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Given a timestamp in ISO 8601 format below:

2012-04-21T01:56:00.581550

what regular expression would remove the decimal point and the millisecond precision? In other words, a regex that applies to the above and returns the following:

2012-04-21T01:56:00

This is probably very simple, but not being particular familiar with regex I am unsure how to approach the solution. Thanks in advance for any assistance.

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5 Answers

up vote 3 down vote accepted

If you must use regex, you can use "[.][0-9]+$" and replace it with an empty string "". It is easier to locate the trailing '.', and chop off the string at its index. In C#, that would be

myStr = myStr.Substring(0, myStr.LastIndexOf('.')-1);
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I agree that regex is overkill here and even likely prone to errors. –  Donald Miner Apr 21 '12 at 0:11
    
Thanks, there is a method to split a string based upon a delimiter in the language I am using so that seems to be the better way. –  Skoota Apr 21 '12 at 0:20
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why do you want to use regex? use string operations

in python :

>>> "2012-04-21T01:56:00.581550".split(".")
['2012-04-21T01:56:00', '581550']
>>> "2012-04-21T01:56:00.581550".split(".")[0]
'2012-04-21T01:56:00'
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s/\..*$//

It looks like you can assume there will only be one dot. The above sed expression finds a dot, then replaces everything after that dot up until the newline with nothing.

Without sed: replace \..*$ with the empty string ""

\. is the literal period (have to escape it because . means any character)

.* means any and all characters

$ means end of line

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This regex ^[\w\-:]+ will only match up to the period and excluding it. You can use this to find the part of the time-stamp you want.

  • ^ is the beginning of the string.
  • \w is any "word".
  • \- includes the hyphen.
  • : includes the colon.
  • These placed in [] means only matching these characters.
  • The + means matching one or many instances of those characters.

Since the period (.) is not included, the regex will stop matching when it gets to that.

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Code:

$_ = '2012-04-21T01:56:00.581550';
s/\.\d*//;
print $_, "\n";

Test:

http://ideone.com/52hij

Output:

2012-04-21T01:56:00
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