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int num = 5;
int denom = 7;
double d = num / denom;

This results in 0. I know you can force it to work by doing

double d = ((double) num) / denom;

but there has to be another way, right? I don't like casting primitives, who knows what may happen.

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possible duplicate of Java - simple division in Java ---> bug/feature?! – Pascal Thivent Jun 29 '10 at 21:10
I made a bunch of searches, I find that this title is more descriptive – walnutmon Jun 29 '10 at 22:06
casting an 'int' to a double is safe, you will always get the same value without loss of precision. – Peter Lawrey Jun 30 '10 at 6:41
I would like to know if the following are the correct steps taken by the compiler for the division: 1) cast num to float 2) cast denom to float as well 2) divide num by denom. Please let me know if I'm incorrect. – mannyee Nov 21 '14 at 2:59

6 Answers 6

up vote 73 down vote accepted
double num = 5;

That avoids a cast. But you'll find that the cast conversions are well-defined. You don't have to guess, just check the JLS. int to double is a widening conversion. From §5.1.2:

Widening primitive conversions do not lose information about the overall magnitude of a numeric value.


Conversion of an int or a long value to float, or of a long value to double, may result in loss of precision-that is, the result may lose some of the least significant bits of the value. In this case, the resulting floating-point value will be a correctly rounded version of the integer value, using IEEE 754 round-to-nearest mode (§4.2.4).

5 can be expressed exactly as a double.

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+1. Stop being scared of casting. Learn how it works. It's all well-defined. – Mark Peters Jun 29 '10 at 21:03
@FabricioPH This works in every situation, and identically to the *1.0 solution. – Saposhiente Feb 23 '14 at 7:55
@Saposhiente It goes beyond working or not. Changing the type of a variable seems dirty code to me. If you have something that MUST BE an integer and you change the representation for a float just to be able to perform the math operation, you may be risking yourself. Also in some context reading the variable as an integer makes code easier to understand. – Fabricio PH Mar 1 '14 at 15:48
@FabricioPH, multiplying by 1.0 still changes the type of the result, just in a different way. 'Seems dirty code to me' does not explain in what scenario(s) you believe multiplying by 1.0 is actually better (or why that might be). – Matthew Flaschen Mar 3 '14 at 4:23
@FabricioPH You and the OP seem to be labouring under the false belief (where you say "Changing the type of the variable") that doing (double)num somehow changes num. It doesn't - it creates a temporary double for the context of the statement. – Paul Tomblin Mar 27 at 18:33

What's wrong with casting primitives?

If you don't want to cast for some reason, you could do

double d = num * 1.0 / denom;
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...which does an implicit cast before the multiplication – chrispy Jun 1 '11 at 19:49
In most cases this is better than changing the type of other variable. – Fabricio PH Aug 20 '12 at 3:12
@FabricioPH Nothing suggests this to be true, unless you have a source to cite. – Saposhiente Feb 23 '14 at 7:54
@Saposhiente replied in your other similar comment – Fabricio PH Mar 1 '14 at 15:49
You can also use the "D" postfix (to perform the same implicit cast); -- so for example: double d = num * 1D / denom; – BrainSlugs83 Oct 6 '14 at 2:47

I don't like casting primitives, who knows what may happen.

Why do you have an irrational fear of casting primitives? Nothing bad will happen when you cast an int to a double. If you're just not sure of how it works, look it up in the Java Language Specification. Casting an int to double is a widening primitive conversion.

You can get rid of the extra pair of parentheses by casting the denominator instead of the numerator:

double d = num / (double) denom;
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you can as well do double d = (double) num / denom;... (OK, this one depends on precedence) – Carlos Heuberger Jun 30 '10 at 12:25

If you change the type of one the variables you have to remember to sneak in a double again if your formula changes, because if this variable stops being part of the calculation the result is messed up. I make a habit of casting within the calculation, and add a comment next to it.

double d = 5 / (double) 20; //cast to double, to do floating point calculations

Note that casting the result won't do it

double d = (double)(5 / 20); //produces 0.0
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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. – Gerald Schneider Sep 18 '14 at 6:38

Cast one of the integers/both of the integer to float to force the operation to be done with floating point Math. Otherwise integer Math is always preferred. So:

1. double d = (double)5 / 20;
2. double v = (double)5 / (double) 20;
3. double v = 5 / (double) 20;

Note that casting the result won't do it. Because first division is done as per precedence rule.

double d = (double)(5 / 20); //produces 0.0

I do not think there is any problem with casting as such you are thinking about.

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use something like:

double step = 1d / 5;

(1d is a cast to double)

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1d is not a cast, it's just a declaration. – Sefier Tang Nov 14 at 14:44

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