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I'm trying to convert the difference between two dates into a total year count, right now I'm using this:

 $datetime1 = new DateTime('2009-10-11'); 
 $datetime2 = new DateTime('2010-10-10');
 $interval = $datetime1->diff($datetime2);
 return $interval->format('%y');

This returns me an int (Like 0 for < than a year, 2 for two years, etc.)

I need the result to be decimal as following:

0.9 - 9 months

1.2 - 1 year and two months

3.5 - 3 years and five months

and so on..

Thanks!

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2  
What would it look like with 11 months? –  2unco May 28 '12 at 0:59
    
Well, I feel pretty stupid right now... I have no idea.. Maybe process the result to round up if decimal >= 10? I don't need that much accuracy. –  Antonio Max May 28 '12 at 1:06
1  
Well the answer posted by @Matthew covers both cases. If you, strangely, want 11 months to be 0.11, then following his bottom example. If you want it to be something very close to 1, ~0.93, then follow the top example. That however will lose your nice 9 months = 0.9, where 9 months will become 0.75. This will make more sense mathematically, which is what I recommend. –  2unco May 28 '12 at 1:08
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1 Answer 1

up vote 4 down vote accepted

If you don't care about perfect accuracy:

return $interval->days / 365;

You could also do something like return $interval->y + $interval->m / 12 + $interval->d / 365.

Didn't even notice your weird decimal convention until I saw @2unco's comment. That would look like: return $interval->y . '.' . $interval->m.

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Fantastic, the $interval->y . '.' . $interval->m made it. Somehow it's weird but that's what I need right now, thank you very much Matthew! –  Antonio Max May 28 '12 at 1:14
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