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Good evening,

I'm trying to splitting the parts of a german address string into its parts via Java. Does anyone know a regex or a library to do this? To split it like the following:

Name der Straße 25a 88489 Teststadt
to
Name der Straße|25a|88489|Teststadt

or

Teststr. 3 88489 Beispielort (Großer Kreis)
to
Teststr.|3|88489|Beispielort (Großer Kreis)

It would be perfect if the system / regex would still work if parts like the zip code or the city are missing.

Is there any regex or library out there with which I could archive this?

EDIT: Rule for german addresses:
Street: Characters, numbers and spaces
House no: Number and any characters (or space) until a series of numbers (zip) (at least in these examples)
Zip: 5 digits
Place or City: The rest maybe also with spaces, commas or braces

share|improve this question
    
For those of unfamiliar with German addresses, what is the rule? Is it "something with spaces but not numbers", "something with numbers but no spaces", "numbers and no spaces", "no numbers and no spaces"? –  Oliver Charlesworth Mar 25 '12 at 20:16
    
you don't need a regex for this. Just split the string using a space delimiter and then join it using the bar | delimeter - but Oli's comment above is also pertinent as i am assuming that german addresses are split with spaces –  Robbie Mar 25 '12 at 20:18
    
@OliCharlesworth: Edited the post –  Christian Mar 25 '12 at 20:21
    
@Robbie: I can't just split them by spaces, because a street name and a city/place can contain spaces too. –  Christian Mar 25 '12 at 20:22
    
Don 't think it is that easy. There are plenty of street names with spaces in them. Also, some people write '25 a' instead of '25a'. I would normaly write my adress with ',' to delimiter the parts. Are you getting the adresses from some other system in a defined format? –  bert Mar 25 '12 at 20:22

6 Answers 6

up vote 5 down vote accepted

I came across a similar problem and tweaked the solutions provided here a little bit and came to this solution which also works but (imo) is a little bit simpler to understand and to extend:

/^([a-zäöüß\s\d.,-]+?)\s*([\d\s]+(?:\s?[-|+/]\s?\d+)?\s*[a-z]?)?\s*(\d{5})\s*(.+)?$/i

Here are some example matches.

It can also handle missing street numbers and is easily extensible by adding special characters to the character classes.

[a-zäöüß\s\d,.-]+?                         # Street name (lazy)
[\d\s]+(?:\s?[-|+/]\s?\d+)?\s*[a-z]?)?     # Street number (optional)

After that, there has to be the zip code, which is the only part that is absolutely necessary because it's the only constant part. Everything after the zipcode is considered as the city name.

share|improve this answer
    
Works even better, thanks a lot. –  Christian Mar 30 '12 at 8:09

I’d start from the back since, as far as I know, a city name cannot contain numbers (but it can contain spaces (first example I’ve found: “Weil der Stadt”). Then the five-digit number before that must be the zip code.

The number (possibly followed by a single letter) before that is the street number. Note that this can also be a range. Anything before that is the street name.

Anyway, here we go:

^((?:\p{L}| |\d|\.|-)+?) (\d+(?: ?- ?\d+)? *[a-zA-Z]?) (\d{5}) ((?:\p{L}| |-)+)(?: *\(([^\)]+)\))?$

This correctly parses even arcane addresses such as “Straße des 17. Juni 23-25 a 12345 Berlin-Mitte”.

Note that this doesn’t work with address extensions (such as “Gartenhaus” or “c/o …”). I have no clue how to handle those. I rather doubt that there’s a viable regular expression to express all this.

As you can see, this is a quite complex regular expression with lots of capture groups. If I would use such an expression in code, I would use named captures (Java 7 supports them) and break the expression up into smaller morsels using the x flag. Unfortunately, Java doesn’t support this. This s*cks because it effectively renders complex regular expressions unusable.

Still, here’s a somewhat more legible regular expression:

^
(?<street>(?:\p{L}|\ |\d|\.|-)+?)\ 
(?<number>\d+(?:\ ?-\ ?\d+)?\ *[a-zA-Z]?)\ 
(?<zip>\d{5})\ 
(?<city>(?:\p{L}|\ |-)+)
(?:\ *\((?<suffix>[^\)]+)\))?
$

In Java 7, the closest we can achieve is this (untested; may contain typos):

String pattern =
    "^" +
    "(?<street>(?:\\p{L}| |\\d|\\.|-)+?) " +
    "(?<number>\\d+(?: ?- ?\\d+)? *[a-zA-Z]?) " +
    "(?<zip>\\d{5}) " +
    "(?<city>(?:\\p{L}| |-)+)" +
    "(?: *\\((?<suffix>[^\\)]+)\\))?" +
    "$";
share|improve this answer
    
Works like a charm for your street string, but unfortunately not for the example street. You can test it with the code example of radzio and your Regex (with escaped parts) ^((?:\\p{L}| |\\d|\\.|-)+?) ((?:\\d+ ?- ?)\\d+ *[a-zA-Z]?) (\\d{5}) ((?:\\p{L}| |-)+)$ –  Christian Mar 26 '12 at 7:32
    
@Christian Because I’m an idiot. Try again, I wrote the street number range the wrong way round and didn’t make it optional. It works on the example addresses now. –  Konrad Rudolph Mar 26 '12 at 8:41
    
Yes, now it works perfect. Thanks –  Christian Mar 26 '12 at 8:45
    
Found one missing part. Sometimes there are braces "(" and ")" in the place which define the area. They aren't part of an official address, but they are found in such data. Would it be possible to add this to the regex? And if, how? –  Christian Mar 26 '12 at 15:52
    
@Christian Hmm, where exactly would you have the parentheses? Please edit the question with an example. –  Konrad Rudolph Mar 26 '12 at 15:55

Here is my suggestion which could be fine-tuned further e.g. to allow missing parts.

Regex Pattern:

^([^0-9]+) ([0-9]+.*?) ([0-9]{5}) (.*)$
  • Group 1: Street
  • Group 2: House no.
  • Group 3: ZIP
  • Group 4: City
share|improve this answer
    
This regex is broken since street names can contain numbers. For instance (but not exclusively), streets can be numbered before being assigned names so that you end up with “Straße 42”. Another example is the “Straße des 17. Juni”. –  Konrad Rudolph Mar 25 '12 at 20:35
    
OP didn't mention numbers in street names. Maybe not necessary to hold for those? –  keyser Mar 25 '12 at 20:42
    
@KonradRudolph You're right. That's a possibility which completely slipped my mind. Is there a "system" with which you can define how a german address is build? –  Christian Mar 25 '12 at 20:44
    
@KonradRudolph The question clearly defines the street part as "Street: Characters and spaces until a number" so my regex is not broken. I just answered the question. If, as Christian confirmed, the question is not correct considering this part, a different solution may be needed, but I would ask Christian to change the question then as well. –  Michael Schmeißer Mar 25 '12 at 21:43
    
@Michael Yes, the question didn’t specify the input correctly. The regex is still broken on realistic input. Not your fault, still true. –  Konrad Rudolph Mar 25 '12 at 23:55
public static void main(String[] args) {
    String data = "Name der Strase 25a 88489 Teststadt";
    String regexp = "([ a-zA-z]+) ([\\w]+) (\\d+) ([a-zA-Z]+)";

    Pattern pattern = Pattern.compile(regexp);
    Matcher matcher = pattern.matcher(data);
    boolean matchFound = matcher.find();

    if (matchFound) {
        // Get all groups for this match
        for (int i=0; i<=matcher.groupCount(); i++) {
            String groupStr = matcher.group(i);
            System.out.println(groupStr);
        }
    }System.out.println("nothing found");
                }

I guess it doesn't work with german umlauts but you can fix this on your own. Anyway it's a good startup.

I recommend to visit this it's a great site about regular expressions. Good luck!

share|improve this answer
    
This doesn’t work, for the same reason that the other regular expression above doesn’t work. –  Konrad Rudolph Mar 25 '12 at 20:50
    
you mean the street name which can hold numbers? I guess it wasn't clearly specified in the question. –  radoslaw.busz Mar 25 '12 at 21:17
    
For instance. There is more crazy stuff going on. German addresses are hellishly complicated. Look at my answer for details. –  Konrad Rudolph Mar 25 '12 at 21:33

At first glance it looks like a simple whitespace would do it, however looking closer I notice the address always has 4 parts, and the first part can have whitespace.

What I would do is something like this (psudeocode):

address[4] = empty
split[?] = address_string.split(" ")
address[3] = split[last]
address[2] = split[last - 1]
address[1] = split[last - 2]
address[0] = join split[first] through split[last - 3] with whitespace, trim trailing whitespace with trim()

However, this will only handle one form of address. If addresses are written multiple ways it could be much more tricky.

share|improve this answer

try this:

^[^\d]+[\d\w]+(\s)\d+(\s).*$

It captures groups for each of the spaces that delimits 1 of the 4 sections of the address

OR

this one gives you groups for each of the address parts:

^([^\d]+)([\d\w]+)\s(\d+)\s(.*)$

I don't know java, so not sure the exact code to use for replacing captured groups.

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