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I have a string like this: 00:11:40 or 00:02:40 how do I formated so that I can always get rid of the leading zero(s) and colon(s), so it looks like this 11:40 or 2:40

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5 Answers

up vote 15 down vote accepted

We call these "leading" characters, not trailing, since they're at the beginning, but the regex for this is very easy

x.sub(/^[0:]*/,"")

That works exactly as you phrased it: starting at the beginning of the string, remove all the 0s and :s.

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Some of us are just humble students of the regex, others are just masters (you got an up from me). That's what happens when you TDD at 2200 hrs. Refactoring is left as an exercise. –  Gutzofter Sep 16 '09 at 18:53
    
"00:00:23" results in "23" which seems odd. But no offense, this is still exactly what the OP requested. –  p11y May 23 '13 at 14:16
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You can use something like Peter said, but would correctly be:

s = "00:11:40"
s = s[3..-1]   # 11:40

Another approach would be to use the split method:

s = "00:11:40".split(":")[1,2].join(":")

Although I find that one more confusing and complex.

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EDIT: the OP wanted this from the beginning:

seconds = 11*60+40
Time.at(seconds.to_i).gmtime.strftime('%M:%S')  # gives '11:40'

or see man strftime for more formatting options.

EDIT: incorporating all the discussion, here's the recommended approach. It removes the need for the Time call as well.

seconds = seconds.to_i
if seconds >= 60
  "#{seconds/60}:#{seconds%60}"
else
  "#{seconds}"
end
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Thanks, but I need a general way of doing this. I get the string through a conversion from seconds Time.at(seconds.to_i).gmtime.strftime('%R:%S') –  rubynoob Sep 16 '09 at 3:31
    
Close! I need to figure how to use "gsub" with some regex to strip the leading zeros and/or colons –  rubynoob Sep 16 '09 at 4:07
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You might want to try positive look-behind regex. Nice reference

it "should look-behind for zeros" do
time = remove_behind_zeroes("ta:da:na")
time.should be_nil

time = remove_behind_zeroes("22:43:20")
time.should == "22:43:20"

time = remove_behind_zeroes("00:12:30")
time.should == "12:30"

time = remove_behind_zeroes("00:11:40")
time.should == "11:40"

time = remove_behind_zeroes("00:02:40")
time.should == "2:40"

time = remove_behind_zeroes("00:00:26")
time.should == "26"

end

def remove_behind_zeroes(value)
exp = /(?<=00:00:)\d\d/
match = exp.match(value)
if match then return match[0] end

exp = /(?<=00:0)\d:\d\d/
match = exp.match(value)
if match then return match[0] end

exp = /(?<=00:)\d\d:\d\d/
match = exp.match(value)
if match then return match[0] end

exp = /\d\d:\d\d:\d\d/
match = exp.match(value)
if match then return match[0] end
nil

end

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No need for four different regexes and 15 lines of code to do this! A single .sub(/^[0:]*/,"") works fine! –  glenn mcdonald Sep 16 '09 at 12:05
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A lot of the times you can simply rely on basic conversion techniques, in ruby for example, if you had a string like "05" and wanted it to just be 5, you'd simply do "05".to_i

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