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In c# when you want to divide the result of a method such as below, what is the best way to force it to return a double value rather than the default integer.

(int)Math.Ceiling((double)(System.DateTime.DaysInMonth(2009, 1) / 7));

As you can see I need the division to return a double so I can use the ceiling function.

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6 Answers 6

up vote 17 down vote accepted

A division of two int numbers returns an int, truncating any decimal points. This is generally true for other data types as well: arithmetic operations don't change the type of their operands.

To enforce a certain return type, you must therefore convert the operands appropriately. In your particular case, it's actually sufficient to convert one of the operators to double: that way, C# will perform the conversion for the other operand automatically.

You've got the choice: You can explicitly convert either operand. However, since the second operand is a literal, it's better just to make that literal the correct type directly.

This can either be done using a type suffix (d in the case of double) or to write a decimal point behind it. The latter way is generally preferred. in your case:

(int)Math.Ceiling(System.DateTime.DaysInMonth(2009, 1) / 7.0);

Notice that this decimal point notation always yields a double. To make a float, you need to use its type suffix: 7f.

This behaviour of the fundamental operators is the same for nearly all languages out there, by the way. One notable exception: VB, where the division operator generally yields a Double. There's a special integer division operator (\) if that conversion is not desired. Another exception concerns C++ in a weird way: the difference between two pointers of the same type is a ptrdiff_t. This makes sense but it breaks the schema that an operator always yields the same type as its operands. In particular, subtracting two unsigned int does not yield a signed int.

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Ah, thank you, this was confusing me because I come from vb background and the same line of code was working as expected in but not c#. I changed the parenthesis to cast the first operand and it worked –  Element Jan 28 '09 at 19:25
wouldn't using 7d instead of using explicit casting work the same way be less ugly? –  Daniel Schaffer Jan 28 '09 at 19:27
+1, but make it 7.0d –  user7116 Jan 28 '09 at 19:31
@Daniel, sixlettervariables: You're of course right, I lapsed (although I would never use the suffix D for doubles, since this is redundant: rather, I'd recommend writing 7.0). However, others have already answered this. I guess we can coexist. –  Konrad Rudolph Jan 28 '09 at 19:44
Hah, didn't realize I put a 'd' there, so I'm with you '7.0'! –  user7116 Jan 29 '09 at 14:38

Change the 7 to a double:

(int) Math.Ceiling(System.DateTime.DaysInMonth(2009, 1) / 7.0);
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you don't need the double casting anymore –  Igor Zelaya Jan 28 '09 at 19:25

just divide with a literal double:

(int)Math.Ceiling((System.DateTime.DaysInMonth(2009, 1) / 7.0))
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As far as I know, you can't force a function to return a different type, so casting the result is your best bet. Casting the result of the function to a double and then dividing should do the trick.

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Um...what? I think the question is how to use floating-point division rather than integer division. –  Outlaw Programmer Jan 28 '09 at 19:26
In C#, dividing an int by an int always returns an int. To use fp division, you have to divide doubles. Since you can't make the function return a double, you have to cast either the function's return value to a double, or make the divisor a double. –  Alex Jordan Jan 30 '09 at 12:59

To expand upon Konrad's answer...

Changing 7 to 7.0, 7 to 7D, 7 to 7M all get you the answer you want as well.

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For a completely different approach that avoids casting and floating-point math altogether...

int result = val1 / val2;
if (val1 % val2 != 0) result++;

So, in your case...

int numDaysInMonth = System.DateTime.DaysInMonth(2009, 1);
int numWeeksInMonth = numDaysInMonth / 7;
if (numDaysInMonth % numWeeksInMonth != 0) numWeeksInMonth++;

This approach is quite verbose, but there might be some special cases where it is preferable. Technically, there should be a slight performance advantage to the modulus approach, but you'll be hard-pressed to measure it.

In your case, I'd stick with the accepted answer :-)

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