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I wrote

return java.lang.Math.round(someVariable*1.234234);

into eclipse in a function which returns an int but it wanted me to include (int) to make it like this

 return (int) java.lang.Math.round

What is this (int) doing?

Thanks

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up vote 3 down vote accepted

Well if you look at the Docs,

http://docs.oracle.com/javase/7/docs/api/java/lang/Math.html

Math.round returns a long when it's parameter isn't a float.

So you have to cast the long to an int.

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@Thilo Thanks for the Edit, I just realized my small error and was about to fix it :p – Austin Oct 17 '12 at 9:44
    
Also, be careful with casting to int, it might overflow for big numbers. Maybe better to change the return type of the method to long (depends on your usage, of course). – Thilo Oct 17 '12 at 9:45

It is casting the returned variable's data type which is a long to an int.

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round has 2 overloads,

long round(double a);

and

int round(float a);

since the const you wrote is a double, you need to cast it to float. try:

return java.lang.Math.round(someVariable*1.234234f);
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The Math.round invoked with a double returns a long. It is there to cast the long result to int type...

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You're returning the result of the function java.lang.Math.round(double a) which is a long in a function that needs an int.
So you have to change the return type in your function prototype from int to long

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I'm sorry but what do you mean by prototype? I don't think I've ever heard somebody use that term with Java before :O – Austin Oct 17 '12 at 9:50
    
the function signature, how do you call the declaration of a function..? – TwiterZX Oct 17 '12 at 9:54

The Math.round(double a) method returns a long which is a larger type than int. Therefore your action could result in a loss of information. You need to tell the compiler explicitly, with the help of a cast, that you are aware of that.

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