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I have an output parameter in oracle called outTime of type DATE. The format for this is set as yyyy-mm-dd and I need to be able to include the time from a table when I select into it.

I keep getting an error : date format picture ends before converting entire input string.

here is the insert into statement.

SELECT TO_CHAR(Table_Time, 'YYYY-MM-DD HH24:MI:SS') into outTime
FROM Table_One; 

the out parameter is declared as

outTime OUT DATE;

within a stored procedure in a package of other procedures.

I keep finding ways to set the format globally but I only need to set the format for this instance.

Thanks for any insight.

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1 Answer 1

up vote 4 down vote accepted

A DATE does not have a format. A string representation of a date has a format but a DATE does not.

If Table_Time is a VARCHAR2 (a string representation of a date) in the format yyyy-mm-dd hh24:mi:ss, then you would want to use TO_DATE to convert the string into a DATE (I assume that there is a single row in table_one in this example, otherwise the SELECT ... INTO will raise a no_data_found or a too_many_rows exception.

SELECT TO_DATE(Table_Time, 'YYYY-MM-DD HH24:MI:SS') 
  into outTime
  FROM Table_One; 

If Table_Time is a DATE, you would simply assign it to outTime

SELECT Table_Time
  into outTime
  FROM Table_One; 

When you want to display outTime, you'll need to convert the DATE to a string representation of a date (a VARCHAR2). At that point, you can use the TO_CHAR function.

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Thank you for the very fast and clear response. I think I always considered date existing only as a string instead of recognizing it as it's own abstract object. What I did in this instance then was change it to_char from the date object into a varchar variable and then back to_date into the out parameter so the application could use it. –  dee Aug 28 '12 at 15:20
1  
@dee - Why would you convert a DATE to a VARCHAR2 only to convert it back to a DATE? Why not simply assign the original DATE to outTime? Adding two unnecessary conversion steps to your code is going to make it slower and more error-prone. –  Justin Cave Aug 28 '12 at 15:22
    
I agree it seems convoluted but I can not assign the date to outTime as it only shows the date as YYYY-MM-DD. The value for the Table_Time field has a format of YYYY-MM-DD HR24:MI:SS. I need to convert the date to char to get the correct format. Or am I missing something? –  dee Aug 28 '12 at 17:08
1  
@dee - You're missing something. If table_out.table_time is a DATE, it does not have a format. A DATE does not have a format. It does always have a time component. That time component is not always displayed when you convert a DATE to a string representation of a date which is what would have to have happened in order to convert a DATE to a sting with the format YYYY-MM-DD. If both outTime and Table_Time are of type DATE, you should just do a direct assignment. That will copy both the day and the time component. –  Justin Cave Aug 28 '12 at 17:15
    
That makes complete sense however when I first selected directly into the outTime date parameter I only had date appear as YYYY-MM-DD. After your suggestion and my admittedly convoluted solution it then displayed the full value of time from the Table_Time field. Now, after changing it back it to directly selecting Type DATE into DATE, I get the full value of date including hr, mm, and ss; as you say I should. Must be magic.... :/ or more likely something I did wrong the first time around. Thanks for the help. –  dee Aug 28 '12 at 17:34

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