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If I have a Time object got from :

and later I instantiate another object with that same line, how can I see how many milliseconds have passed? The second object may be created that same minute, over the next minutes or even hours.

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6 Answers 6

up vote 72 down vote accepted

As stated already, you can operate on Time objects as if they were numeric (or floating point) values. These operations result in second resolution which can easily be converted.

For example:

def time_diff_milli(start, finish)
   (finish - start) * 1000.0

t1 =
# arbitrary elapsed time
t2 =

msecs = time_diff_milli t1, t2

You will need to decide whether to truncate that or not.

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add a to_i and you have it as an integer, eg: ((finish - start) * 1000.0).to_i –  Travis R Dec 8 '10 at 6:14
finish.to_f - start.to_f ? –  bodacious Nov 27 '14 at 17:49
finish - start yields floating point; .to_f would be redundant. –  ezpz Nov 29 '14 at 1:15

You can add a little syntax sugar to the above solution with the following:

class Time
  def to_ms
    (self.to_f * 1000.0).to_i

start_time =
end_time =
elapsed_time = end_time.to_ms - start_time.to_ms  # => 3004
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Extending the Time class looks the cleanest, thanks! –  Brian Armstrong Jan 20 '12 at 0:19

I think the answer is incorrectly chosen, that method gives seconds, not milliseconds.

t =­o_f
=> 1382471965.146

Here I suppose the floating value are the milliseconds

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ezpz's answer is almost perfect, but I hope I can add a little more.

Geo asked about time in milliseconds; this sounds like an integer quantity, and I wouldn't take the detour through floating-point land. Thus my approach would be:

irb(main):038:0> t8 =
=> Sun Nov 01 15:18:04 +0100 2009
irb(main):039:0> t9 =
=> Sun Nov 01 15:18:18 +0100 2009
irb(main):040:0> dif = t9 - t8
=> 13.940166
irb(main):041:0> (1000 * dif).to_i
=> 13940

Multiplying by an integer 1000 preserves the fractional number perfectly and may be a little faster too.

If you're dealing with dates and times, you may need to use the DateTime class. This works similarly but the conversion factor is 24 * 3600 * 1000 = 86400000 .

I've found DateTime's strptime and strftime functions invaluable in parsing and formatting date/time strings (e.g. to/from logs). What comes in handy to know is:

  • The formatting characters for these functions (%H, %M, %S, ...) are almost the same as for the C functions found on any Unix/Linux system; and

  • There are a few more: In particular, %L does milliseconds!

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Good to know! Thanks unknown :) –  Geo Nov 1 '09 at 15:48
Anyway %L exists only in Ruby 1.9 ;) –  Rafa de Castro May 31 '11 at 10:50 can help you but it returns seconds.

In general, when working with benchmarks I:

  • put in variable the current time;
  • insert the block to test;
  • put in a variable the current time, subtracting the preceding current-time value;

It's a very simple process, so I'm not sure you were really asking this...

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Try subtracting the first from the second. Like so:

a =
puts - a # about 3.0

This gives you a floating-point number of the seconds between the two times (and with that, the milliseconds).

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