][a-zA-Z ]+[^ ]$/
=> nil
>> "Di Gior no" =~ /^[^ ][a-zA-Z ]+[^ ]$/
=> 0
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Using the [^ ] will match last names starting or ending with numbers, punctuation, etc... –  Daniel LeCheminant Mar 10 '09 at 21:38
    
Danny's right. I responded with the same solution and retracted it when I realized this. –  Stuart Branham Mar 10 '09 at 21:49

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