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When I make a division in C#, it automaticaly rounds down. See this example:

double i;
i = 200 / 3;
Messagebox.Show(i.ToString());

This shows me a messagebox containing "66". 200 / 3 is actually 66.66666~ however.

Is there a way I can avoid this rounding down and keep a number like 66.6666667?

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8  
The important lesson here is not just that integer arithmetic is done in integers. Rather, it is that the types of the operands are more relevant to the program analysis than the type to which the result is being assigned. In C# we almost always reason from "inside" to "outside"; we don't say "oh, I see you're assigning this to a double, so I will do floating point arithmetic". Instead we say "I see you're dividing two integers; you must want the result as an integer. Oh, you want that integer as a double? then we'll convert it to a double." –  Eric Lippert Jun 10 '11 at 21:07
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9 Answers 9

up vote 16 down vote accepted

i = 200 / 3 is performing integer division.

Try either:

i = (double)200 / 3

or

i = 200.0 / 3

or

i = 200d / 3

Declaring one of the constants as a double will cause the double division operator to be used.

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200/3 is integer division, resulting in an integer.

try 200.0/3.0

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Or 200 / 3.0. Or 200.0 / 3. Or (double) 200 / 3. or 200 / (double) 3. Or however you want to do it. –  JAB Jun 10 '11 at 20:47
    
@JAB no time to think, just had to get there first :) –  John Boker Jun 10 '11 at 20:48
    
ah man! so much for being first! –  Bala R Jun 10 '11 at 20:59
    
i guess he's new, the rules are first post with correct answer wins... right? –  John Boker Jun 10 '11 at 21:03
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200 / 3 this is an integer division. Change to: 200.0 / 3 to make it a floating point division.

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Though the answer is actually 66.666, what is happening is that 200 / 3 is being calculated resulting in an integer. The integer is then being placed in the float. The math itself is happening as integer math. To make it a float, use 200.0 / 3. The .0 will cause it to treat 200 as a float, resulting in floating point math.

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Aside from the double vs int happening in that action, you're thinking of double as a precise unit. Try using the decimal datatype when you really care about accuracy.

More information at this answer: decimal vs double! - Which one should I use and when?

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You can specify format string with the desired number of decimal ponits:

double i;
i = 200 / 3.0;
Messagebox.Show(i.ToString("F6"));
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double i = 200.0 / 3;

double i = ((double)200)/3;

What happens is the two integers perform an integer divide, and then the integer answer is assigned to the float. To avoid that, always cast one of the numbers as a double.

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Try this

i = 200d/3d;

and it will not round.

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200 and 3 are both integers, so the result will be an integer. Convert one of them to a decimal.

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