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Why it is Compile time error respective of float and int both are of 4bytes? I have searched on various sites but not getting the satisfactory answer

public static void main(String[] args) {
        int a= 10.0F+10;
        System.out.println(a);

}

Please correct me if I am asking the question in the worng way, as I am new to stackOverflow

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2  
Just because two values are the same length in bits doesn't mean they are assignment-compatible. Mapping bits will give you nonsense answers. –  awksp Jun 25 '14 at 16:01
1  
@user3580294: Righto, otherwise you might also be able to cast long to Object; fun indeed. –  gexicide Jun 25 '14 at 16:03

2 Answers 2

In converting types Java doesn't consider the size of memory used. For example, you can implicitly convert from 64-bit long to 32-bit float as float has a wider range.

You cannot implicitly convert from float to int as this is considered narrowing and requires an explicit cast.

Note: the order you do conversions can matter

int a = (int) 10.0f + 123456787;
System.out.println("a = "+a);
int b = (int) (10.0f + 123456787);
System.out.println("b = "+b);

prints

a = 123456797 // expected
b = 123456792

You get a different result as 123456787 cannot be represented as a float without representation error. However, 10.0F can be represented as an int accurately.

Similarly, casting in the order works best here.

int a = (int) 1.5f * 100;
System.out.println("a = "+a);
int b = (int) (1.5f * 100);
System.out.println("b = "+b);

prints

a = 100
b = 150 // expected
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the sum would result in float and you will have to cast it to int as it is not implicitly convertible

int a= (int) 10.0F + 10;

in your example you are adding 10.0 you don't need float here

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2  
Note: this might be different to int a = (int) (10.0F + 10); for different values of "10". ;) –  Peter Lawrey Jun 25 '14 at 16:03
    
@Peter for example ? –  Jigar Joshi Jun 25 '14 at 16:05
    
See my answer for two examples, where one order or the other is better. –  Peter Lawrey Jun 25 '14 at 16:09

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