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I am fairly new to python but previously had a log parser working, which is now giving me issues! A sample of the log I am trying to parse is:

Oct 18 00:00:37 

I have defined the initial parse objects as follows:

   #Define Parse objects
    Month=pyp.Regex(r"([a-zA-Z]{,10})")           #up to 10 letters: lowercase a-z or uppercase A-Z
    Day_Of_Month=(".")        #(r"(\d\d)"         #digit, digit

As shown above, I had tried (r"(\d\d)" as the day of month object, but after errors tried to make it even more generic. Regardless of trying different variations and some searching around I still get the error below.

Error Message:

"pyparsing.ParseException: Expected ".", found '1'  (at char 4), (line:1, col:5)"

No doubt this is likely an obvious oversight, but I can't figure it out. Any help appreciated!

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  • Perhaps you meant Day_of_month = pyp.Regex(r".{1,2}")? Or you could also try using pyparsing's classes that abstract away the re arcana and use pyp.Word(pyp.nums), which would be equivalent to a regex of the form \d+, but a little more readable.
    – PaulMcG
    Oct 19, 2020 at 16:30
  • I am an idiot. I did indeed forget to include pyp.Regex...! apologies. Thanks for your help!
    – massey95
    Oct 19, 2020 at 16:36
  • I'll add one more comment, before this question gets closed because it is solved by fixing a typo. Using pyp.Regex(".") will match any single character, which feels pretty inviting to mistaken parsing depending on what you get in the future. Also a regex of "." will only match one character, you'll probably want ".+", ".{1,2}" or "\d+" to be more specific to just accepting 1 or 2 numeric digits, instead of just anything.
    – PaulMcG
    Oct 19, 2020 at 18:46

1 Answer 1

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PaulMcG answered my Q. I simply forgot to add pyp.regex

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