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I have a row string in oracle table.

Some text № 3694452 from 31.08.2013, stilltext 02.09.2013 18:16:27

How can I take "02.09.2013 18:16:27" (from the end of row and after stilltext) for converting it to date.

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closed as off-topic by shellter, HansUp, default locale, Trinimon, Brian Nickel Oct 2 '13 at 18:32

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Have you tried anything yet? Because it's good practice to. –  Erik Allik Oct 2 '13 at 18:30

2 Answers 2

Assuming that the date string always positioned at the end of text, you can use regular expression like this:

select
  to_date(
    regexp_substr(your_column_name, '\d{2}.\d{2}.\d{4} \d{2}:\d{2}:\d{2}$'),
    'dd.mm.yyyy hh24:mi:ss')
from you_table_name;
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Lot of Thanks. All what I want. –  xxarchexx Oct 2 '13 at 2:04

This assumes that the date is always at the end of the string and is fixed in format.

with dummy as 
  (select '3694452 from 31.08.2013, stilltext 02.09.2013 18:16:27' data
   from dual)
select to_date(substr(data,length(data)-19), 'MM.DD.YYYY HH24:MI:SS') 
from dummy

There are more elegant ways to do this with regular expressions, but I am assuming this will suffice.

SQL Fiddle demo here

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Thanks so much,I think it what me need. In expression I have problem - how grab text in end of row. I can write expression for validate but can't write in this case. But I will try find in that approach too. Thanks you soo much. –  xxarchexx Oct 2 '13 at 1:54
    
btw length(data)-19 in this case can be shortened to just -19. –  Jeffrey Kemp Oct 2 '13 at 6:08

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