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Here is the code I'm using in the example:

 PRINT @set1
 PRINT @set2

 SET @weight= @set1 / @set2;
 PRINT @weight

Here is the result:

47
638
0

I would like to know why it's returning 0 instead of 0,073667712

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What data type is @weight? –  Dimi Toulakis Nov 3 '09 at 10:14
    
it's is an 'int': DECLARE @weight INT –  Roch Nov 3 '09 at 10:15
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5 Answers 5

up vote 44 down vote accepted

Either declare set1 and set2 as floats instead of integers or cast them to floats as part of the calculation:

SET @weight= CAST(@set1 AS float) / CAST(@set2 AS float);
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Because it's an integer. You need to declare them as floating point numbers or decimals, or cast to such in the calculation.

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If I change the @weight variable to float, is it enough ? –  Roch Nov 3 '09 at 10:17
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When you use integers in a division, you will get integer division. When you use doubles/floats, you will get floating point division (and the answer you want to get).

So you can

  1. declare one or both of the variables as float/double
  2. cast one or both of the variables to float/double.

Do not just cast the result of the integer division to double: the division was already performed as integer division, so the numbers behind the decimal are already lost.

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if you declare it as float or any decimal format it will display

0

only

E.g :

declare @weight float;

SET @weight= 47 / 638; PRINT @weight

Output : 0

If you want the output as

0.073667712

E.g

declare @weight float;

SET @weight= 47.000000000 / 638.000000000; PRINT @weight
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Hum ok I get it now but the two numbers I want to divide are variables , and it doesn't seems to work if the .0000 isn't specified in the variable. –  Roch Nov 3 '09 at 10:23
    
so you need to cast both @set1 and @set2 to float :) –  anishMarokey Nov 3 '09 at 10:33
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Simply mutiply the bottom of the division by 1.0 (or as many decimal places as you want)

PRINT @set1 
PRINT @set2 
SET @weight= @set1 / @set2 *1.00000; 
PRINT @weight
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Thanks man. Your code helped me to answer this one - stackoverflow.com/questions/20532187/… Can you tell me how to truncate the extra zeros caused by that multiplication ? Thanks. –  Trojan.ZBOT Dec 12 '13 at 0:45
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