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I have a column called data_time (varchar) and there are about 200 thousand rows. I would like to convert those rows to ordinary date/time instead.

I have tried this with no luck.

example value in a row: 927691200000000

SELECT * TO_DATE('19700101',yyyymmdd') + ((date_time/1000)/24/60/60) thedate 2 FROM table1

I am new to SQL and help is appreciated!

Thank you.

share|improve this question
    
What does "no luck" mean? Did you get an error? If so, what error? There appear to be a couple of obvious syntax errors in the query you posted but it's not clear whether those errors are your problem or whether you have transcribed the SQL statement incorrectly (the * and the 2 are both errors). What date does the number you provided represent? – Justin Cave Dec 11 '13 at 17:12
up vote 3 down vote accepted

I cleaned up the obvious syntax errors, added some date formatting, and just hardcoded the one sample value you provided, thus:

SELECT to_char(TO_DATE('19700101','yyyymmdd') + ((927691200000000/1000)/24/60/60),'DD-MON-YYYY') thedate  FROM dual;

And that yielded:

ERROR at line 1:
ORA-01841: (full) year must be between -4713 and +9999, and not be 0

Which suggests that your unix time is (probably?) expressed in microseconds, not milliseconds.

So, I modified the query thus:

SELECT to_char(TO_DATE('19700101','yyyymmdd') + ((927691200000000/1000000)/24/60/60),'DD-MON-YYYY') thedate  FROM dual;

Which returns:

THEDATE
-----------
26-MAY-1999

Which I assume to be correct?

Hope that helps....

share|improve this answer
    
It worked, thank you for your explanation! – osbt Dec 16 '13 at 14:52

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