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If I iterate over 1 month of time to do something for each hour, it takes about 14 seconds using Range#step:

bm = Benchmark.measure do
  (Time.now..(Time.now + 1.month)).step(1.hour) { |hour| puts hour.inspect }
end
puts bm
=> 14.750000   0.060000  14.810000 ( 14.907838)

That's because it's iterating over every [second]? What is the best way to create and iterate over a range of times for each hour, from the beginning of the hour?

range == [...Wed Feb 09 11:00:00 -0600 2011, Wed Feb 09 12:00:00 -0600 2011, ...]
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I think you can't use step this way in Ruby 1.9.2. Here at least, it throws TypeError: can't iterate from Time. –  Mladen Jablanović Jan 10 '11 at 13:22

4 Answers 4

up vote 4 down vote accepted

This could be an alternative. Seems to be a lot quicker at least.

bm = Benchmark.measure do
  time = Time.now
  while time < (Time.now + 1.month)
    puts time.inspect
    time += 1.hour
  end
end
puts bm
=> 0.483000   0.000000   0.483000 (  0.546000)
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2  
1.hour is not standard Ruby. It usually requires Rails' ActiveSupport so you might want to show how to correctly require that as it's not straight-forward in Rails 3+ –  the Tin Man Jan 10 '11 at 7:32
1  
Good point, but since it was actually used in the question I figured it might not be necessary to explain. –  DanneManne Jan 10 '11 at 7:39
    
Good point. I'll add Rails to the tags for the OP's question. –  the Tin Man Jan 10 '11 at 21:34
t = Time.now
0.upto(1.month/1.hour) {|i| puts t+i*1.hour}

Note: assumes you have required activesupport for the 1.month and 1.hour. Also this gives you constant sized months (2592000 seconds), which rather limits its usefulness.

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This is the most idiomatic approach, I think. –  Chuck Jan 10 '11 at 21:47

Well a month of time is not a constant. You also have to deal with daylight savings time etc. So to iterate over a month (or any time span) by hour quickly and more accurately:

bm = Benchmark.measure do
  s_time = Time.local(2011,1,1)
  e_time = Time.local(2011,2,1)
  while(s_time < e_time)
    puts s_time.inspect
    s_time += 3600
  end
end

puts bm

0.010000   0.000000   0.010000 (  0.010531)

If you want to only display hours on top of hour between arbitrary times:

 s_time += s_time.to_i % 3600
 e_time -= e_time.to_i % 3600
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2  
Time.parse doesn't work the way you think it does. Time.parse('2/1/2011') #=> 2011-01-02 00:00:00 -0700, which is Jan. 2, not Feb. 1. parse doesn't know about how we normally do MM/DD/YYYY in America. Instead if uses DD/MM/YYYY, which is the standard for Europe. The fallout of this is that your benchmark's time is a lot less than it should be, because you didn't iterate over the right number of hours. –  the Tin Man Jan 10 '11 at 7:28
    
This iterated over all hours for me because I am using ruby 1.8.7. What you say is true about ruby 1.9 it has changed. Example changed to account work with Ruby 1.9 as well as expected. –  Michael Papile Jan 10 '11 at 16:03

Here's something I wrote to iterate over days in rails.

def each_day(range, &block)
  values = []
  (range.first.to_i .. range.last.to_i).step(1.day) { |d| values << Time.at(d) }
  return values unless block_given?
  values.each { |val| yield(val) }
end

range = (Time.local(2012, 12, 31) .. Time.local(2013, 1, 1))

each_day(range) { |d| puts d.inspect }
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