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This is how I am creating q

Double q = ((r * (i/5)) + y);

at this point the values of the other variables are

r = 3.470694142992069E-5
i = 1
y = -116.30237535361584

but

q = -116.30237535361584

is there something wrong with this math? ( Java )

q should be -116.30236841222755
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1  
Better use the primitive type double instead of the class Double for simple double values. –  starblue Apr 28 '11 at 5:54
    
thank you today I forgot about the primitive type and used to all through my code, lot of refraction to be done –  Seth Hikari Apr 28 '11 at 6:01

6 Answers 6

up vote 6 down vote accepted

i and 5 are both integers, so the (i/5) portion evaluates to an integer (0). That negates the multiplication by r, so you're left with only the value for y.

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Try

Double q = ((r * ((double)i/5)) + y);

Here's the complete code.

class Main
{
        public static void main (String[] args) throws java.lang.Exception
        {
                double r = 3.470694142992069E-5;
                int i = 1;
                double y = -116.30237535361584;
                Double q = ((r * ((double)i/5)) + y);
                System.out.println(q);

        }
}

Output: -116.30236841222755

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But I just changed i to a Double just as well –  Seth Hikari Apr 28 '11 at 1:54
    
Linking to a temporary code-drop site is a BAD idea. That link will evaporate in a few days ... and your answer will then be broken. –  Stephen C Apr 28 '11 at 2:24

If i is an integer (which seems to be the case), then the i/5 expression will perform integer math resulting in zero.

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i is not a double. Integer division floors. Anything times 0 is 0.

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maybe you can try

Double q = ((r * i/5.0) + y);
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Floating point values are notoriously imprecise. The difference you're showing can be expected for double arithmetic. If you really need the extra precision, jquantity is an open source Java library for precise math.

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3  
The values used are well within the precision of double. –  Ignacio Vazquez-Abrams Apr 28 '11 at 1:47

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