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How can I format a string using Javascript to match a regex?

I am using UK postcodes which could match any of the following

N1 3LD
EC1A 3AD
GU34 8RR

I have the following regex which validates a string correctly, but I am unsure how to use the regex as a mask to format EC1A3AD to EC1A 3AD / GU348RR to GU34 8RR / N13LD to N1 3LD.

My regex is /^[A-Za-z]{1,2}[0-9A-Za-z]{1,2}[ ]?[0-9]{0,1}[A-Za-z]{2}$/

Thank you

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what do you exactly mean with "how to use the regex as a mask" ? –  Fabrizio Calderan May 22 '12 at 11:21
    
I would like to be able to convert the string to match the regex. E.G. if I have a regex to validate a string matches, I would like to be able to format a string accordingly (primarily in this case to insert a space in the relevant part of the postcode) –  Paul Chops Helyer May 22 '12 at 11:53

2 Answers 2

up vote 3 down vote accepted

If you use the regular expression /^([A-Z]{1,2}\d{1,2}[A-Z]?)\s*(\d[A-Z]{2})$/ you can extract the two parts of the postcode and reassemble them with an intervening space.

var list = ['N13LD', 'EC1A3AD', 'GU348RR'];

for (var i = 0; i < list.length; i++) {
  var parts = list[i].match(/^([A-Z]{1,2}\d{1,2}[A-Z]?)\s*(\d[A-Z]{2})$/);
  parts.shift();
  alert(parts.join(' '));
}

output

N1 3LD
EC1A 3AD
GU34 8RR
share|improve this answer
    
This made it idiot proof and worked with no need to think. Thanks to both. –  Paul Chops Helyer May 22 '12 at 12:20
    
@PaulChopsHelyer you're not supposed to avoid thinking, that's why I didn't spoon feed you a whole function. –  Alnitak May 22 '12 at 12:23
    
Thank you Alnitak, however my "not thinking" comment may have been a little flippant and taken wrongly. A functional example allows me to see and learn at the same time. Apologies if you feel this is not the way to do it, but having spent a few fruitless hours trying to piece together something from various examples that I did not understand, this has now led me to be able to adapt Borodin's example to suit my requirements. Thank you again for your help, it really is appreciated. –  Paul Chops Helyer May 22 '12 at 12:37

Put braces around the bits separated by the optional space:

/^([A-Za-z]{1,2}[0-9A-Za-z]{1,2})[ ]?([0-9]{0,1}[A-Za-z]{2})$/

However I think the regexp is wrong... The above regexp splits "N13LD" as "N13", "LD".

I suspect the errant part is the {0,1} before the two trailing letters - there must AFAIK be exactly one digit there:

var re = /^([A-Z]{1,2}[\dA-Z]{1,2})[ ]?(\d[A-Z]{2})$/i; // case insensitive

The grouping allows the string.match(regexp) function to return a result which includes an entry for each matching group:

> "N13LD".match(re);
["N13LD", "N1", "3LD"]

> "GU348RR".match(re);
["GU348RR", "GU34", "8RR"]

> "EC1A3AD".match(re);
["EC1A3AD", "EC1A", "3AD"]

To get your result, just use trivial string concatenation to join the 2nd and 3rd element from each result together.

share|improve this answer
    
Thanks Alnitak, So what syntax would I use to get a string of "N1 3LD" from "N13LD" from your example? –  Paul Chops Helyer May 22 '12 at 11:40
    
@PaulChopsHelyer just take the 2nd and 3rd elements from the result of .match(). –  Alnitak May 22 '12 at 12:09
    
This pointed out a flaw in my Regex, thank you. –  Paul Chops Helyer May 22 '12 at 12:20
    
@PaulChopsHelyer which Borodin appears to have copied without attribution... –  Alnitak May 22 '12 at 12:24
1  
@Alnitak: It may massage your ego to think that I plagiarised your solution, but believe me that is not the case. There are only so many ways to write such a regular expression and mine is about as different from yours as it could be while doing a very similar thing. Venting your frustration at both me and the OP will bring you neither admiration nor reputation points. –  Borodin May 22 '12 at 13:36

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