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int a = 1;
int b = 10;
int c = 3;

int d = (1/10)*3

System.out.println(d)

Result: 0

How do i make this Calculation work ? and round up or down ? It should be: (1/10)*3 = 0.1 * 3 = 0.3 = 0 and (4/10)*3 = 0.4 * 3 = 1.2 = 1

Thanks a lot!

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7 Answers 7

1 / 10

This is integer division and as integer division the result is 0. Then 0 * 3 = 0

You can use double literals:

1.0 / 10.0
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Thanks a lot, all of you. –  user1621988 Aug 24 '12 at 8:24
    
Those are floats. To specify double append a D. –  Steve Kuo Aug 24 '12 at 8:27
1  
@SteveKuo: no, floating-point literals are double by default‌​. It's only a float if you suffix it with F (or f). –  Joachim Sauer Aug 24 '12 at 11:01

1/10

This line return 0.so 0*3=0.Use double instead of int

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And then cast it back, or round it to int, if you need to. –  BigAl Aug 24 '12 at 8:15
2  
This won't work - 1/10 is still integer division, so the result is 0 again (of type double) –  Petar Ivanov Aug 24 '12 at 8:16

as both a and b are integer so the output will also be int which makes 1/10 as 0 and then 0*3=0

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Try:

int d = (int) (((double)4/10)*3);
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You will want to perform the calculation using floating-point representation. Then you can cast the result back to an integer.

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I note that you refer in your question to rounding up/down.

Math.round() will help you here.

Returns the closest long to the argument. The result is rounded to an integer by adding 1/2, taking the floor of the result, and casting the result to type long.

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This will works

int a = 1;
int b = 10;
int c = 3;    
int d = (1*3/10);    
System.out.println(d);
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