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I'm trying to build a regular expression in javascript to validate a Dutch zipcode.

The zipcode should contain 4 numbers, then optionally a space and then 2 (case insensitive) letters

Valid values:

1001aa  
1001Aa  
1001 AA

I now have this, but it does not work:

var rege = /^([0-9]{4}[ ]+[a-zA-Z]{2})$/;
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1  
You are using breakets arround the space, you use those to define a range of characters e.g. [0-6] does 0 till 6. Just replace it with ` ?` (a space and a questionmark to make it optional –  Martijn Jul 27 '13 at 14:05
4  
As an aside: Dutch postal codes never start with a zero. –  Arjan Jul 27 '13 at 14:19
3  
Nor are there postcodes ending in SS, SA or SD. –  Bart Jul 27 '13 at 14:25
    
Thanks Arjan / Bart: how would you define those extra rules in var rege = /^([0-9]{4} ?[a-zA-Z]{2})$/; –  Flo Jul 27 '13 at 14:31
    
@Florian - I added a final test to my answer below that will eliminate SS, SA, and SD. Try that one out! :) –  Steven Moseley Jul 27 '13 at 14:58

2 Answers 2

up vote 11 down vote accepted

Edited to handle no leading 0 requirement for Dutch postal codes, and to eliminate matches for SS, SA, and SD. This should do it all for you.

Final regex:

var rege = /^[1-9][0-9]{3} ?(?!sa|sd|ss)[a-z]{2}$/i;

Fiddle unit test: http://jsfiddle.net/hgU3u/

Here's a breakdown:

  1. ^ matches beginning of string
  2. [1-9][0-9]{3} matches a single non-zero digit, and three 0-9 digits
  3. ? matches 0 or 1 spaces (you could use * to match 0 or more spaces)
  4. (?!sa|sd|ss) is a lookahead test to check that the remainder is not "sa", "sd", or "ss".
  5. [a-z]{2} matches 2 a-z characters
  6. $ matches the end of the string
  7. i at the end is the case-insensitive modifier
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Yes, this is also a correct solution. A + in regex is one or more "hits" of the previous one character regex (or a pattern in parentheses). –  Dmitry Jul 27 '13 at 14:04

Here is my solution. The i in the end makes it case-insensitive:

var rege = /^\d{4} ?[a-z]{2}$/i;
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