15

I have a bunch of strings but I only want to keep the ones with this format:

x/x/xxxx xx:xx

What is the easiest way to check if a string meets this format? (Assuming I want to check by if it has 2 /'s and a ':' )

1
  • 8
    The simplest way is to convert it into a datetime and catch the error when it fails. It is a datetime right?
    – Ben
    Commented Feb 19, 2013 at 20:22

3 Answers 3

29

try with regular expresion:

import re
r = re.compile('.*/.*/.*:.*')
if r.match('x/x/xxxx xx:xx') is not None:
   print 'matches'

you can tweak the expression to match your needs

3
  • 1
    Thing is, stuff like 'xxxxx/xxxxx/x 124453:24345' also matches that. Use: ././.{4} .{2}:.{2}, assuming it's any character. If it has to be digits: \d/\d/\d{4} \d{2}:\d{2}
    – TyrantWave
    Commented Feb 19, 2013 at 20:35
  • right, but the original post says: Assuming I want to check by if it has 2 /'s and a ':'. The example looks like a date format, but is it a date?
    – kofemann
    Commented Feb 19, 2013 at 20:36
  • He also gave a format he wanted to keep before, which looks exactly like a datetime format - I'd assume it was needed to be exact to that format personally.
    – TyrantWave
    Commented Feb 19, 2013 at 20:37
10

Use time.strptime to parse from string to time struct. If the string doesn't match the format it raises ValueError.

8

If you use regular expressions with match you must also account for the end being too long. Without testing the length in this code it is possible to slip any non-newline character at the end. Here is code modified from other answers.

import re
r = re.compile('././.{4} .{2}:.{2}')
s = 'x/x/xxxx xx:xx'
if len(s) == 14:
  if r.match(s):
    print 'matches'

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