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Considering this code snippet:

int i = 0;
double d1 = (double) i;
long l = 0L;
double d2 = (double) l;

Running this on my machine prints 0.0 for both conversions. But can d1 and d2 ever be anything but 0.0?

As I understand, this is a widening primitive conversion to which the spec says:

A widening primitive conversion does not lose information about the overall magnitude of a numeric value.

as well as

A widening conversion of an int or a long value to float, or of a long value to double, may result in loss of precision

As I understand the spec, the above would mean that int 0 will always become double 0.0 but long 0 can be converted to something else (e.g. 1E-20 or something like that). Is my spec interpretation correct?

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How can there be 'loss of precision' of zero? Zero doesn't have any precision to lose. Not a real question. –  EJP Feb 5 '13 at 22:35
    
As a matter of fact I have answered the question, and there is no FUD in it whatsoever. Try not to over-react. –  EJP Feb 6 '13 at 2:28
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1 Answer

up vote 3 down vote accepted

The full quote is:

A widening 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.

(Emphasis mine)

This is covering the case where the int/long value cannot be exactly represented in float/double (in which case, the nearest representable value is chosen). Clearly, 0 can be represented, so one would not expect a loss of precision.

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This does make sense (even without reading the spec) - but what I am afraid of is - some corner case where JVM could do lousy long->double conversion and stay perfectly legal, at least as far as the spec goes. –  mindas Feb 5 '13 at 11:33
    
@mindas: It sounds like the requirement is that the value must be correctly rounded according to the IEEE-754 rules. I could be wrong, but I can't see how 0 being converted to non-0 could ever be valid, according to the above paragraph. –  Oli Charlesworth Feb 5 '13 at 11:33
    
+1 All int can be represented exactly with a double. (int has 31-bit with a sign, and double has 53-bits with a sign) It's long which can have values double can't represent exactly. –  Peter Lawrey Feb 5 '13 at 12:30
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