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Consider the following:

void Foo(int start, int end)
{
    int mid = (start + end) / 2;
}

void Bar(int start, int end)
{
    int mid = (start + end) * 0.5;
}

Why does Foo compiles successfully while Bar does not? Dividing by 2 implicitly casts the result to an int while multiplying by 0.5 gives an un-casted double:

Cannot implicitly convert type 'double to int. An explicit conversion exists(are you missing a cast?)

What was the C# language designers' reasoning behind this?

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4 Answers 4

up vote 10 down vote accepted

The / does integer division (5/3 = 1). To make it do float division one of the operand must be floating point (float or double). This is because there are cases when your application wants to get access to the quotient or the remainder of a division (for remainder you use %). Also, integer division is faster than floating one.

On the other hand, multiplying by a float always gives back a float. To save it to an integer type you have to do the type cast yourself. Floating point values have a different representation in memory and can also lead to loss of precision.

It is the same thing in almost all programming languages: almost all of them have integer division and floating point division, more often using the same operator. Almost all typed languages require a cast from floating point to integral types.

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1  
I think you forgot to mention, WHY this behavior is like it is. –  Rand Random Apr 6 at 11:12
1  
@RandRandom: expanded it a little. If this is not what you meant, please be more explicit in the comment. –  Mihai Maruseac Apr 6 at 11:15
1  
"It is the same thing in all programming languages." I think this statement is too generic. –  Szymon Apr 6 at 11:34
    
Thanks, I've expanded it –  Mihai Maruseac Apr 6 at 11:36
    
In case anyone wonders what untyped languages are out there, an example would be TCL where everything is a string. –  Cristian Ciupitu Apr 6 at 13:02

The answer is in the C# documentation. On / operator, it says

When you divide two integers, the result is always an integer. For example, the result of 7 / 3 is 2.

Multiplication operator doesn't have this behaviour so multiplying by double produces a double (integer can be implicitly cast before being multiplied as it is a broadening type conversion). The result cannot be implicitly cast as it would be a narrowing type conversion.

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1  
I think you forgot to mention, WHY this behavior is like it is. –  Rand Random Apr 6 at 11:13
    
@RandRandom Not sure what you mean. Because C# designers created it this way? –  Szymon Apr 6 at 11:14
    
But what could the reason behind this be, why would those two operators behave differently, the OP asks specifically WHY he needs a cast for the one and not the other. –  Rand Random Apr 6 at 11:17

This question is not relevant to integer division.

This question is all about why I can do int / 2 but I can't do int * 0.5.

From 7.7.2 Division operator

int operator /(int x, int y);

That's why it is ok to do.

From 7.7.1 Multiplication operator

There is no double * int or vice versa, only double * double and int * int. Since there is no implicit conversion from double to int but there is an implicit conversion from int to double, the int will be converted to decimal. So that's what the compiler actually does.

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Got it.

Foo() works because everything involved in the operation is of int data type.

So, compiler will have no problem doing calculations because all are int type and the mid is also int type. So the compiler will have no problem.

To proove my point, the same Foo() will not work if you do this:

void Foo(int start, int end)
{
    int mid = (start + end) / 2.0;
}

because, now 2.0 is a double and calculation is between int + int / double and there is no guarantee that the returning number from the calculation is int.

The Foo() is doing integer division, while Bar() is doing float multiplication

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Downvoter, care to elaborate? –  Amit Joki Apr 6 at 11:26
    
@Stijn, I've clearly explained it. See the last two lines –  Amit Joki Apr 6 at 11:27
    
int + int = int but float + int = float. If you do float + int = int then you'll get a error. Its that simple. @Stijn. –  Amit Joki Apr 6 at 11:29
    
Meh. I think I brainfarted. Disregard everything I said. –  Stijn Apr 6 at 11:29

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