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c should be inner period of 2 periods. How to get it in most elegant way?

a2=Date.current + 2.months

b1=Date.current + 1.month
b2=Date.current + 3.months


c.should_be [Date.current + 1.month, Date.current + 2.months]
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@Sergio you don't want to see current implementation. your eyes will bleed. – Arnis L. May 24 '12 at 8:13
I mainly want to know how hard you've tried :) – Sergio Tulentsev May 24 '12 at 8:15
"what have you tried" isn't appropriate for general questions like this imho – pguardiario May 24 '12 at 8:21
@SergioTulentsev didn't try too hard. just got it working. but I'm not looking for any implementation, looking for elegant one. usually knowing how to do things best takes years of experience and i lack them atm. – Arnis L. May 24 '12 at 8:29

2 Answers 2

up vote 2 down vote accepted

Hurried implementation:

xs = (a1..a2).to_a & (b1..b2).to_a
# => Sun, 24 Jun 2012..Tue, 24 Jul 2012

There is nothing special about a range of dates. So search "range intersection" to do it more efficiently (for example here). Now you can write:

(a1..a2) & (b1..b2)
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yap... intersection is the word i couldn't remember :) – Arnis L. May 24 '12 at 8:16
Be careful that neither of your dates are really Time objects, or your range will have one element for every second between the two ;-) – Pavling May 24 '12 at 12:41
d= [a1, a2, b1, b2]
[*1..d.length/ 2].map do |dt| 
    d.shift(2) do |dx| 
    Date.current+ (dx[1]- dx[0]) 

[Sun, 24 Jun 2012, Tue, 24 Jul 2012]

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