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This is the snippet of code in Java:

int i = 1234567890;     
float f = i;    
System.out.println(i - (int)f);

Why is that the output is not equal to 0? It performs widening, so it is not supposed to loose data. Then you just truncate the value. Best regards

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5 Answers 5

up vote 3 down vote accepted

See the difference

 int i = 1234567890;     
 float f = i;    
 System.out.println(i - f);
 System.out.println((int)f);
 System.out.println(f);
 System.out.println(i-(int)f);

Ouput:

0.0

1234567936

1.23456794E9

-46
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Your mistake is here:

It performs widening, so it is not supposed to loose data.

This statement is wrong. Widening does not mean that you do not lose data.

From the Java specification:

Widening primitive conversions do not lose information about the overall magnitude of a numeric value.

Conversion of an int or a long value to float, or of a long value to double, may result in loss of precision - that is, the result may lose some of the least significant bits of the value. In this case, the resulting floating-point value will be a correctly rounded version of the integer value, using IEEE 754 round-to-nearest mode (§4.2.4).

Emphasis mine.

The specification clearly states that the magnitude is not lost, but precision can be lost.

The word widening refers not to the precision of a data type, but to its range. Floats are wider than ints because they have a larger range.

int

4 bytes, signed (two's complement). -2,147,483,648 to 2,147,483,647.

float

4 bytes, IEEE 754. Covers a range from 1.40129846432481707e-45 to 3.40282346638528860e+38 (positive or negative).

As you can see, float has a larger range. However some integers cannot be represented exactly as floats. This representation error is what causes your result to differ from 0. The actual value stored in f is 1234567936.

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(f==i) returns true –  Subhrajyoti Majumder Oct 16 '12 at 8:39
    
@Quoi: Yes, that's correct... and so does (f == (float)i). And your point is... ? –  Mark Byers Oct 16 '12 at 10:44

You'd be shocked to find out that even this can be true:

(f==(f+1))==true

given f is a float large enough...

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int i = 1234567890;     
    float f = i;    
    System.out.println((int)f);
    System.out.println(i);
    System.out.println(i - (int)f);

output is:

1234567936
1234567890
-46

see the difference.

compare integer float have larger value.

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Widening can lose precision. An int has 32-bits of precision where as a float has a 25-bits of precision (a 24-bit mantissa and an implied top bit). Java considers float to be wider than the 64-bit long which is a bit mad IMHO

With an 8-bit difference in precision, the error can be up to about +/-64 as it rounds the int value to the nearest float representation.

int err = 0;
for (int i = Integer.MAX_VALUE; i > Integer.MAX_VALUE / 2; i--) {
    int err2 = (int) (float) i - i;
    if (Math.abs(err2) > err) {
        System.out.println(i + ": " + err2);
        err = Math.abs(err2);
    }
}

prints

... deleted ...
2147483584: 63
2147483456: -64
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