4

I want to take a list of datetimes in Ruby and then calculate the number of days between them and then average those dates. Is this correct? Is there a shorter way to do this?

dates = ["2012-08-05 00:00:00 UTC", "2012-06-17 00:00:00 UTC", "2012-06-15 00:00:00 UTC", "2011-06-06 00:00:00 UTC"]

difference = Array.new

dates.each_with_index do |date, index|
    if index != 0
        difference << date.to_date - dates[index - 1].to_date
    end
end

avg = difference.inject{ |sum, el| sum + el }.to_f / arr.size

And then would that output it in days format?

You can give me a Rails version as well if you'd like as I'll be pulling the datetimes from a model field.

  • 1
    Your question would be better if the array dates contained actual dates in a common format. Probably three would be enough. For example: dates = ["Nov 21, 2013", "Dec 22, 2013", "Jan 20, 2014"] Then show the output you get for those date. That would also allow readers to test code that they may wish to suggest. – Cary Swoveland Jan 29 '14 at 5:51
  • Ok thanks. I added some datetimes. – user2270029 Jan 29 '14 at 5:56
  • You could also use Ruby's wonderful Time.parse() function! It usually can figure out how to automagically convert a string into a Time object. – TrinitronX Jan 29 '15 at 4:27
4

I think you have an off-by-one problem. If you have n values in dates then you'll have n-1 differences between consecutive pairs so your avg should be:

avg = difference.inject{ |sum, el| sum + el }.to_f / (arr.size - 1)

And your inject is just a long winded way of saying inject(:+) so you could say:

avg = difference.inject(:+).to_f / (arr.size - 1)

In any case, you could use map and each_cons to make it a bit nicer:

dates.map(&:to_date).each_cons(2).map { |d1, d2| d1 - d2 }.inject(:+) / (dates.length - 1)

First we can convert everything to dates in one pass with map(&:to_date) rather than converting every time we need a date instead of a string. Then the each_cons(2) iterates over the array in consecutive pairs (i.e. [1,2,3,4] is iterated as [[1,2], [2,3], [3,4]]). Then a simple map to get the differences between the pairs and inject(:+) to add them all up.

The above will leave you with a Rational but you can to_f or to_i that if you need a floating point or integer value.

  • This is pure awesome. – Micah Nov 13 '14 at 20:27
1

I might be off here, but i think this should work:

require 'date'
dates.map!{|x| Date.parse(x)}.sort!
p (dates.last - dates.first)/(dates.size - 1) #=> (142/1)

or is this more beautiful?

first, last = dates.map!{ |x| Date.parse(x) }.minmax
p (last - first)/(dates.size - 1) #=> (142/1)
  • Nice and clean, hiro. – Cary Swoveland Jan 29 '14 at 17:06
  • As long as the dates don't switch direction at the end points; for example, %w[2012-08-05 2012-06-17 2012-06-15 2011-06-06 2011-06-20] would be problematic as the sign change in the last difference throws off the implicit cancelations in your min/max. – mu is too short Jan 29 '14 at 17:55
0

What about something like:

def room_expiry_date_in_days(room)
 a=room.expiry_date.strftime("%Y-%m-%d")
 b=room.created_at.strftime("%Y-%m-%d")
 a=Date.parse(a)
 b=Date.parse(b)
 days=(a-b).to_i
 return  "#{pluralize(days, 'day',"days")} left"
end

or if I've understood incorrectly, then there's always:

span_secs = Foo.maximum(:created_at) - Foo.minimum(:created_at)
avg_secs = span_secs / (Foo.count - 1)
avg_days = avg_secs / (24 * 60 * 60)

See: Calculating the average days between records in Rails

  • Does this calculate the number of days between each date and then average those? Maybe I'm missing something. – user2270029 Jan 29 '14 at 6:06

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