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I have a column of strings which have been extracted from email content. The strings are in the format:-

Tuesday 12th March 2019 

I can use split_part to drop the Tuesday (anything up to and including 'day' is cut) but that's a lot more difficult for the day of the month part. I can convert this to a date if the 'th' (or 'rd' or 'st') is gone from the day of the month but I can't quite get there.

Any advice gratefully appreciated.

Many thanks,

Barry

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Could you try this :

date_parse('Tuesday 12th March 2019','%W %D %M %Y')

Depending on if the prestosql doc is up to date, this might not work because it is said :

Warning The following specifiers are not currently supported: %D %U %u %V %w %X

presto sql doc

EDIT : In addition to gordon's answer you could try to use :

date_parse(regexp_replace('Tuesday 12th March 2019','(\d+)((th|rd|nd|st) )','$1 '),'%W %d %M %Y')
  • Yeah, it falls down on %D unfortunately. :( – Barry Evans Nov 21 '19 at 15:32
  • @BarryEvansSee my edit which might upgrade gordon's answer – Gosfly Nov 21 '19 at 15:39
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    Brilliant, that's what I was looking for! Thank you both very much, appreciate the help! – Barry Evans Nov 21 '19 at 16:04
  • Also you might prefer %e instead of %d because %d is for day like 01, 02 etc. %e is for day written like 1,2, etc. I think this will be better because your date should be 1st and not 01st ;) Have fun ! Glad to help ! – Gosfly Nov 21 '19 at 16:15
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There are a finite number of suffixes, so how about a brute force appraoch:

date_parse(replace(replace(replace(replace(substr(str, position(' ' in str) + 1
                                          ), 'st', ''
                                  ), 'nd', ''
                          ), 'rd', ''
                  ), 'th'),
           '%d %M %Y'
          )

It would be much simpler if date_parse() supported %D, but apparently it does not.

  • date_parse was the first thing I tried. It might just have to be brute force ... but odd there isn't a native way of doing this! Thanks for the tip. – Barry Evans Nov 21 '19 at 15:31
  • Ah, yes ... I had considered brute force then realised I'd be taking the 'st' out of August. Can still be done I suppose by adding in a case when ... meh! – Barry Evans Nov 21 '19 at 15:33
  • And I didn't read properly because you substr'd it. Thank you, I think that's the best approach for now. – Barry Evans Nov 21 '19 at 15:36
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For anyone interested, I took the advice from both users above which helped me towards the solution. The final bit of code looked like this:-

date(date_parse(trim(regexp_replace(split_part(split_part(split_part(my_data,split_here ,2),'split_here_2,1),split_here_3,2),'(\d+)((th|rd|nd|st) )','$1 ')),'%e %M %Y'))

which returned:-

2018-11-04

2019-04-06

2018-11-02

2019-09-19

2019-07-12

2018-11-04

2018-09-29

2018-10-19

2018-11-02

Thanks again for the help!!

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