Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Can Ruby do something like this?

irb(main):001:0> start = Time.now
=> Thu Nov 05 01:02:54 -0800 2009

irb(main):002:0> Time.now - start
=> 25.239

irb(main):003:0> (Time.now - start).duration
=> "25 seconds"

(the duration method doesn't exist now)... and similarly, report

23 minutes and 35 seconds
1 hour and 33 minutes
2 days and 3 hours

(either report the whole duration, up to how many seconds, or report up to 2 numbers and units (if day and hour is reported, then no need to tell how many minutes))

share|improve this question
1  
now i know Ruby more... maybe a Time.now.how_long_since start or Time.now.duration_since start might be more elegant? – 太極者無極而生 Mar 12 '11 at 13:35
up vote 31 down vote accepted

Here's a quick and simple way to implement this. Set predefined measurements for seconds, minutes, hours and days. Then depending on the size of the number, output the appropriate string with the those units. We'll extend Numeric so that you can invoke the method on any numeric class (Fixnum, Bignum, or in your case Float).

class Numeric
  def duration
    secs  = self.to_int
    mins  = secs / 60
    hours = mins / 60
    days  = hours / 24

    if days > 0
      "#{days} days and #{hours % 24} hours"
    elsif hours > 0
      "#{hours} hours and #{mins % 60} minutes"
    elsif mins > 0
      "#{mins} minutes and #{secs % 60} seconds"
    elsif secs >= 0
      "#{secs} seconds"
    end
  end
end
share|improve this answer
2  
Perhaps some additional handling should be added for cases where one or more of the items is equal to one (1 hours and 1 minutes => 1 hour and 1 minute) also. – Mark Embling Nov 5 '09 at 11:41
    
Very neat. I love it :D – FelipeC Nov 30 '09 at 22:00
1  
I spoke too soon; it doesn't work correctly. Should be something like: "#{days} days and #{hours % 24} hours" not "#{days} days and #{hours % days} hours" – FelipeC Nov 30 '09 at 22:12
1  
@felipec You're absolutely right. Answer changed. – Michael Richards Dec 1 '09 at 2:30
1  
@Tilo The result is not incorrect. The OP didn't specify to skip units if they equate to 0. "… report up to 2 numbers and units (if day and hour is reported, then no need to tell how many minutes)". – Michael Richards Mar 26 '13 at 20:36

Have a look at the Rails DateHelpe.distance_of_time_in_words method. It will give you a great starting place. Despite being loaded with magic numbers, the approach should work for you.

share|improve this answer

There is a gem available https://rubygems.org/gems/time_diff

Which gives the difference in a hash

share|improve this answer

Try a ruby gem for that https://rubygems.org/gems/time_difference - Time Difference gem for Ruby Documentation at https://github.com/tmlee/time_difference

start_time = Time.new(2013,1)
end_time = Time.new(2014,1)
TimeDifference.between(start_time, end_time).in_years
=> 1.0
share|improve this answer

Building on Michael Richard's answer, here's a replacement for the if block that gets English pluralization right, and won't say things like "14 days and 0 hours":

if days > 0
  hour_remainder = hours % 24
  if hour_remainder > 0
    hour_str = hour_remainder == 1 ? 'hour' : 'hours'
    "#{days} days and #{hour_remainder} #{hour_str}"
  elsif days == 1
    "#{days} day"
  else
    "#{days} days"
  end
elsif hours > 0
  min_remainder = mins % 60
  if min_remainder > 0
    min_str = min_remainder == 1 ? 'minute' : 'minutes'
    "#{hours} hours and #{min_remainder} #{min_str}"
  elsif hours == 1
    "#{hours} hour"
  else
    "#{hours} hours"
  end
elsif mins > 0
  sec_remainder = secs % 60
  if sec_remainder > 0
    sec_str = sec_remainder == 1 ? 'second' : 'seconds'
    "#{mins} minutes and #{sec_remainder} #{sec_str}"
  elsif minutes == 1
    "#{mins} minute"
  else
    "#{mins} minutes"
  end
elsif secs == 1
  "#{secs} second"
elsif secs >= 0
  "#{secs} seconds"
end
share|improve this answer

I could not withstand to put a generic solution here - although: has a year 365 days?

Additional I put an abs when converting self.to_int

class Numeric
    def duration
        steps=[60, 60, 24, 365,0]
        names=[:seconds, :minutes, :hours, :days, :years]
        results=[]
        stepper = self.to_int.abs
        steps.each { |div|
            if stepper>0
                if div>0
                    results<<stepper % div
                    stepper/=div
                else
                    results << stepper
                end
            end
        }
        e= results.empty? ? 0 : results.count-1
        mt= e>0 ? results[e-1] : 0
        et=results[e] || 0

        et.to_s+" "+names[e].to_s + (mt>0 ? " "+mt.to_s+" "+names[e-1].to_s : '')
    end
end

and with translation

class Numeric
    def i18n_duration
        steps=[60, 60, 24, 365,0]
        names=[:seconds, :minutes, :hours, :days, :years]
        results=[]
        stepper = self.to_int.abs
        steps.each { |div|
            if stepper>0
                if div>0
                    results<<stepper % div
                    stepper/=div
                else
                    results << stepper
                end
            end
        }
        e= results.empty? ? 0 : results.count-1
        mt= e>0 ? results[e-1] : 0
        et=results[e] || 0

        I18n.t("datetime.distance_in_words.x_#{names[e]}", count: et) +
             (mt>0 ? " "+I18n.t("datetime.distance_in_words.x_#{names[e-1]}", count: mt):'')
    end
end
share|improve this answer

Time difference a pretty printed string:

 class Numeric
   def duration
     rest, secs = self.divmod( 60 )  # self is the time difference t2 - t1
     rest, mins = rest.divmod( 60 )
     days, hours = rest.divmod( 24 )

     # the above can be factored out as:
     # days, hours, mins, secs = self.duration_as_arr
     #
     # this is not so great, because it could include zero values:
     # self.duration_as_arr.zip ['Days','Hours','Minutes','Seconds']).flatten.join ' '

     result = []
     result << "#{days} Days" if days > 0
     result << "#{hours} Hours" if hours > 0
     result << "#{mins} Minutes" if mins > 0
     result << "#{secs} Seconds" if secs > 0
     return result.join(' ')
    end
  end

Time difference as an Array:

  class Numeric
    def duration_as_arr
      rest, secs = self.divmod( 60 )
      rest, mins = rest.divmod( 60 )
      days, hours = rest.divmod( 24 )
      [days, hours, mins, secs]
    end
  end

Example:

  x = 1209801.079257
  x.duration
   => "14 Days 3 Minutes 21.079257000004873 Seconds" 
  x.duration_as_arr
   => [14, 0, 3, 21.079257000004873] 
share|improve this answer

As an alternative you can do this:

start = DateTime.now.strftime('%Q').to_i / 1000.0
#=> 1409163050.088
sleep 3.5
#=> 3
now_ms = DateTime.now.strftime('%Q').to_i / 1000.0
#=> 1409163053.606
'%.3f' % (now_ms - start)
#=> "3.518"
share|improve this answer
time_difference = current_time - old_time



 def seconds_fraction_to_time(time_difference)
    days = hours = mins = 0
      mins = (seconds / 60).to_i
      seconds = (seconds % 60 ).to_i
      hours = (mins / 60).to_i
      mins = (mins % 60).to_i
      days = (hours / 24).to_i
      hours = (hours % 24).to_i
    return [days,hours,mins,seconds]
  end

then you can print it out what ever way you wish,

i.e

if(days > 0)
return "#{days} Days #{hours} Hours"
else
return "#{hours} Hours #{mins} Minutes"
end
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.