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I've found myself somewhat improbably* needing to round to the nearest ODD integer in SQL. There's a nice solution for how to round to the nearest N (2,5,10,etc) here, but nothing explicitly on odd numbers. Using Oracle 11gR2, if there are solutions particular to Oracle out there.

*Need to join my data to tables stripped from this study. The authors used a consistent bin width of 2...but sometimes it's even, and others it's odd.

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5 Answers 5

up vote 3 down vote accepted

Here is an oracle PL/SQL Function that would do that:

CREATE OR REPLACE FUNCTION ROUNDODD 
(
  IMPNUM IN NUMBER  
) RETURN NUMBER AS
roundnum number;
oddnum number;
BEGIN
roundnum := round (IMPNUM,0);

IF mod(roundnum,2) = 1
THEN RETURN roundnum;
ELSE
IF roundnum > IMPNUM
THEN RETURN roundnum-1;
ELSE RETURN roundnum+1;
end if;
end if;
END ROUNDODD;
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i tested it in SQL developer and it seems to handle all positive cases I could think of well –  Brandon Kreisel Jun 12 '12 at 20:28
    
does DCP's answer pass your test cases? Misbehaving on my data. –  Andrew Jun 12 '12 at 20:29
    
I'm sorry, what do you mean by DCP? –  Brandon Kreisel Jun 12 '12 at 20:30
    
should have been more clear - another answer on this thread stackoverflow.com/a/11004077/561698 –  Andrew Jun 12 '12 at 20:31
    
your function worked beautifully - thanks! –  Andrew Jun 12 '12 at 20:32

You could do something like this:

DECLARE
  n FLOAT;
BEGIN  
   n := 195.8;
   SELECT 
      CASE
         WHEN mod(FLOOR(n),2) = 0 THEN FLOOR(n)+1
         ELSE FLOOR(n)
      END NUM
      INTO n
   FROM DUAL;
   dbms_output.put_line(to_char(n));
   END;
/

Sometimes straightfoward is best, as people who come along after you will understand what's going on.

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Might be missing something, but not sure that this works - it rounded 195.8 to 197, and under my 'round to nearest odd' I would want that to go to 195. –  Andrew Jun 12 '12 at 20:27
    
@Andrew - Yes, I misunderstood the requirement. See latest edit. –  dcp Jun 12 '12 at 20:33
    
edited version works perfectly - thanks! –  Andrew Jun 12 '12 at 20:37

I don't think you need a case statement, this should do it:

SELECT 
   ROUND((11.9-1)/2,0)*2+1
FROM DUAL
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that seems to do it! –  Andrew Jun 12 '12 at 20:40

Arithmetic OR?

ROUND(3.14,0)|1

EDIT

Andriy correctly corrects this to FLOOR(3.64)::int|1. (which works correctly).

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1  
Close, but not correct. 1. Both operands of | should be int (the result of your ROUND() isn't). 2. What do you think ROUND(3.64,0)::int|1 would evaluate to? –  Andriy M Jun 13 '12 at 21:10
    
Hey, you're right, twice. What about FLOOR(3.64,0)::int|1 ? –  bob2 Jun 14 '12 at 2:24
1  
Well, FLOOR() doesn't accept a second parameter, as you can see for yourself, but without it, everything's fine, same as with TRUNC(), which, incidentally, does accept a second parameter. By the way, did I tell you SQLFiddle.com is a great tool for testing small solutions like yours? :) –  Andriy M Jun 14 '12 at 4:58
    
P.S. Note, though, that TRUNC() and FLOOR() work differently on negatives, because, strictly speaking, they perform different functions: the latter rounds the value down to the nearest integer, while the former simply truncates the part after the specified decimal digit (or, if not specified, just truncates the decimal part). Thus, FLOOR(-3.64) evaluates to -4 (because -4 < -3.64), while TRUNC(-3.64) to -3. If negatives are possible, this should be taken into consideration. –  Andriy M Jun 14 '12 at 5:10
    
Andriy, thanks for the tip on sqlfiddle. And clearly I have no business answering SQL questions ;) –  bob2 Jun 14 '12 at 18:13

using modulus can help you find even/odd numbers. add 1 to the even numbers

select
    case when (value % 2) <> 0 then value
    else value + 1 end
from table
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