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I wrote a code for checking typecasting in C#. The following code:

using System;
class Convert{
    public static void Main(){
        double a=14.25,b=26.12;
        var z=(int)(a*b);
        Console.WriteLine("z= "+z);
        Console.ReadKey(true);
    }
}

Gave output:

z=372

But when i modified the code a bit then i got a big difference between the value of z earlier and after modification.

using System;
    class Convert{
        public static void Main(){
            double a=14.25,b=26.12;
            var z=(int)a*b;  // Modified part
            Console.WriteLine("z= "+z);
            Console.ReadKey(true);
        }
    }

Gave output:

z=365.68

I don't understand that why is there so much difference after removing the brackets from the original code?

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4 Answers 4

up vote 7 down vote accepted

Without the outer parentheses, the (int) cast applies to a only.
Therefore, you end up multiplying a truncated integer by a normal double, and type inference turns var into double.

With the parentheses, the cast applies to the result of the multiplication. Therefore, the entire result gets truncated, and type inference turns var into int.


Thus, changing var to double would have no effect on either example. (in the second case, it would assign the truncated int to a double variable)

Changing var to int would turn the second example into a compiler error.

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Thanks .. I got it :) –  Afaq Oct 26 '12 at 14:24
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brackets set prioryty

var z=(int)(a*b);//(a*b) cast to int
var z=(int)a*b;//a cast to int and myltiply with b
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the priority of conversation operation () is bigger than multiply priority. in first case you have:

double tmp = a*b;
int z = (int)tmp;

and in second:

int tmp = (int)a;
double z = tmp * b;
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in the line

var z=(int)a*b;

a is being converted into an int before it is being multiplied. So it is going to be 14*26.12. Where in the 2nd case, you are multiplying a*b and converting the result into an int afterward.

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