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I'm trying to find a valid year between 1900 and now in strings like this: 5050.2011.DVD.XviD.AVI.117715.imported

I'm looking for 4 digits that aren't surrounded by other digits and start with 19 or 20.

So far this is what I have, but the expression returns 2011,20.

/(?!=\d)(19|20)[0-9][0-9](?!\d)/

How do I fix this?

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Split by ., then compare? –  nhahtdh Oct 5 '12 at 14:55
1  
Negative lookbehind assertions (?!=...) are not supported by javascript's regex engine. –  jbabey Oct 5 '12 at 14:58
    
@raina77ow that should be posted as an answer. –  jbabey Oct 5 '12 at 14:59
    
@jbabey Done (fixed it at a bit, as \D won't match at the edges of the string) that. ) –  raina77ow Oct 5 '12 at 15:08

3 Answers 3

up vote 1 down vote accepted

Use split >>

s.split(/[^\d]/).filter(function(n){if((n>=1900)&&(n<=2099))return n})​

Check this demo.

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This regex would return all the years between 1900-2099.

[^0-9](19|20)[0-9]{2}[^0-9]

Now, run another regex on the above returned results:

(19|20)[0-9]{2}

To explain you what's happening, first regex weeds out all the un-needed characters, and returns a string like .2012..

And the second regex extracts the year from .2012. and returns 2012.


But if you want to be specific, every 10 years, you'll have to update the regex yourself:

[^0-9]((19[0-9]{2})|(20[0-1][0-9]))[^0-9]

See the second last [0-1] in the regex? This is what you'll have to update every 10 years to the second last digit of the currect year.

For example, if it was 2023, you'll update it as: [0-2][0-9]

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Then you will have to update your regex year yourself, there is no solution to that. @nhahtdh –  Sean Vaughn Oct 5 '12 at 15:00
    
This will fail to find a year in both 2011.Some.Big.Movie and Some.Big.Movie.Made.In.2012. ) –  raina77ow Oct 5 '12 at 15:12
    
@sean—the above will match every year from 1900 to 2099, which I expect is close enough for the OP. An alternative is to create a regular expression based on the current date, it would take two or three more lines of code though unless it was server generated. Then the extra code is at the server, but at least you might be more certain that it's correct. –  RobG Oct 5 '12 at 15:13
    
For my purposes it doesn't matter that future dates are included, but your first pattern returns .2011.,20 –  fuzzyvagina Oct 5 '12 at 15:19
    
@Fuzzyvagina, check out the edit. –  Sean Vaughn Oct 5 '12 at 15:26

Alternatively, you could use Array.filter here:

'5050.2011.DVD1943.XviD.AVI+117715.imported'
 .split(/[^\d]/ /* or /\D/ */)
 .filter(function(a){return +a>1899 && +a<=(new Date).getFullYear();});
 //=> ['2011','1943']

Or use match and filter:

'5050.2011.DVD1943.XviD.AVI+117715.imported'
 .match(/[^\D]+/g /* or /\d+/g */)
 .filter(function(a){return +a>1899 && +a<=(new Date).getFullYear();});
 //=> ['2011','1943']
share|improve this answer
    
What if they are not seperated by .? Try to give a more general solution. –  Sean Vaughn Oct 5 '12 at 15:02
    
@Sean: satisfied? –  KooiInc Oct 5 '12 at 15:08
    
split /\D+/, perhaps? ) +1, though; I like this approach in general (and I like alternative approaches), but still think the regex is more suitable for this task. –  raina77ow Oct 5 '12 at 15:09
    
Why [^\d] instead of \D, and why [^\D] instead of \d? ) –  raina77ow Oct 5 '12 at 15:25
    
@raina77ow: Why \D and \d then? Would it make a difference you think? –  KooiInc Oct 5 '12 at 15:39

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